Tag Archives: prop shaft

China wholesaler Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive Line

Product Description

Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft

 

Product Description

Agricultural truck universal joint steering

PTO Shaft
 

Function of PTO Shaft Drive Shaft Parts & Power Transmission
Usage of PTO Shaft Kinds of Tractors & Farm Implements
Yoke Types for PTO Shaft Double push pin, Bolt pins, Split pins, Pushpin, Quick release, Ball attachment, Collar…..
Processing Of Yoke Forging
PTO Shaft Plastic Cover YW; BW; YS; BS; Etc
Colors of PTO Shaft Green; Orange; Yellow; Black Ect.
PTO Shaft Series T1-T10; L1-L6;S6-S10;10HP-150HP with SA,RA,SB,SFF,WA,CV Etc
Tube Types for PTO Shaft Lemon, Triangular, Star, Square, Hexangular, Spline, Special Ect
Processing Of Tube Cold drawn
Spline Types for PTO Shaft 1 1/8″ Z6;1 3/8″ Z6; 1 3/8″ Z21 ;1 3/4″ Z20; 1 3/4″ Z6; 8-38*32*6 8-42*36*7; 8-48*42*8;

We also sell accessories for the pto shaft, including :
Yoke: CV socket yoke, CV weld yoke, flange yoke, end yoke, weld yoke, slip yoke
CV center housing, tube, spline, CV socket flange, u-joint, dust cap

Light vehicle drive line
Our products can be used for transmission shafts of the following brands
Toyota, Mitsubishi, Nissan, Isu  zu, Suzuki, Dafa, Honda, Hyundai, Mazda, Fiat, Re  nault, Kia, Dacia, Ford. Dodge, Land Rover, Peu geot, Volkswagen Audi, BMW Benz Volvo, Russian models

Gear shaft

Company Profile

 

 

 

Related Products

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Company information:

 

/* January 22, 2571 19:08:37 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))&&1

Material: Carbon Steel
Load: Drive Shaft
Stiffness & Flexibility: Stiffness / Rigid Axle
Journal Diameter Dimensional Accuracy: IT6-IT9
Axis Shape: Straight Shaft
Shaft Shape: Real Axis
Samples:
US$ 38/Piece
1 Piece(Min.Order)

|
Request Sample

pto shaft

How do manufacturers ensure the compatibility of driveline components with different vehicles?

Manufacturers employ various measures to ensure the compatibility of driveline components with different vehicles. These measures involve careful design, engineering, testing, and standardization processes to meet the specific requirements of each vehicle type. Let’s explore how manufacturers ensure compatibility:

1. Vehicle-Specific Design:

Manufacturers design driveline components with specific vehicle types in mind. Each vehicle type, such as passenger cars, trucks, SUVs, or commercial vehicles, has unique requirements in terms of power output, torque capacity, weight distribution, space constraints, and intended usage. Manufacturers consider these factors during the component design phase to ensure that the driveline components are optimized for compatibility with the intended vehicle type.

2. Engineering and Simulation:

Manufacturers employ advanced engineering techniques and simulation tools to evaluate the performance and compatibility of driveline components. They use computer-aided design (CAD) software and finite element analysis (FEA) simulations to model and analyze the behavior of the components under various operating conditions. This allows them to identify any potential compatibility issues, such as excessive stress, misalignment, or interference, and make necessary design adjustments before moving to the production stage.

3. Prototyping and Testing:

Manufacturers create prototypes of driveline components and subject them to rigorous testing to ensure compatibility. These tests include bench testing, dynamometer testing, and vehicle-level testing. By simulating real-world operating conditions, manufacturers can evaluate the performance, durability, and compatibility of the components. They assess factors such as power transmission efficiency, torque capacity, heat dissipation, noise and vibration levels, and overall drivability to ensure that the components meet the requirements and are compatible with the intended vehicle.

4. Standardization:

Manufacturers adhere to industry standards and specifications to ensure compatibility and interchangeability of driveline components. These standards cover various aspects such as dimensions, material properties, spline profiles, shaft diameters, and mounting interfaces. By following established standards, manufacturers can ensure that their driveline components can be seamlessly integrated into different vehicles from various manufacturers, promoting compatibility and ease of replacement or upgrade.

5. Collaborative Development:

Manufacturers often collaborate closely with vehicle manufacturers during the development process to ensure compatibility. This collaboration involves sharing specifications, design requirements, and performance targets. By working together, driveline manufacturers can align their component designs with the vehicle manufacturer’s specifications, ensuring that the driveline components fit within the vehicle’s space constraints, mating interfaces, and intended usage. This collaborative approach helps optimize compatibility and integration between the driveline components and the vehicle’s overall system.

6. Continuous Improvement:

Manufacturers continuously improve their driveline components based on feedback, field data, and advancements in technology. They gather information from vehicle manufacturers, end-users, and warranty claims to identify any compatibility issues or performance shortcomings. This feedback loop helps drive refinements and enhancements in the design, manufacturing processes, and material selection of the driveline components, ensuring better compatibility and performance in future iterations.

Overall, manufacturers employ a combination of vehicle-specific design, engineering and simulation, prototyping and testing, standardization, collaborative development, and continuous improvement to ensure the compatibility of driveline components with different vehicles. These efforts help optimize power transmission, reliability, and performance, while ensuring a seamless integration of the driveline components into the diverse range of vehicles present in the market.

pto shaft

What safety precautions should be followed when working with driveline components?

Working with driveline components requires careful attention to safety to prevent accidents, injuries, and damage to equipment. Driveline components, such as transmissions, drive shafts, and differentials, can involve rotating parts, high torque, and heavy machinery, making it essential to follow proper safety precautions. Here are some important safety measures to consider when working with driveline components:

1. Personal Protective Equipment (PPE):

Always wear appropriate personal protective equipment, including safety glasses, gloves, and protective clothing. PPE helps protect against potential hazards such as flying debris, sharp edges, and contact with hot or moving parts. Use steel-toed safety boots to protect your feet from heavy objects or accidental impacts.

2. Lockout/Tagout:

Prior to working on driveline components, follow lockout/tagout procedures to ensure the equipment is properly shut down and isolated from its power source. Lockout/tagout involves disconnecting power, applying locks or tags to control switches, and verifying that the equipment is de-energized. This prevents accidental startup or release of stored energy that could cause serious injuries.

3. Vehicle/Equipment Stability:

Ensure that the vehicle or equipment is stable and securely supported before working on driveline components. Use appropriate jack stands or hoists to provide a stable and reliable support structure. Never rely solely on hydraulic jacks or unstable supports, as they can lead to accidents or equipment damage.

4. Proper Lifting Techniques:

When handling heavy driveline components, use proper lifting techniques to prevent strains or injuries. Lift with your legs, not your back, and get assistance when dealing with heavy or bulky components. Use mechanical lifting aids, such as hoists or cranes, when necessary to avoid overexertion or dropping components.

5. Component Inspection:

Prior to installation or maintenance, carefully inspect driveline components for any signs of damage, wear, or corrosion. Replace any worn or damaged parts to ensure safe and reliable operation. Follow the manufacturer’s guidelines and specifications for component inspection, maintenance, and replacement intervals.

6. Proper Tools and Equipment:

Use the correct tools and equipment for the job. Improper tools or makeshift solutions can lead to accidents, damaged components, or stripped fasteners. Follow the manufacturer’s recommendations for specialized tools or equipment needed for specific driveline components.

7. Follow Service Manuals and Procedures:

Refer to the relevant service manuals and follow proper procedures when working on driveline components. Service manuals provide step-by-step instructions, torque specifications, and safety precautions specific to the vehicle or equipment you are working on. Adhering to these guidelines ensures proper disassembly, installation, and adjustment of driveline components.

8. Proper Disposal of Fluids and Waste:

Dispose of fluids, such as oil or coolant, and waste materials in accordance with local regulations. Spilled fluids can create slip hazards, and improper disposal can harm the environment. Use appropriate containers and disposal methods as prescribed by local laws and regulations.

9. Training and Knowledge:

Ensure that individuals working with driveline components have received proper training and possess the necessary knowledge and skills. Inadequate training or lack of knowledge can lead to errors, accidents, or improper installation, compromising safety and performance.

10. Follow Workplace Safety Regulations:

Adhere to workplace safety regulations and guidelines established by relevant authorities. These regulations may include specific requirements for working with driveline components, such as safety standards, training requirements, and equipment certifications. Stay updated on safety regulations and ensure compliance to maintain a safe working environment.

By following these safety precautions, individuals can minimize the risk of accidents, injuries, and equipment damage when working with driveline components. Safety should always be a top priority to promote a secure and productive work environment.

pto shaft

Which industries and vehicles commonly use drivelines for power distribution?

Drivelines are widely used in various industries and vehicles for power distribution. They play a crucial role in transmitting power from the engine or power source to the driven components, enabling motion and torque transfer. Here’s a detailed explanation of the industries and vehicles that commonly utilize drivelines for power distribution:

1. Automotive Industry: The automotive industry extensively utilizes drivelines in passenger cars, commercial vehicles, and off-road vehicles. Drivelines are a fundamental component of vehicles, enabling power transmission from the engine to the wheels. They are found in a range of vehicle types, including sedans, SUVs, pickup trucks, vans, buses, and heavy-duty trucks. Drivelines in the automotive industry are designed to provide efficient power distribution, enhance vehicle performance, and ensure smooth acceleration and maneuverability.

2. Agricultural Industry: Drivelines are essential in the agricultural industry for various farming machinery and equipment. Tractors, combines, harvesters, and other agricultural machinery rely on drivelines to transfer power from the engine to the wheels or tracks. Drivelines in agricultural equipment often incorporate power take-off (PTO) units, allowing the connection of implements such as plows, seeders, and balers. These drivelines are designed to handle high torque loads, provide traction in challenging field conditions, and facilitate efficient farming operations.

3. Construction and Mining Industries: Drivelines are extensively used in construction and mining equipment, where they enable power distribution and mobility in heavy-duty machinery. Excavators, bulldozers, wheel loaders, dump trucks, and other construction and mining vehicles rely on drivelines to transfer power from the engine to the wheels or tracks. Drivelines in these industries are designed to withstand rigorous operating conditions, deliver high torque and traction, and provide the necessary power for excavation, hauling, and material handling tasks.

4. Industrial Equipment: Various industrial equipment and machinery utilize drivelines for power distribution. This includes material handling equipment such as forklifts and cranes, industrial trucks, conveyor systems, and industrial vehicles used in warehouses, factories, and distribution centers. Drivelines in industrial equipment are designed to provide efficient power transmission, precise control, and maneuverability in confined spaces, enabling smooth and reliable operation in industrial settings.

5. Off-Road and Recreational Vehicles: Drivelines are commonly employed in off-road and recreational vehicles, including all-terrain vehicles (ATVs), side-by-side vehicles (UTVs), dirt bikes, snowmobiles, and recreational boats. These vehicles require drivelines to transfer power from the engine to the wheels, tracks, or propellers, enabling off-road capability, traction, and water propulsion. Drivelines in off-road and recreational vehicles are designed for durability, performance, and enhanced control in challenging terrains and recreational environments.

6. Railway Industry: Drivelines are utilized in railway locomotives and trains for power distribution and propulsion. They are responsible for transmitting power from the locomotive’s engine to the wheels or driving systems, enabling the movement of trains on tracks. Drivelines in the railway industry are designed to handle high torque requirements, ensure efficient power transfer, and facilitate safe and reliable train operation.

7. Marine Industry: Drivelines are integral components in marine vessels, including boats, yachts, ships, and other watercraft. Marine drivelines are used for power transmission from the engine to the propellers or water jets, providing thrust and propulsion. They are designed to withstand the corrosive marine environment, handle high torque loads, and ensure efficient power transfer for marine propulsion.

These are some of the industries and vehicles that commonly rely on drivelines for power distribution. Drivelines are versatile components that enable efficient power transmission, mobility, and performance across a wide range of applications, contributing to the functionality and productivity of various industries and vehicles.

China wholesaler Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive LineChina wholesaler Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive Line
editor by CX 2024-04-12

China wholesaler Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive Line

Product Description

Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft

 

Product Description

Agricultural truck universal joint steering

PTO Shaft
 

Function of PTO Shaft Drive Shaft Parts & Power Transmission
Usage of PTO Shaft Kinds of Tractors & Farm Implements
Yoke Types for PTO Shaft Double push pin, Bolt pins, Split pins, Pushpin, Quick release, Ball attachment, Collar…..
Processing Of Yoke Forging
PTO Shaft Plastic Cover YW; BW; YS; BS; Etc
Colors of PTO Shaft Green; Orange; Yellow; Black Ect.
PTO Shaft Series T1-T10; L1-L6;S6-S10;10HP-150HP with SA,RA,SB,SFF,WA,CV Etc
Tube Types for PTO Shaft Lemon, Triangular, Star, Square, Hexangular, Spline, Special Ect
Processing Of Tube Cold drawn
Spline Types for PTO Shaft 1 1/8″ Z6;1 3/8″ Z6; 1 3/8″ Z21 ;1 3/4″ Z20; 1 3/4″ Z6; 8-38*32*6 8-42*36*7; 8-48*42*8;

We also sell accessories for the pto shaft, including :
Yoke: CV socket yoke, CV weld yoke, flange yoke, end yoke, weld yoke, slip yoke
CV center housing, tube, spline, CV socket flange, u-joint, dust cap

Light vehicle drive line
Our products can be used for transmission shafts of the following brands
Toyota, Mitsubishi, Nissan, Isu  zu, Suzuki, Dafa, Honda, Hyundai, Mazda, Fiat, Re  nault, Kia, Dacia, Ford. Dodge, Land Rover, Peu geot, Volkswagen Audi, BMW Benz Volvo, Russian models

Gear shaft

Company Profile

 

 

 

Related Products

Application:

Company information:

 

/* January 22, 2571 19:08:37 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))&&1

Material: Carbon Steel
Load: Drive Shaft
Stiffness & Flexibility: Stiffness / Rigid Axle
Journal Diameter Dimensional Accuracy: IT6-IT9
Axis Shape: Straight Shaft
Shaft Shape: Real Axis
Samples:
US$ 38/Piece
1 Piece(Min.Order)

|
Request Sample

pto shaft

How do manufacturers ensure the compatibility of driveline components with different vehicles?

Manufacturers employ various measures to ensure the compatibility of driveline components with different vehicles. These measures involve careful design, engineering, testing, and standardization processes to meet the specific requirements of each vehicle type. Let’s explore how manufacturers ensure compatibility:

1. Vehicle-Specific Design:

Manufacturers design driveline components with specific vehicle types in mind. Each vehicle type, such as passenger cars, trucks, SUVs, or commercial vehicles, has unique requirements in terms of power output, torque capacity, weight distribution, space constraints, and intended usage. Manufacturers consider these factors during the component design phase to ensure that the driveline components are optimized for compatibility with the intended vehicle type.

2. Engineering and Simulation:

Manufacturers employ advanced engineering techniques and simulation tools to evaluate the performance and compatibility of driveline components. They use computer-aided design (CAD) software and finite element analysis (FEA) simulations to model and analyze the behavior of the components under various operating conditions. This allows them to identify any potential compatibility issues, such as excessive stress, misalignment, or interference, and make necessary design adjustments before moving to the production stage.

3. Prototyping and Testing:

Manufacturers create prototypes of driveline components and subject them to rigorous testing to ensure compatibility. These tests include bench testing, dynamometer testing, and vehicle-level testing. By simulating real-world operating conditions, manufacturers can evaluate the performance, durability, and compatibility of the components. They assess factors such as power transmission efficiency, torque capacity, heat dissipation, noise and vibration levels, and overall drivability to ensure that the components meet the requirements and are compatible with the intended vehicle.

4. Standardization:

Manufacturers adhere to industry standards and specifications to ensure compatibility and interchangeability of driveline components. These standards cover various aspects such as dimensions, material properties, spline profiles, shaft diameters, and mounting interfaces. By following established standards, manufacturers can ensure that their driveline components can be seamlessly integrated into different vehicles from various manufacturers, promoting compatibility and ease of replacement or upgrade.

5. Collaborative Development:

Manufacturers often collaborate closely with vehicle manufacturers during the development process to ensure compatibility. This collaboration involves sharing specifications, design requirements, and performance targets. By working together, driveline manufacturers can align their component designs with the vehicle manufacturer’s specifications, ensuring that the driveline components fit within the vehicle’s space constraints, mating interfaces, and intended usage. This collaborative approach helps optimize compatibility and integration between the driveline components and the vehicle’s overall system.

6. Continuous Improvement:

Manufacturers continuously improve their driveline components based on feedback, field data, and advancements in technology. They gather information from vehicle manufacturers, end-users, and warranty claims to identify any compatibility issues or performance shortcomings. This feedback loop helps drive refinements and enhancements in the design, manufacturing processes, and material selection of the driveline components, ensuring better compatibility and performance in future iterations.

Overall, manufacturers employ a combination of vehicle-specific design, engineering and simulation, prototyping and testing, standardization, collaborative development, and continuous improvement to ensure the compatibility of driveline components with different vehicles. These efforts help optimize power transmission, reliability, and performance, while ensuring a seamless integration of the driveline components into the diverse range of vehicles present in the market.

pto shaft

How do drivelines enhance the performance of different types of vehicles?

Drivelines significantly contribute to enhancing the performance of different types of vehicles by optimizing power delivery, improving traction, and tailoring the driving characteristics to suit specific needs. Here’s a detailed explanation of how drivelines enhance performance in various vehicle types:

1. Passenger Cars:

In passenger cars, driveline configurations, such as front-wheel drive (FWD), rear-wheel drive (RWD), and all-wheel drive (AWD), play a crucial role in performance. Here’s how drivelines enhance performance in passenger cars:

  • FWD: Front-wheel drive systems provide better traction and stability, particularly in adverse weather conditions. FWD drivelines distribute weight more evenly over the front wheels, resulting in improved grip during acceleration and cornering.
  • RWD: Rear-wheel drive drivelines offer better weight distribution, allowing for improved handling and balanced performance. RWD vehicles typically exhibit better acceleration and a more engaging driving experience, especially in performance-oriented cars.
  • AWD: All-wheel drive drivelines deliver power to all four wheels, improving traction and stability in various driving conditions. AWD systems enhance performance by maximizing grip and providing optimal power distribution between the front and rear wheels.

2. Sports Cars and Performance Vehicles:

Driveline systems in sports cars and performance vehicles are designed to enhance acceleration, handling, and overall driving dynamics. Key features include:

  • Rear-Wheel Drive (RWD): RWD drivelines are often favored in sports cars for their ability to deliver power to the rear wheels, resulting in better weight transfer during acceleration and improved handling characteristics.
  • Performance-oriented AWD: Some high-performance vehicles employ advanced AWD systems that can variably distribute torque between the front and rear wheels. These systems enhance traction, stability, and cornering capabilities, allowing for superior performance on both dry and slippery surfaces.
  • Torque Vectoring: Certain driveline systems incorporate torque vectoring technology, which actively varies the torque distribution between wheels. This enables precise control during cornering, reducing understeer and enhancing agility and stability.

3. Off-Road Vehicles:

Drivelines in off-road vehicles are designed to provide exceptional traction, durability, and maneuverability in challenging terrains. Key features include:

  • Four-Wheel Drive (4WD) and All-Wheel Drive (AWD): 4WD and AWD drivelines are commonly used in off-road vehicles to improve traction on uneven surfaces. These drivelines distribute power to all wheels, allowing for better grip and enhanced off-road capability.
  • Differential Locks: Off-road drivelines often incorporate differential locks that can be engaged to lock the wheels on an axle together. This feature ensures that power is evenly distributed to all wheels, maximizing traction and overcoming challenging obstacles.
  • High Ground Clearance: Drivelines in off-road vehicles are designed to accommodate higher ground clearance, allowing for improved approach, departure, and breakover angles. This design feature enhances the vehicle’s ability to navigate over rough terrain without damaging the driveline components.

4. Trucks and Commercial Vehicles:

Drivelines in trucks and commercial vehicles are engineered to provide high torque delivery, durability, and efficiency. Key features include:

  • High Torque Handling: Drivelines in trucks and commercial vehicles are designed to handle high torque outputs from powerful engines, enabling efficient towing, hauling, and overall performance.
  • Transmission Options: Drivelines in trucks often feature transmissions with multiple gear ratios, allowing drivers to select the appropriate gear for different load conditions. This enhances performance, fuel efficiency, and overall drivability.
  • Efficient Power Transfer: Drivelines in commercial vehicles focus on maximizing power transfer efficiency, minimizing energy losses, and optimizing fuel economy. This is achieved through the use of efficient transmission designs, low-friction components, and advanced control systems.

5. Electric and Hybrid Vehicles:

Drivelines in electric and hybrid vehicles play a crucial role in delivering power from the electric motor(s) to the wheels. Key features include:

  • Instant Torque: Electric drivelines offer instant torque delivery, providing quick acceleration andresponsive performance. This enhances the driving experience and allows for swift overtaking and merging.
  • Regenerative Braking: Electric and hybrid drivelines can incorporate regenerative braking systems, which convert kinetic energy during braking into electrical energy. This improves overall efficiency and extends the vehicle’s range.
  • Multi-Motor Systems: Some electric and hybrid drivelines utilize multiple motors to drive different axles or wheels independently. This enables advanced torque vectoring and enhances handling, stability, and traction control.

These are just a few examples of how drivelines enhance the performance of different types of vehicles. Driveline configurations, technologies, and engineering considerations are tailored to each vehicle type, optimizing power delivery, handling, traction, and other performance characteristics specific to their intended use and market segment.

pto shaft

How do drivelines handle variations in torque, speed, and angles of rotation?

Drivelines are designed to handle variations in torque, speed, and angles of rotation within a power transmission system. They incorporate specific components and mechanisms that enable the smooth and efficient transfer of power while accommodating these variations. Here’s a detailed explanation of how drivelines handle variations in torque, speed, and angles of rotation:

Variations in Torque:

Drivelines encounter variations in torque when the power requirements change, such as during acceleration, deceleration, or when encountering different loads. To handle these variations, drivelines incorporate several components:

1. Clutch: In manual transmission systems, a clutch is used to engage or disengage the engine’s power from the driveline. By partially or completely disengaging the clutch, the driveline can temporarily interrupt power transfer, allowing for smooth gear changes or vehicle stationary positions. This helps manage torque variations during shifting or when power demands change abruptly.

2. Torque Converter: Automatic transmissions employ torque converters, which are fluid couplings that transfer power from the engine to the transmission. Torque converters provide a certain amount of slip, allowing for torque multiplication and smooth power transfer. The slip in the torque converter helps absorb torque variations and dampens abrupt changes, ensuring smoother operation during acceleration or when power demands fluctuate.

3. Differential: The differential mechanism in drivelines compensates for variations in torque between the wheels, particularly during turns. When a vehicle turns, the inner and outer wheels travel different distances, resulting in different rotational speeds. The differential allows the wheels to rotate at different speeds while distributing torque to each wheel accordingly. This ensures that torque variations are managed and power is distributed effectively to optimize traction and stability.

Variations in Speed:

Drivelines also need to handle variations in rotational speed, especially when the engine operates at different RPMs or when different gear ratios are selected. The following components aid in managing speed variations:

1. Transmission: The transmission allows for the selection of different gear ratios, which influence the rotational speed of the driveline components. By changing gears, the transmission adjusts the speed at which power is transferred from the engine to the driveline. This allows the driveline to adapt to different speed requirements, whether it’s for quick acceleration or maintaining a consistent speed during cruising.

2. Gearing: Driveline systems often incorporate various gears in the transmission, differential, or axle assemblies. Gears provide mechanical advantage by altering the speed and torque relationship. By employing different gear ratios, the driveline can adjust the rotational speed and torque output to match the requirements of the vehicle under different operating conditions.

Variations in Angles of Rotation:

Drivelines must accommodate variations in angles of rotation, especially in vehicles with flexible or independent suspension systems. The following components help manage these variations:

1. Universal Joints: Universal joints, also known as U-joints, are flexible couplings used in drivelines to accommodate variations in angles and misalignments between components. They allow for smooth power transmission between the drive shaft and other components, compensating for changes in driveline angles during vehicle operation or suspension movement. Universal joints are particularly effective in handling non-linear or variable angles of rotation.

2. Constant Velocity Joints (CV Joints): CV joints are specialized joints used in drivelines, especially in front-wheel-drive and all-wheel-drive vehicles. They allow the driveline to handle variations in angles while maintaining a constant velocity during rotation. CV joints are designed to mitigate vibrations, power losses, and potential binding or juddering that can occur due to changes in angles of rotation.

By incorporating these components and mechanisms, drivelines effectively handle variations in torque, speed, and angles of rotation. These features ensure smooth power transfer, optimal performance, and enhanced durability in various driving conditions and operating scenarios.

China wholesaler Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive LineChina wholesaler Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive Line
editor by CX 2024-03-01

China Custom Auto Parts for Audi – Q7 2010-2015 Prop Shaft Drive Shaft 7L8521101c Drive Line

Product Description

Product Description

As a professional manufacturer for propeller shaft, we have +1000 item s for all kinds of car. At present, our products are mainly sold in North America, Europe, Australia, South Korea, the Middle East and Southeast Asia and other regions, applicable models are European ca rs, American cars, Japanese and Korean cars, etc.

 

Our advantage:

 

1. Full range of products

2. MOQ qty: 1pcs/items

3. Delivery on time

4: Warranty: 1 YEAR
 

OE NUMBER 7L8521101C
TYPE AUDI Q7
MATERIAL STEEL
BALANCE STHangZhouRD G16  3200RPM
   

/* March 10, 2571 17:59:20 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))&&1

After-sales Service: 1years
Condition: New
Color: Black
Customization:
Available

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Estimated freight per unit.







about shipping cost and estimated delivery time.
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Currency: US$
Return&refunds: You can apply for a refund up to 30 days after receipt of the products.

pto shaft

How do drivelines ensure optimal power transfer while minimizing energy losses?

Drivelines play a crucial role in ensuring optimal power transfer from the engine to the wheels while minimizing energy losses. The design and components of the driveline system are carefully engineered to maximize efficiency and minimize power wastage. Here are some key factors that contribute to achieving optimal power transfer and minimizing energy losses within a driveline:

1. Efficient Power Transmission:

Drivelines utilize various components, such as transmissions, clutches, and torque converters, to transmit power from the engine to the wheels. These components are designed to minimize energy losses by reducing friction, improving gear mesh efficiency, and optimizing torque transfer. For example, using low-friction materials, such as roller bearings, and employing advanced gear designs, like helical or hypoid gears, can help reduce power losses due to friction and gear meshing.

2. Gear Ratio Optimization:

The selection of appropriate gear ratios is essential for achieving optimal power transfer. By choosing gear ratios that match the engine’s power characteristics and the vehicle’s driving conditions, the driveline can efficiently convert and transmit power to the wheels. Optimized gear ratios ensure that the engine operates within its optimal RPM range, reducing unnecessary power losses and improving overall efficiency.

3. Limited Slip Differentials:

In driveline systems with multiple driven wheels (such as all-wheel drive or four-wheel drive), limited slip differentials (LSDs) are often employed to distribute power between the wheels. LSDs allow for better traction by transferring torque to the wheels with more grip while minimizing energy losses. By allowing some degree of differential wheel speed, LSDs ensure power is efficiently transmitted to the wheels that can utilize it most effectively.

4. Hybrid and Electric Drivetrains:

In hybrid and electric drivetrains, driveline systems are designed to optimize power transfer and minimize energy losses specific to the characteristics of electric motors and energy storage systems. These drivetrains often utilize sophisticated power electronics, regenerative braking systems, and advanced control algorithms to efficiently manage power flow and energy regeneration, resulting in improved overall system efficiency.

5. Aerodynamic Considerations:

Drivelines can also contribute to optimal power transfer by considering aerodynamic factors. By minimizing air resistance through streamlined vehicle designs, efficient cooling systems, and appropriate underbody airflow management, drivelines help reduce the power required to overcome aerodynamic drag. This, in turn, improves overall driveline efficiency and minimizes energy losses.

6. Advanced Control Systems:

The integration of advanced control systems within drivelines allows for optimized power transfer and efficient operation. Electronic control units (ECUs) monitor various parameters such as throttle position, vehicle speed, and driving conditions to adjust power distribution, manage gear shifts, and optimize torque delivery. By continuously adapting to real-time conditions, these control systems help maximize power transfer efficiency and minimize energy losses.

7. Material Selection and Weight Reduction:

The choice of materials and weight reduction strategies in driveline components contribute to minimizing energy losses. Lightweight materials, such as aluminum or composites, reduce the overall weight of the driveline system, resulting in reduced inertia and lower power requirements. Additionally, reducing the weight of rotating components, such as driveshafts or flywheels, helps improve driveline efficiency by minimizing energy losses associated with rotational inertia.

8. Regular Maintenance and Lubrication:

Proper maintenance and lubrication of driveline components are essential for minimizing energy losses. Regular maintenance ensures that driveline components, such as bearings and gears, are in optimal condition, minimizing frictional losses. Additionally, using high-quality lubricants and maintaining appropriate lubrication levels reduces friction and wear, improving driveline efficiency.

By incorporating these design considerations and engineering techniques, drivelines can achieve optimal power transfer while minimizing energy losses. This leads to improved overall efficiency, enhanced fuel economy, and reduced environmental impact.

pto shaft

How do drivelines handle variations in speed and direction during operation?

Drivelines are designed to handle variations in speed and direction during operation, enabling the efficient transfer of power from the engine to the wheels. They employ various components and mechanisms to accommodate these variations and ensure smooth and reliable power transmission. Let’s explore how drivelines handle speed and direction variations:

1. Transmissions:

Transmissions play a crucial role in managing speed variations in drivelines. They allow for the selection of different gear ratios to match the engine’s torque and speed with the desired vehicle speed. By shifting gears, the transmission adjusts the rotational speed and torque delivered to the driveline, enabling the vehicle to operate effectively at various speeds. Transmissions can be manual, automatic, or continuously variable, each with its own mechanism for achieving speed variation control.

2. Clutches:

Clutches are used in drivelines to engage or disengage power transmission between the engine and the driveline components. They allow for smooth engagement during startup and shifting gears, as well as for disconnecting the driveline when the vehicle is stationary or the engine is idling. Clutches facilitate the control of speed variations by providing a means to temporarily interrupt power flow and smoothly transfer torque between rotating components.

3. Differential:

The differential is a key component in drivelines, particularly in vehicles with multiple driven wheels. It allows the wheels to rotate at different speeds while maintaining power transfer. When a vehicle turns, the inside and outside wheels travel different distances and need to rotate at different speeds. The differential allows for this speed variation by distributing torque between the wheels, ensuring smooth operation and preventing tire scrubbing or driveline binding.

4. Universal Joints and CV Joints:

Universal joints and constant velocity (CV) joints are used in drivelines to accommodate variations in direction. Universal joints are typically employed in drivelines with a driveshaft, allowing for the transmission of rotational motion even when there is an angular misalignment between the driving and driven components. CV joints, on the other hand, are used in drivelines that require constant velocity and smooth power transfer at varying angles, such as front-wheel drive vehicles. These joints allow for a consistent transfer of torque while accommodating changes in direction.

5. Transfer Cases:

In drivelines with multiple axles or drivetrains, transfer cases are used to distribute power and torque to different wheels or axles. Transfer cases are commonly found in four-wheel drive or all-wheel drive systems. They allow for variations in speed and direction by proportionally distributing torque between the front and rear wheels, or between different axles, based on the traction requirements of the vehicle.

6. Electronic Control Systems:

Modern drivelines often incorporate electronic control systems to further enhance speed and direction control. These systems utilize sensors, actuators, and computer algorithms to monitor and adjust power distribution, shift points, and torque delivery based on various inputs, such as vehicle speed, throttle position, wheel slip, and road conditions. Electronic control systems enable precise and dynamic management of speed and direction variations, improving traction, fuel efficiency, and overall driveline performance.

By integrating transmissions, clutches, differentials, universal joints, CV joints, transfer cases, and electronic control systems, drivelines effectively handle variations in speed and direction during operation. These components and mechanisms work together to ensure smooth power transmission, optimized performance, and enhanced vehicle control in a wide range of driving conditions and applications.

pto shaft

Can you explain the components of a typical driveline and their specific roles?

A typical driveline consists of several components that work together to transmit power from the engine or power source to the driven components, enabling motion and providing torque. Each component plays a specific role in the driveline system. Here’s an explanation of the key components of a typical driveline and their specific roles:

1. Engine: The engine is the power source of the driveline system. It converts fuel energy (such as gasoline or diesel) into mechanical power by the process of combustion. The engine generates rotational power, which is transferred to the driveline to initiate power transmission.

2. Transmission: The transmission is responsible for selecting the appropriate gear ratio and transmitting power from the engine to the driven components. It allows the driver or operator to control the speed and torque output of the driveline. In manual transmissions, the driver manually selects the gears, while in automatic transmissions, the gear shifts are controlled by the vehicle’s computer system.

3. Drive Shaft: The drive shaft, also known as a propeller shaft or prop shaft, is a tubular component that transmits rotational power from the transmission to the differential or the driven components. It typically consists of a hollow metal tube with universal joints at both ends to accommodate variations in driveline angles and allow for smooth power transfer.

4. Differential: The differential is a gearbox-like component that distributes power from the drive shaft to the wheels or driven axles while allowing them to rotate at different speeds, particularly during turns. It compensates for the difference in rotational speed between the inner and outer wheels in a turn, ensuring smooth and controlled operation of the driveline system.

5. Axles: Axles are shafts that connect the differential to the wheels. They transmit power from the differential to the wheels, allowing them to rotate and generate motion. In vehicles with independent suspension, each wheel typically has its own axle, while in solid axle configurations, a single axle connects both wheels on an axle assembly.

6. Clutch: In manual transmission systems, a clutch is employed to engage or disengage the engine’s power from the driveline. It allows the driver to smoothly engage the engine’s power to the transmission when shifting gears or coming to a stop. By disengaging the clutch, power transmission to the driveline is temporarily interrupted, enabling gear changes or vehicle stationary positions.

7. Torque Converter: Torque converters are used in automatic transmissions to transfer power from the engine to the transmission. They provide a fluid coupling between the engine and transmission, allowing for smooth power transmission and torque multiplication. The torque converter also provides a torque amplification effect, which helps in vehicle acceleration.

8. Universal Joints: Universal joints, also known as U-joints, are flexible couplings used in the driveline to accommodate variations in angles and misalignments between the components. They allow for the smooth transmission of power between the drive shaft and other components, compensating for changes in driveline angles during vehicle operation or suspension movement.

9. Constant Velocity Joints (CV Joints): CV joints are specialized joints used in some drivelines, particularly in front-wheel-drive and all-wheel-drive vehicles. They enable smooth power transmission while accommodating variations in angles and allowing the wheels to turn at different speeds. CV joints maintain a constant velocity during rotation, minimizing vibrations and power losses.

10. Transfer Case: A transfer case is a component found in four-wheel-drive and all-wheel-drive systems. It transfers power from the transmission to both the front and rear axles, allowing all wheels to receive power. The transfer case usually includes additional components such as a multi-speed gearbox and differential mechanisms to distribute power effectively to the axles.

These are the key components of a typical driveline and their specific roles. Each component is crucial in transferring power, enabling motion, and ensuring the smooth and efficient operation of vehicles and equipment.

China Custom Auto Parts for Audi - Q7 2010-2015 Prop Shaft Drive Shaft 7L8521101c Drive LineChina Custom Auto Parts for Audi - Q7 2010-2015 Prop Shaft Drive Shaft 7L8521101c Drive Line
editor by CX 2024-02-17

China factory Auto Parts for Audi – Q7 2010-2015 Prop Shaft Drive Shaft 7L8521101c Drive Line

Product Description

Product Description

As a professional manufacturer for propeller shaft, we have +1000 item s for all kinds of car. At present, our products are mainly sold in North America, Europe, Australia, South Korea, the Middle East and Southeast Asia and other regions, applicable models are European ca rs, American cars, Japanese and Korean cars, etc.

 

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1. Full range of products

2. MOQ qty: 1pcs/items

3. Delivery on time

4: Warranty: 1 YEAR
 

OE NUMBER 7L8521101C
TYPE AUDI Q7
MATERIAL STEEL
BALANCE STHangZhouRD G16  3200RPM
   

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pto shaft

What factors should be considered when designing an efficient driveline system?

Designing an efficient driveline system involves considering various factors that contribute to performance, reliability, and overall system efficiency. Here are the key factors that should be considered when designing an efficient driveline system:

1. Power Requirements:

The power requirements of the vehicle play a crucial role in designing an efficient driveline system. It is essential to determine the maximum power output of the engine and ensure that the driveline components can handle and transfer that power efficiently. Optimizing the driveline for the specific power requirements helps minimize energy losses and maximize overall efficiency.

2. Weight and Packaging:

The weight and packaging of the driveline components have a significant impact on system efficiency. Lightweight materials and compact design help reduce the overall weight of the driveline, which can improve fuel efficiency and vehicle performance. Additionally, efficient packaging ensures that driveline components are properly integrated, minimizing energy losses and maximizing available space within the vehicle.

3. Friction and Mechanical Losses:

Minimizing friction and mechanical losses within the driveline system is crucial for achieving high efficiency. Frictional losses occur at various points, such as bearings, gears, and joints. Selecting low-friction materials, optimizing lubrication systems, and implementing efficient bearing designs can help reduce these losses. Additionally, employing advanced gear designs, such as helical or hypoid gears, can improve gear mesh efficiency and reduce power losses.

4. Gear Ratios and Transmission Efficiency:

The selection of appropriate gear ratios and optimizing transmission efficiency greatly impacts driveline efficiency. Gear ratios should be chosen to match the vehicle’s power requirements, driving conditions, and desired performance characteristics. In addition, improving the efficiency of the transmission, such as reducing gear mesh losses and enhancing hydraulic or electronic control systems, can contribute to overall driveline efficiency.

5. Aerodynamic Considerations:

Aerodynamics play a significant role in a vehicle’s overall efficiency, including the driveline system. Reducing aerodynamic drag through streamlined vehicle design, efficient cooling systems, and appropriate underbody airflow management can enhance driveline efficiency by reducing the power required to overcome air resistance.

6. System Integration and Control:

Efficient driveline design involves seamless integration and control of various components. Employing advanced control systems, such as electronic control units (ECUs), can optimize driveline operation by adjusting power distribution, managing gear shifts, and optimizing torque delivery based on real-time driving conditions. Effective system integration ensures smooth communication and coordination between driveline components, improving overall efficiency.

7. Environmental Considerations:

Environmental factors should also be taken into account when designing an efficient driveline system. Considerations such as emissions regulations, sustainability goals, and the use of alternative power sources (e.g., hybrid or electric drivetrains) can influence driveline design decisions. Incorporating technologies like regenerative braking or start-stop systems can further enhance efficiency and reduce environmental impact.

8. Reliability and Durability:

Designing an efficient driveline system involves ensuring long-term reliability and durability. Selecting high-quality materials, performing thorough testing and validation, and considering factors such as thermal management and component durability help ensure that the driveline system operates efficiently over its lifespan.

By considering these factors during the design process, engineers can develop driveline systems that are optimized for efficiency, performance, and reliability, resulting in improved fuel economy, reduced emissions, and enhanced overall vehicle efficiency.

pto shaft

How do drivelines handle variations in speed and direction during operation?

Drivelines are designed to handle variations in speed and direction during operation, enabling the efficient transfer of power from the engine to the wheels. They employ various components and mechanisms to accommodate these variations and ensure smooth and reliable power transmission. Let’s explore how drivelines handle speed and direction variations:

1. Transmissions:

Transmissions play a crucial role in managing speed variations in drivelines. They allow for the selection of different gear ratios to match the engine’s torque and speed with the desired vehicle speed. By shifting gears, the transmission adjusts the rotational speed and torque delivered to the driveline, enabling the vehicle to operate effectively at various speeds. Transmissions can be manual, automatic, or continuously variable, each with its own mechanism for achieving speed variation control.

2. Clutches:

Clutches are used in drivelines to engage or disengage power transmission between the engine and the driveline components. They allow for smooth engagement during startup and shifting gears, as well as for disconnecting the driveline when the vehicle is stationary or the engine is idling. Clutches facilitate the control of speed variations by providing a means to temporarily interrupt power flow and smoothly transfer torque between rotating components.

3. Differential:

The differential is a key component in drivelines, particularly in vehicles with multiple driven wheels. It allows the wheels to rotate at different speeds while maintaining power transfer. When a vehicle turns, the inside and outside wheels travel different distances and need to rotate at different speeds. The differential allows for this speed variation by distributing torque between the wheels, ensuring smooth operation and preventing tire scrubbing or driveline binding.

4. Universal Joints and CV Joints:

Universal joints and constant velocity (CV) joints are used in drivelines to accommodate variations in direction. Universal joints are typically employed in drivelines with a driveshaft, allowing for the transmission of rotational motion even when there is an angular misalignment between the driving and driven components. CV joints, on the other hand, are used in drivelines that require constant velocity and smooth power transfer at varying angles, such as front-wheel drive vehicles. These joints allow for a consistent transfer of torque while accommodating changes in direction.

5. Transfer Cases:

In drivelines with multiple axles or drivetrains, transfer cases are used to distribute power and torque to different wheels or axles. Transfer cases are commonly found in four-wheel drive or all-wheel drive systems. They allow for variations in speed and direction by proportionally distributing torque between the front and rear wheels, or between different axles, based on the traction requirements of the vehicle.

6. Electronic Control Systems:

Modern drivelines often incorporate electronic control systems to further enhance speed and direction control. These systems utilize sensors, actuators, and computer algorithms to monitor and adjust power distribution, shift points, and torque delivery based on various inputs, such as vehicle speed, throttle position, wheel slip, and road conditions. Electronic control systems enable precise and dynamic management of speed and direction variations, improving traction, fuel efficiency, and overall driveline performance.

By integrating transmissions, clutches, differentials, universal joints, CV joints, transfer cases, and electronic control systems, drivelines effectively handle variations in speed and direction during operation. These components and mechanisms work together to ensure smooth power transmission, optimized performance, and enhanced vehicle control in a wide range of driving conditions and applications.

pto shaft

What is a driveline and how does it function in vehicles and machinery?

A driveline, also known as a drivetrain, refers to the components and systems responsible for transmitting power from the engine to the wheels or tracks in vehicles and machinery. It encompasses various elements such as the engine, transmission, drive shafts, differentials, axles, and wheels or tracks. The driveline plays a crucial role in converting the engine’s power into motion and enabling the vehicle or machinery to move. Here’s a detailed explanation of how the driveline functions in vehicles and machinery:

1. Power Generation: The driveline starts with the engine, which generates power by burning fuel or utilizing alternative energy sources. The engine produces rotational force, known as torque, which is transferred to the driveline for further transmission to the wheels or tracks.

2. Transmission: The transmission is a crucial component of the driveline that controls the distribution of power and torque from the engine to the wheels or tracks. It allows the driver or operator to select different gear ratios to optimize performance and efficiency based on the vehicle’s speed and load conditions. The transmission can be manual, automatic, or a combination of both, depending on the specific vehicle or machinery.

3. Drive Shaft: The drive shaft, also called a propeller shaft, is a rotating mechanical component that transmits torque from the transmission to the wheels or tracks. In vehicles with rear-wheel drive or four-wheel drive, the drive shaft transfers power to the rear axle or all four wheels. In machinery, the drive shaft may transfer power to the tracks or other driven components. The drive shaft is typically a tubular metal shaft with universal joints at each end to accommodate the movement and misalignment between the transmission and the wheels or tracks.

4. Differential: The differential is a device located in the driveline that enables the wheels or tracks to rotate at different speeds while still receiving power. It allows the vehicle or machinery to smoothly negotiate turns without wheel slippage or binding. The differential consists of a set of gears that distribute torque between the wheels or tracks based on their rotational requirements. In vehicles with multiple axles, there may be differentials on each axle to provide power distribution and torque balancing.

5. Axles: Axles are shafts that connect the differential to the wheels or tracks. They transmit torque from the differential to the individual wheels or tracks, allowing them to rotate and propel the vehicle or machinery. Axles are designed to withstand the loads and stresses associated with power transmission and wheel movement. They may be solid or independent, depending on the vehicle or machinery’s suspension and drivetrain configuration.

6. Wheels or Tracks: The driveline’s final components are the wheels or tracks, which directly contact the ground and provide traction and propulsion. In vehicles with wheels, the driveline transfers power from the engine to the wheels, allowing them to rotate and propel the vehicle forward or backward. In machinery with tracks, the driveline transfers power to the tracks, enabling the machinery to move over various terrains and surfaces.

7. Functioning: The driveline functions by transmitting power from the engine through the transmission, drive shaft, differential, axles, and finally to the wheels or tracks. As the engine generates torque, it is transferred through the transmission, which selects the appropriate gear ratio based on the vehicle’s speed and load. The drive shaft then transfers the torque to the differential, which distributes it between the wheels or tracks according to their rotational requirements. The axles transmit the torque from the differential to the individual wheels or tracks, allowing them to rotate and propel the vehicle or machinery.

8. Four-Wheel Drive and All-Wheel Drive: Some vehicles and machinery are equipped with four-wheel drive (4WD) or all-wheel drive (AWD) systems, which provide power to all four wheels simultaneously. In these systems, the driveline includes additional components such as transfer cases and secondary differentials to distribute power to the front and rear axles. The driveline functions similarly in 4WD and AWD systems, but with enhanced traction and off-road capabilities.

In summary, the driveline is a vital component in vehicles and machinery, responsible for transmitting power from the engine to the wheels or tracks. It involves the engine, transmission, drive shafts, differentials, axles, and wheels or tracks. By efficiently transferring torque and power, the driveline enables vehicles and machinery to move, providing traction, propulsion, and control. The specific configuration and components of the driveline may vary depending on the vehicle or machinery’s design, purpose, and drive system.

China factory Auto Parts for Audi - Q7 2010-2015 Prop Shaft Drive Shaft 7L8521101c Drive LineChina factory Auto Parts for Audi - Q7 2010-2015 Prop Shaft Drive Shaft 7L8521101c Drive Line
editor by CX 2024-02-08

China high quality Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive Line

Product Description

Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft

 

Product Description

Agricultural truck universal joint steering

PTO Shaft
 

Function of PTO Shaft Drive Shaft Parts & Power Transmission
Usage of PTO Shaft Kinds of Tractors & Farm Implements
Yoke Types for PTO Shaft Double push pin, Bolt pins, Split pins, Pushpin, Quick release, Ball attachment, Collar…..
Processing Of Yoke Forging
PTO Shaft Plastic Cover YW; BW; YS; BS; Etc
Colors of PTO Shaft Green; Orange; Yellow; Black Ect.
PTO Shaft Series T1-T10; L1-L6;S6-S10;10HP-150HP with SA,RA,SB,SFF,WA,CV Etc
Tube Types for PTO Shaft Lemon, Triangular, Star, Square, Hexangular, Spline, Special Ect
Processing Of Tube Cold drawn
Spline Types for PTO Shaft 1 1/8″ Z6;1 3/8″ Z6; 1 3/8″ Z21 ;1 3/4″ Z20; 1 3/4″ Z6; 8-38*32*6 8-42*36*7; 8-48*42*8;

We also sell accessories for the pto shaft, including :
Yoke: CV socket yoke, CV weld yoke, flange yoke, end yoke, weld yoke, slip yoke
CV center housing, tube, spline, CV socket flange, u-joint, dust cap

Light vehicle drive line
Our products can be used for transmission shafts of the following brands
Toyota, Mitsubishi, Nissan, Isu  zu, Suzuki, Dafa, Honda, Hyundai, Mazda, Fiat, Re  nault, Kia, Dacia, Ford. Dodge, Land Rover, Peu geot, Volkswagen Audi, BMW Benz Volvo, Russian models

Gear shaft

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Material: Carbon Steel
Load: Drive Shaft
Stiffness & Flexibility: Stiffness / Rigid Axle
Journal Diameter Dimensional Accuracy: IT6-IT9
Axis Shape: Straight Shaft
Shaft Shape: Real Axis
Samples:
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pto shaft

How do manufacturers ensure the compatibility of driveline components with different vehicles?

Manufacturers employ various measures to ensure the compatibility of driveline components with different vehicles. These measures involve careful design, engineering, testing, and standardization processes to meet the specific requirements of each vehicle type. Let’s explore how manufacturers ensure compatibility:

1. Vehicle-Specific Design:

Manufacturers design driveline components with specific vehicle types in mind. Each vehicle type, such as passenger cars, trucks, SUVs, or commercial vehicles, has unique requirements in terms of power output, torque capacity, weight distribution, space constraints, and intended usage. Manufacturers consider these factors during the component design phase to ensure that the driveline components are optimized for compatibility with the intended vehicle type.

2. Engineering and Simulation:

Manufacturers employ advanced engineering techniques and simulation tools to evaluate the performance and compatibility of driveline components. They use computer-aided design (CAD) software and finite element analysis (FEA) simulations to model and analyze the behavior of the components under various operating conditions. This allows them to identify any potential compatibility issues, such as excessive stress, misalignment, or interference, and make necessary design adjustments before moving to the production stage.

3. Prototyping and Testing:

Manufacturers create prototypes of driveline components and subject them to rigorous testing to ensure compatibility. These tests include bench testing, dynamometer testing, and vehicle-level testing. By simulating real-world operating conditions, manufacturers can evaluate the performance, durability, and compatibility of the components. They assess factors such as power transmission efficiency, torque capacity, heat dissipation, noise and vibration levels, and overall drivability to ensure that the components meet the requirements and are compatible with the intended vehicle.

4. Standardization:

Manufacturers adhere to industry standards and specifications to ensure compatibility and interchangeability of driveline components. These standards cover various aspects such as dimensions, material properties, spline profiles, shaft diameters, and mounting interfaces. By following established standards, manufacturers can ensure that their driveline components can be seamlessly integrated into different vehicles from various manufacturers, promoting compatibility and ease of replacement or upgrade.

5. Collaborative Development:

Manufacturers often collaborate closely with vehicle manufacturers during the development process to ensure compatibility. This collaboration involves sharing specifications, design requirements, and performance targets. By working together, driveline manufacturers can align their component designs with the vehicle manufacturer’s specifications, ensuring that the driveline components fit within the vehicle’s space constraints, mating interfaces, and intended usage. This collaborative approach helps optimize compatibility and integration between the driveline components and the vehicle’s overall system.

6. Continuous Improvement:

Manufacturers continuously improve their driveline components based on feedback, field data, and advancements in technology. They gather information from vehicle manufacturers, end-users, and warranty claims to identify any compatibility issues or performance shortcomings. This feedback loop helps drive refinements and enhancements in the design, manufacturing processes, and material selection of the driveline components, ensuring better compatibility and performance in future iterations.

Overall, manufacturers employ a combination of vehicle-specific design, engineering and simulation, prototyping and testing, standardization, collaborative development, and continuous improvement to ensure the compatibility of driveline components with different vehicles. These efforts help optimize power transmission, reliability, and performance, while ensuring a seamless integration of the driveline components into the diverse range of vehicles present in the market.

pto shaft

Can driveline components be customized for specific vehicle or equipment requirements?

Yes, driveline components can be customized to meet specific vehicle or equipment requirements. Manufacturers and suppliers offer a range of options for customization to ensure optimal performance, compatibility, and integration with different vehicles or equipment. Customization allows for tailoring the driveline components to specific powertrain configurations, operating conditions, torque requirements, and space constraints. Let’s explore the details of customization for driveline components:

1. Powertrain Configuration:

Driveline components can be customized to accommodate different powertrain configurations. Whether it’s a front-wheel drive, rear-wheel drive, or all-wheel drive system, manufacturers can design and provide specific components such as differentials, gearboxes, and drive shafts that are compatible with the required power distribution and torque transfer characteristics of the particular configuration.

2. Torque Capacity:

Driveline components can be customized to handle specific torque requirements. Different vehicles or equipment may have varying torque outputs based on their intended applications. Manufacturers can engineer and produce driveline components with varying torque-handling capabilities to ensure reliable and efficient power transmission for a range of applications, from passenger vehicles to heavy-duty trucks or machinery.

3. Size and Configuration:

Driveline components can be customized in terms of size, shape, and configuration to fit within the space constraints of different vehicles or equipment. Manufacturers understand that each application may have unique packaging limitations, such as limited available space or specific mounting requirements. Through customization, driveline components can be designed and manufactured to align with these specific dimensional and packaging constraints.

4. Material Selection:

The choice of materials for driveline components can be customized based on the required strength, weight, and durability characteristics. Different vehicles or equipment may demand specific material properties to optimize performance, such as lightweight materials for improved fuel efficiency or high-strength alloys for heavy-duty applications. Manufacturers can provide customized driveline components with materials selected to meet the specific performance and operational requirements.

5. Performance Optimization:

Driveline components can be customized to optimize performance in specific applications. Manufacturers can modify aspects such as gear ratios, differential configurations, or clutch characteristics to enhance acceleration, traction, efficiency, or specific performance attributes based on the intended use of the vehicle or equipment. This customization ensures that the driveline components are tailored to deliver the desired performance characteristics for the specific application.

6. Specialized Applications:

For specialized applications, such as off-road vehicles, racing cars, or industrial machinery, driveline components can be further customized to meet the unique demands of those environments. Manufacturers can develop specialized driveline components with features like enhanced cooling, reinforced construction, or increased torque capacity to withstand extreme conditions or heavy workloads.

Overall, customization of driveline components allows manufacturers to meet the specific requirements of different vehicles or equipment. From powertrain configuration to torque capacity, size and configuration, material selection, performance optimization, and specialized applications, customization ensures that driveline components are precisely designed and engineered to achieve the desired performance, compatibility, and integration with specific vehicles or equipment.

pto shaft

What is a driveline and how does it function in vehicles and machinery?

A driveline, also known as a drivetrain, refers to the components and systems responsible for transmitting power from the engine to the wheels or tracks in vehicles and machinery. It encompasses various elements such as the engine, transmission, drive shafts, differentials, axles, and wheels or tracks. The driveline plays a crucial role in converting the engine’s power into motion and enabling the vehicle or machinery to move. Here’s a detailed explanation of how the driveline functions in vehicles and machinery:

1. Power Generation: The driveline starts with the engine, which generates power by burning fuel or utilizing alternative energy sources. The engine produces rotational force, known as torque, which is transferred to the driveline for further transmission to the wheels or tracks.

2. Transmission: The transmission is a crucial component of the driveline that controls the distribution of power and torque from the engine to the wheels or tracks. It allows the driver or operator to select different gear ratios to optimize performance and efficiency based on the vehicle’s speed and load conditions. The transmission can be manual, automatic, or a combination of both, depending on the specific vehicle or machinery.

3. Drive Shaft: The drive shaft, also called a propeller shaft, is a rotating mechanical component that transmits torque from the transmission to the wheels or tracks. In vehicles with rear-wheel drive or four-wheel drive, the drive shaft transfers power to the rear axle or all four wheels. In machinery, the drive shaft may transfer power to the tracks or other driven components. The drive shaft is typically a tubular metal shaft with universal joints at each end to accommodate the movement and misalignment between the transmission and the wheels or tracks.

4. Differential: The differential is a device located in the driveline that enables the wheels or tracks to rotate at different speeds while still receiving power. It allows the vehicle or machinery to smoothly negotiate turns without wheel slippage or binding. The differential consists of a set of gears that distribute torque between the wheels or tracks based on their rotational requirements. In vehicles with multiple axles, there may be differentials on each axle to provide power distribution and torque balancing.

5. Axles: Axles are shafts that connect the differential to the wheels or tracks. They transmit torque from the differential to the individual wheels or tracks, allowing them to rotate and propel the vehicle or machinery. Axles are designed to withstand the loads and stresses associated with power transmission and wheel movement. They may be solid or independent, depending on the vehicle or machinery’s suspension and drivetrain configuration.

6. Wheels or Tracks: The driveline’s final components are the wheels or tracks, which directly contact the ground and provide traction and propulsion. In vehicles with wheels, the driveline transfers power from the engine to the wheels, allowing them to rotate and propel the vehicle forward or backward. In machinery with tracks, the driveline transfers power to the tracks, enabling the machinery to move over various terrains and surfaces.

7. Functioning: The driveline functions by transmitting power from the engine through the transmission, drive shaft, differential, axles, and finally to the wheels or tracks. As the engine generates torque, it is transferred through the transmission, which selects the appropriate gear ratio based on the vehicle’s speed and load. The drive shaft then transfers the torque to the differential, which distributes it between the wheels or tracks according to their rotational requirements. The axles transmit the torque from the differential to the individual wheels or tracks, allowing them to rotate and propel the vehicle or machinery.

8. Four-Wheel Drive and All-Wheel Drive: Some vehicles and machinery are equipped with four-wheel drive (4WD) or all-wheel drive (AWD) systems, which provide power to all four wheels simultaneously. In these systems, the driveline includes additional components such as transfer cases and secondary differentials to distribute power to the front and rear axles. The driveline functions similarly in 4WD and AWD systems, but with enhanced traction and off-road capabilities.

In summary, the driveline is a vital component in vehicles and machinery, responsible for transmitting power from the engine to the wheels or tracks. It involves the engine, transmission, drive shafts, differentials, axles, and wheels or tracks. By efficiently transferring torque and power, the driveline enables vehicles and machinery to move, providing traction, propulsion, and control. The specific configuration and components of the driveline may vary depending on the vehicle or machinery’s design, purpose, and drive system.

China high quality Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive LineChina high quality Tractor Pto Driveshaft Driveline Factory Hollow Spline Cardan Adapter Universal Joint Yoke Flexible Front Prop Rear CV Axle Propeller Automobile Drive Shaft Drive Line
editor by CX 2023-12-11

China Customize Shaft Prop Drive Front Drive Shaft Axle Buggy Drive Shafts drive shaft carrier bearing

Item Description

Merchandise Description

Customise Shaft Prop Travel Entrance Travel Shaft Axle Buggy Push ShaftsSP-922

CNC Machining Companies & Assembly Solutions

We can process a range of resources, including aluminum,stainless steel,brass, bronze, tool steel,carbon steel, iron,POM as nicely as area treatment method. In addition to these,  assembly service is also integrated to offer 1-end provider for you.
 

Aluminum AL6061, Al6063, AL6082, AL7075, AL5052 and many others.
Brass HPb63, HPb62, HPb61, HPb59, H59, H62, H68, H80 etc.
Copper C11000,C12000,C12000 C36000 and many others.
Stainless Metal  SS201,SS301, SS303, SS304, SS316, SS416 and so on.
Metal Carbon metal, Mild metal, 4140, 4340, Q235, Q345B, twenty#, forty five# and so forth.
Iron A36, forty five#, 1213, 12L14, 1215 and so on.
Plastic Abdominal muscles, Pc, PE, POM, Delrin, Nylon, PP,PEI, Peek and so forth.

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Our items are broadly used in Medical devices, Optical gear,auto equipment, photographic gear, digital interaction, pneumatic equipment, transmission shaft and automation mechanical components fields.

Virious surface area treatment 

Packaging & Delivery

Company Profile

Established in 2012, HangZhou Tremendous Digital Components Tech Co., Ltd. is a expert CNC precision processing organization, which is located in HangZhou metropolis, ZheJiang province,China. HangZhou is the popular production middle in the world, it is shut to HangZhou and HangZhou, which is extremely handy in transportation.
We have a number of innovative precision machining equipments, such as Japan TSUGAMI, United states Neway precision equipments and advanced inspection equipments this sort of as Uk CMM, microscope, projector, hardness tester, Swiss altimeter, and so forth., which can meet up with the processing specifications of a variety of substantial-precision items of buyers.
Superior creation tools, experienced professionals, scientific production administration, to make certain the business to create substantial top quality items,and has won high praise from customers around the planet.
We can process a range of materials, such as aluminum,stainless steel,brass, bronze, tool steel,carbon steel, iron,POM as properly as surface remedy. Aside from these,  assembly service is also integrated to give a single-end services for you.
Our items are widely employed in Health-related instruments, Optical gear,vehicle accessories, photographic equipment, electronic conversation, pneumatic instruments, transmission shaft and automation mechanical equipment fields.
We have our very own brand name “Super”, and provide OEM and ODM companies. With ISO90001 quality management program certification, all products are strictly comply to GB,SDTM,AMS,ASME,ISO/ROHS international technical standards. Every solution from raw material to finished solution is verified by means of 12 stringent testing methods to guarantee one hundred% competent fee.
Our suppliers of raw supplies are the same as those of Foxconn. Each and every materials has SGS environmental safety report and substance certification, so as to guarantee that the uncooked supplies and performance of processed products can satisfy the requirements of clients.
We adopt a simple management technique, which assures to provide buyers with satisfactory solutions within 24 hrs for their inquiries, troubles and info comments.
Warmly welcome to ship us inquiries and if obtainable to prepare a pay a visit to to our manufacturing facility to examine business .
We will give with advanced technology, aggressive value, superb good quality, reliable on-time delivery and satisfactory client service to make certain CZPT cooperation.

Our Benefits

Our Gain:

We have cooperated and built up lengthy time period cooperation with many clients about the world, specially U.S.A. and Europe nations around the world due to the adhering to important factors: 

one)  Rich and expert provider: With ten years experiences in Precision CNC machining industry(exported since 2014)
two)  Advanced generation and tests tools ,Strict implementation of worldwide quality expectations and management system make sure the item high quality: there is a task group crew of 8 persons to supervise the top quality handle from raw materials , machinining, surface remedy, packaging to concluded items.  
3)  We can supply assembly service to source with one particular-stop support for you .  

Our Large precision  5-Axis  turning-milling merged machining

Quality control

FAQ


/ Piece
|
1 Piece

(Min. Order)

###

Application: Optical Instrument, Optical Device
Standard: GB, EN, China GB Code, JIS Code, ASME
Surface Treatment: Anodizing
Production Type: Batch Production
Machining Method: CNC Machining
Material: Steel, Brass, Alloy, Copper, Aluminum

###

Customization:
Available

|


###

Aluminum AL6061, Al6063, AL6082, AL7075, AL5052 etc.
Brass HPb63, HPb62, HPb61, HPb59, H59, H62, H68, H80 etc.
Copper C11000,C12000,C12000 C36000 etc.
Stainless Steel  SS201,SS301, SS303, SS304, SS316, SS416 etc.
Steel Carbon steel, Mild steel, 4140, 4340, Q235, Q345B, 20#, 45# etc.
Iron A36, 45#, 1213, 12L14, 1215 etc.
Plastic ABS, PC, PE, POM, Delrin, Nylon, PP,PEI, Peek etc.

/ Piece
|
1 Piece

(Min. Order)

###

Application: Optical Instrument, Optical Device
Standard: GB, EN, China GB Code, JIS Code, ASME
Surface Treatment: Anodizing
Production Type: Batch Production
Machining Method: CNC Machining
Material: Steel, Brass, Alloy, Copper, Aluminum

###

Customization:
Available

|


###

Aluminum AL6061, Al6063, AL6082, AL7075, AL5052 etc.
Brass HPb63, HPb62, HPb61, HPb59, H59, H62, H68, H80 etc.
Copper C11000,C12000,C12000 C36000 etc.
Stainless Steel  SS201,SS301, SS303, SS304, SS316, SS416 etc.
Steel Carbon steel, Mild steel, 4140, 4340, Q235, Q345B, 20#, 45# etc.
Iron A36, 45#, 1213, 12L14, 1215 etc.
Plastic ABS, PC, PE, POM, Delrin, Nylon, PP,PEI, Peek etc.

What is a drive shaft?

If you notice a clicking noise while driving, it is most likely the driveshaft. An experienced auto mechanic will be able to tell you if the noise is coming from both sides or from one side. If it only happens on one side, you should check it. If you notice noise on both sides, you should contact a mechanic. In either case, a replacement driveshaft should be easy to find.
air-compressor

The drive shaft is a mechanical part

A driveshaft is a mechanical device that transmits rotation and torque from the engine to the wheels of the vehicle. This component is essential to the operation of any driveline, as the mechanical power from the engine is transmitted to the PTO (power take-off) shaft, which hydraulically transmits that power to connected equipment. Different drive shafts contain different combinations of joints to compensate for changes in shaft length and angle. Some types of drive shafts include connecting shafts, internal constant velocity joints, and external fixed joints. They also contain anti-lock system rings and torsional dampers to prevent overloading the axle or causing the wheels to lock.
Although driveshafts are relatively light, they need to handle a lot of torque. Torque applied to the drive shaft produces torsional and shear stresses. Because they have to withstand torque, these shafts are designed to be lightweight and have little inertia or weight. Therefore, they usually have a joint, coupling or rod between the two parts. Components can also be bent to accommodate changes in the distance between them.
The drive shaft can be made from a variety of materials. The most common material for these components is steel, although alloy steels are often used for high-strength applications. Alloy steel, chromium or vanadium are other materials that can be used. The type of material used depends on the application and size of the component. In many cases, metal driveshafts are the most durable and cheapest option. Plastic shafts are used for light duty applications and have different torque levels than metal shafts.

It transfers power from the engine to the wheels

A car’s powertrain consists of an electric motor, transmission, and differential. Each section performs a specific job. In a rear-wheel drive vehicle, the power generated by the engine is transmitted to the rear tires. This arrangement improves braking and handling. The differential controls how much power each wheel receives. The torque of the engine is transferred to the wheels according to its speed.
The transmission transfers power from the engine to the wheels. It is also called “transgender”. Its job is to ensure power is delivered to the wheels. Electric cars cannot drive themselves and require a gearbox to drive forward. It also controls how much power reaches the wheels at any given moment. The transmission is the last part of the power transmission chain. Despite its many names, the transmission is the most complex component of a car’s powertrain.
The driveshaft is a long steel tube that transmits mechanical power from the transmission to the wheels. Cardan joints connect to the drive shaft and provide flexible pivot points. The differential assembly is mounted on the drive shaft, allowing the wheels to turn at different speeds. The differential allows the wheels to turn at different speeds and is very important when cornering. Axles are also important to the performance of the car.

It has a rubber boot that protects it from dust and moisture

To keep this boot in good condition, you should clean it with cold water and a rag. Never place it in the dryer or in direct sunlight. Heat can deteriorate the rubber and cause it to shrink or crack. To prolong the life of your rubber boots, apply rubber conditioner to them regularly. Indigenous peoples in the Amazon region collect latex sap from the bark of rubber trees. Then they put their feet on the fire to solidify the sap.
air-compressor

it has a U-shaped connector

The drive shaft has a U-joint that transfers rotational energy from the engine to the axle. Defective gimbal joints can cause vibrations when the vehicle is in motion. This vibration is often mistaken for a wheel balance problem. Wheel balance problems can cause the vehicle to vibrate while driving, while a U-joint failure can cause the vehicle to vibrate when decelerating and accelerating, and stop when the vehicle is stopped.
The drive shaft is connected to the transmission and differential using a U-joint. It allows for small changes in position between the two components. This prevents the differential and transmission from remaining perfectly aligned. The U-joint also allows the drive shaft to be connected unconstrained, allowing the vehicle to move. Its main purpose is to transmit electricity. Of all types of elastic couplings, U-joints are the oldest.
Your vehicle’s U-joints should be inspected at least twice a year, and the joints should be greased. When checking the U-joint, you should hear a dull sound when changing gears. A clicking sound indicates insufficient grease in the bearing. If you hear or feel vibrations when shifting gears, you may need to service the bearings to prolong their life.

it has a slide-in tube

The telescopic design is a modern alternative to traditional driveshaft designs. This innovative design is based on an unconventional design philosophy that combines advances in material science and manufacturing processes. Therefore, they are more efficient and lighter than conventional designs. Slide-in tubes are a simple and efficient design solution for any vehicle application. Here are some of its benefits. Read on to learn why this type of shaft is ideal for many applications.
The telescopic drive shaft is an important part of the traditional automobile transmission system. These driveshafts allow linear motion of the two components, transmitting torque and rotation throughout the vehicle’s driveline. They also absorb energy if the vehicle collides. Often referred to as foldable driveshafts, their popularity is directly dependent on the evolution of the automotive industry.
air-compressor

It uses a bearing press to replace worn or damaged U-joints

A bearing press is a device that uses a rotary press mechanism to install or remove worn or damaged U-joints from a drive shaft. With this tool, you can replace worn or damaged U-joints in your car with relative ease. The first step involves placing the drive shaft in the vise. Then, use the 11/16″ socket to press the other cup in far enough to install the clips. If the cups don’t fit, you can use a bearing press to remove them and repeat the process. After removing the U-joint, use a grease nipple Make sure the new grease nipple is installed correctly.
Worn or damaged U-joints are a major source of driveshaft failure. If one of them were damaged or damaged, the entire driveshaft could dislocate and the car would lose power. Unless you have a professional mechanic doing the repairs, you will have to replace the entire driveshaft. Fortunately, there are many ways to do this yourself.
If any of these warning signs appear on your vehicle, you should consider replacing the damaged or worn U-joint. Common symptoms of damaged U-joints include rattling or periodic squeaking when moving, rattling when shifting, wobbling when turning, or rusted oil seals. If you notice any of these symptoms, take your vehicle to a qualified mechanic for a full inspection. Neglecting to replace a worn or damaged u-joint on the driveshaft can result in expensive and dangerous repairs and can cause significant damage to your vehicle.

China Customize Shaft Prop Drive Front Drive Shaft Axle Buggy Drive Shafts     drive shaft carrier bearing	China Customize Shaft Prop Drive Front Drive Shaft Axle Buggy Drive Shafts     drive shaft carrier bearing
editor by CX 2023-03-28

China 65-9337 Front Prop Drive Shaft for 77-80 Chevrolet K10 K20 Blazer, Gmc Jimmy K15 Driveshaft drive shaft assembly parts

Merchandise Description

 

PROPELLER SHAFT maker & supplier – CZPT is your best decision

Product Identify:

Front Prop Drive Shaft For 77-eighty Chevrolet K10 K20 Blazer, GMC CZPT K15

OE NO.:

sixty five-9337

Automobile Fitment:

For Chevrolet K10 1977-1980
For Chevrolet K20 1977-1980
For Chevrolet Blazer 1977-1980
For GMC CZPT 1977-1980
For GMC K15 1977-1980

Length:

29.forty nine”

Materials:

Large Good quality Metal

Colour:

Black painted

MOQ:

1pc if we have in inventory

Observe:

Have stock in China and US!

 

Belows are some products for CHEVY / GMC for your reference, if you want more details, make sure you get in touch with us.

OE NO.

FITMENT

OE NO.

FITMENT

15113831

for CHEVROLET Astro

for CHEVROLET Silverado

15763590

for CHEVROLET Astro

for CHEVROLET Silverado

15011500

for CHEVROLET Astro

15719954

for CHEVROLET Silverado

15038493

for CHEVROLET Blazer

15769055

for CHEVROLET Silverado

for CHEVROLET Blazer

15711949

for CHEVROLET Silverado

92194140

for CHEVROLET Camaro

2571697

for CHEVROLET Silverado

92236999

for CHEVROLET Camaro

15794277

for CHEVROLET Silverado

92244891

for CHEVROLET Camaro

5215718AE

for CHEVROLET Silverado

20781756

for CHEVROLET Captiva

5215718AC

for CHEVROLET Silverado

96624771

for CHEVROLET Captiva

15271513

for CHEVROLET Silverado

15126587

for CHEVROLET Colorado

25857882

for CHEVROLET Silverado

15173138

for CHEVROLET Colorado

2657169

for CHEVROLET Silverado 1500

15286715

for CHEVROLET Colorado

53006786

for CHEVROLET Silverado 1500

20811300

for CHEVROLET Equinox

15094629

for CHEVROLET Silverado 1500

15801608

for CHEVROLET Equinox

10382040

for CHEVROLET Silverado 1500

25793000

for CHEVROLET Equinox

5215712AE

for CHEVROLET Silverado 3500

19328628

for CHEVROLET Equinox

5215712AG

for CHEVROLET Silverado 3500

20811303

for CHEVROLET Equinox

53006786AB

for CHEVROLET Silverado 3500

22889825

for CHEVROLET Categorical

15114531

for CHEVROLET Silverado 3500

2571345

for CHEVROLET Express

49300‐2B500

for CHEVROLET Silverado 3500

2657162

for CHEVROLET K1500

49300‐2S000

for CHEVROLET Silverado 3500

26038121

for CHEVROLET K2500

5215718AD

for CHEVROLET Silverado 3500

2657163

for CHEVROLET K2500

25976620

for CHEVROLET Silverado 3500

for CHEVROLET Silverado

15016994

for CHEVROLET Silverado 3500

15764125

for CHEVROLET Silverado

15571431

for CHEVROLET Silverado 3500

15186002

for CHEVROLET Silverado

15271519

for CHEVROLET Silverado 3500

15182094

for CHEVROLET Silverado

25775919

for CHEVROLET Silverado 3500

15109400

for CHEVROLET Silverado

25857888

for CHEVROLET Silverado 3500

15163798

for CHEVROLET Silverado

25857887

for CHEVROLET Silverado 3500

15571402

for CHEVROLET Silverado

53006781

for CHEVROLET Silverado 3500

1515718

for CHEVROLET Silverado

15016993

for CHEVROLET Silverado 3500

15189834

for CHEVROLET Silverado

25995544

for CHEVROLET Traverse

15749292

for CHEVROLET Silverado

25995545

for CHEVROLET Traverse

15746001

for CHEVROLET Silverado

25857868

for CHEVROLETE Silverado

15189835

for CHEVROLET Silverado

 

 

10382035

for GM Silverado 1500

for GMC Yukon XL Denali

155710

for GMC K2500

23251156

for GMC Yukon XL Denali

7L6521102M

for GMC Sierra 2500 Hd

232 0571 1

for GMC Yukon XL Denali

1515714

for GMC Sierra 2500 Hd

5257198AB

for GMC Yukon

7L6521102P

for GMC Sierra 3500 Basic

5257197AC

for GMC Yukon

95542157115

for GMC Sierra 3500 Classic

5257197AD

for GMC Yukon

15571424

for GMC Sierra 3500 Vintage

F77A4A376CB

for GMC Yukon

25776616

for GMC Sierra 3500 Classic

2625716677

for GMC Yukon

7L6521101E

for GMC Yukon

2625719294

for GMC Yukon

7L6521102Q

for GMC Yukon

84257144

for GMC Yukon

7L57101D

for GMC Yukon

23267375

for GMC Yukon

7L57101H

for GMC Yukon

23469165

for GMC Yukon

7L6521102J

for GMC Yukon

23126607

for GMC Yukon

84546234

for GMC Yukon

15036952

for GMC Yukon

15247182

for GMC Yukon

2657199

for GMC Yukon

15957126

for GMC Yukon

XL2Z4A376BA

for GMC Yukon XL

22845693

for GMC Yukon

XL2Z4A376BB

for GMC Yukon XL

22847354

for GMC Yukon

5215712AC

for GMC Yukon XL

for GMC Yukon XL Denali

23126608

for GMC Yukon XL

7L6521101G

for GMC Yukon XL Denali

23318717

for GMC Yukon XL

7L6521101N

for GMC Yukon XL Denali

84257145

for GMC Yukon XL

7L6521101C

for GMC Yukon XL Denali

84546234

for GMC Yukon XL Denali

CARDONE

FITMENT

DORMAN

FITMENT

65-9519

for CHEVROLET SILVERADO 1500

938-186

for CHEVROLET SILVERADO 1500

sixty five-9520

for CHEVROLET SILVERADO 2500

938-222

for CHEVROLET SILVERADO 2500

sixty five-9339

for CHEVROLET BLAZER

938-192

for CHEVROLET BLAZER

sixty five-9329 / 65-9332

for Chevrolet Blazer S10

938-080

for Chevrolet Blazer S10

sixty five-9359

for Chevrolet Blazer S10

938-083

for Chevrolet Blazer S10

65-1001A

for Chevrolet Equinox

936-297

for CHEVROLET 1500

sixty five-9360

for CHEVROLET K1500

936-294

for CHEVROLET AVALANCHE 1500

65-9362

for CHEVROLET K1500

938-098

for CHEVROLET Blazer K1500 K2500 Yukon

sixty five-9366

for CHEVROLET K2500 K3500

946-030

for CHEVROLET Camaro

65-9371

for Chevrolet Silverado1500

936-291

for CHEVROLET Colorado Canyon

65-9395

for CHEVROLET Avalanche 1500

936-120

for Chevrolet Equinox

65-9333

for CHEVROLET BLAZER

946-035

for CHEVROLET EQUINOX

sixty five-9346

for CHEVROLET BLAZER

946-072

for CHEVROLET Express 3500 4500

65-9369

for Chevrolet BLAZER

938-187

for Chevrolet K10/K20

sixty five-9348

for CHEVROLET Blazer K1500 K2500 Yukon

936-064

for CHEVROLET K1500 PICKUP

65-9334

for CHEVROLET Blazer, K10 Pickup, K20 Pickup

938-220

for CHEVROLET Silverado 1500

65-9337

for Chevrolet K10/K20

938-221

for CHEVROLET SILVERADO 1500

65-9338

for CHEVROLET K10/K20

938-571

for CHEVROLET SILVERADO 2500

sixty five-9344

for CHEVROLET K2500

946-093

for CHEVROLET Silverado 2500 High definition

sixty five-9307

for CHEVROLET SILVERADO 1500

946-963

for Chevy Blazer

sixty five-9527

for CHEVROLET SILVERADO 1500 SIERRA 2500

936-113

for Chevy Colorado

sixty five-9306

for CHEVROLET SILVERADO 2500

936-057

for Chevy Specific

sixty five-9528

for CHEVROLET SILVERADO 2500

938-219

for Chevy S-ten CZPT Sonoma

sixty five-9827

for CHEVROLET SILVERADO 2500/3500

946-047

for Chevy Silverado 1500

sixty five-9518

for Chevy

938-189

for Chevy Astro Safari

sixty five-9353

for Chevy CK Pickup

936-059

for Chevy Silverado 1500

sixty five-9516

for Chevy Colorado

 

 

65-9336

for Chevy K30

 

 

65-9351

for Chevy K30

 

 

65-9358

for Chevy S-10 CZPT Sonoma

 

 

sixty five-9529

for Chevy Silverado 1500

 

 

sixty five-9146

for Chevy Astro Safari

 

 

sixty five-9347

for GMC K3500

 

 

65-9355

for GMC SAFARI, CHEVY ASTRO VAN

 

 

If you need more data about CHEVY / GMC Propeller Shaft, you should information or e-mail to us ASAP.
 

—-  OUR Advantage —-
 +seven hundred designs for The united states & EUROPE industryMOQ: 3PCS / for 1 item, MIN buy amount: USD5000
High quality assurance: A single 12 months GuaranteeSecure delivery time: 45 days
Free of charge Sample ProducedUse O/A 30-90 days for regular buyer

 

Becides CHEVY / GMC Propeller Shaft,we have Above 800 things applicable for pursuing automobiles:

 

 

 

 

 

 

 

 

—-   F A Q   —-
Q1:  If we never locate what we need on your site, what should we do?
You can send out us the OE amount or of the solution you need to have, we will verify if we have them.
We also create new models according to customer’s need
you can contact us for a lot more depth.
Q2:  Can I get a price tag discount if I buy huge portions?Yes, it is dependent on your buying quantity, more quantity a lot more price cut.
Q3:  What about the supply time?If we have stock, we can send you the products inside 3 operating days,
if we do not have inventory, normally it needs 10 to 40 times.

This fall:  What is actually our MOQ?Sample purchase for good quality screening 1 piece , regular purchase 50 parts for 1 order with blended types .
Q5:  What is actually your payment terms and problem ?We can acknowledge T/T , LC, Trade Assurance, Western Union, Paypal, Moneygram ect.

 

 

 

After-sales Service: 1 Year
Condition: New
Color: Black
Certification: ISO, Ts16949
Type: Drive Shaft
Application Brand: Chevrolet

###

Samples:
US$ 300/Piece
1 Piece(Min.Order)

|
Request Sample

###

Customization:

###

Product Name:
Front Prop Drive Shaft For 77-80 Chevrolet K10 K20 Blazer, GMC Jimmy K15
OE NO.:
65-9337
Vehicle Fitment:
For Chevrolet K10 1977-1980
For Chevrolet K20 1977-1980
For Chevrolet Blazer 1977-1980
For GMC Jimmy 1977-1980
For GMC K15 1977-1980
Length:
29.49"
Material:
High Quality Steel
Colour:
Black painted
MOQ:
1pc if we have in stock
Note:
Have stock in China and US!

###

OE NO.
FITMENT
OE NO.
FITMENT
15113831
for CHEVROLET Astro
15087453
for CHEVROLET Silverado
15763590
for CHEVROLET Astro
15090195
for CHEVROLET Silverado
15011500
for CHEVROLET Astro
15719954
for CHEVROLET Silverado
15038493
for CHEVROLET Blazer
15769055
for CHEVROLET Silverado
26055483
for CHEVROLET Blazer
15711949
for CHEVROLET Silverado
92194140
for CHEVROLET Camaro
20912697
for CHEVROLET Silverado
92236999
for CHEVROLET Camaro
15794277
for CHEVROLET Silverado
92244891
for CHEVROLET Camaro
52105758AE
for CHEVROLET Silverado
20781756
for CHEVROLET Captiva
52105758AC
for CHEVROLET Silverado
96624771
for CHEVROLET Captiva
15271513
for CHEVROLET Silverado
15126587
for CHEVROLET Colorado
25857882
for CHEVROLET Silverado
15173138
for CHEVROLET Colorado
26037369
for CHEVROLET Silverado 1500
15286715
for CHEVROLET Colorado
53006786
for CHEVROLET Silverado 1500
20811300
for CHEVROLET Equinox
15094629
for CHEVROLET Silverado 1500
15801608
for CHEVROLET Equinox
10382040
for CHEVROLET Silverado 1500
25793000
for CHEVROLET Equinox
52105932AE
for CHEVROLET Silverado 3500
19328628
for CHEVROLET Equinox
52105932AG
for CHEVROLET Silverado 3500
20811303
for CHEVROLET Equinox
53006786AB
for CHEVROLET Silverado 3500
22889825
for CHEVROLET Express
15114531
for CHEVROLET Silverado 3500
20912345
for CHEVROLET Express
49300‐2B500
for CHEVROLET Silverado 3500
26057962
for CHEVROLET K1500
49300‐2S000
for CHEVROLET Silverado 3500
26038121
for CHEVROLET K2500
52105758AD
for CHEVROLET Silverado 3500
26057963
for CHEVROLET K2500
25976620
for CHEVROLET Silverado 3500
15087450
for CHEVROLET Silverado
15016994
for CHEVROLET Silverado 3500
15764125
for CHEVROLET Silverado
15024431
for CHEVROLET Silverado 3500
15186002
for CHEVROLET Silverado
15271519
for CHEVROLET Silverado 3500
15182094
for CHEVROLET Silverado
25775919
for CHEVROLET Silverado 3500
15109400
for CHEVROLET Silverado
25857888
for CHEVROLET Silverado 3500
15163798
for CHEVROLET Silverado
25857887
for CHEVROLET Silverado 3500
15024402
for CHEVROLET Silverado
53006781
for CHEVROLET Silverado 3500
15109388
for CHEVROLET Silverado
15016993
for CHEVROLET Silverado 3500
15189834
for CHEVROLET Silverado
25995544
for CHEVROLET Traverse
15749292
for CHEVROLET Silverado
25995545
for CHEVROLET Traverse
15746001
for CHEVROLET Silverado
25857868
for CHEVROLETE Silverado
15189835
for CHEVROLET Silverado
 
 
10382035
for GM Silverado 1500
84083946
for GMC Yukon XL Denali
15004110
for GMC K2500
23251156
for GMC Yukon XL Denali
7L6521102M
for GMC Sierra 2500 HD
23209521
for GMC Yukon XL Denali
15109384
for GMC Sierra 2500 HD
52099498AB
for GMC Yukon
7L6521102P
for GMC Sierra 3500 Classic
52099497AC
for GMC Yukon
95542102015
for GMC Sierra 3500 Classic
52099497AD
for GMC Yukon
15024424
for GMC Sierra 3500 Classic
F77A4A376CB
for GMC Yukon
25776616
for GMC Sierra 3500 Classic
26207526677
for GMC Yukon
7L6521101E
for GMC Yukon
26207529294
for GMC Yukon
7L6521102Q
for GMC Yukon
84202544
for GMC Yukon
7L0521101D
for GMC Yukon
23267375
for GMC Yukon
7L0521101H
for GMC Yukon
23469165
for GMC Yukon
7L6521102J
for GMC Yukon
23126607
for GMC Yukon
84546234
for GMC Yukon
15036952
for GMC Yukon
15247182
for GMC Yukon
26055999
for GMC Yukon
15902926
for GMC Yukon
XL2Z4A376BA
for GMC Yukon XL
22845693
for GMC Yukon
XL2Z4A376BB
for GMC Yukon XL
22847354
for GMC Yukon
52105982AC
for GMC Yukon XL
26207629987
for GMC Yukon XL Denali
23126608
for GMC Yukon XL
7L6521101G
for GMC Yukon XL Denali
23318717
for GMC Yukon XL
7L6521101N
for GMC Yukon XL Denali
84202545
for GMC Yukon XL
7L6521101C
for GMC Yukon XL Denali
84546234
for GMC Yukon XL Denali
CARDONE
FITMENT
DORMAN
FITMENT
65-9519
for CHEVROLET SILVERADO 1500
938-186
for CHEVROLET SILVERADO 1500
65-9520
for CHEVROLET SILVERADO 2500
938-222
for CHEVROLET SILVERADO 2500
65-9339
for CHEVROLET BLAZER
938-192
for CHEVROLET BLAZER
65-9329 / 65-9332
for Chevrolet Blazer S10
938-080
for Chevrolet Blazer S10
65-9359
for Chevrolet Blazer S10
938-083
for Chevrolet Blazer S10
65-1001A
for Chevrolet Equinox
936-297
for CHEVROLET 1500
65-9360
for CHEVROLET K1500
936-294
for CHEVROLET AVALANCHE 1500
65-9362
for CHEVROLET K1500
938-098
for CHEVROLET Blazer K1500 K2500 Yukon
65-9366
for CHEVROLET K2500 K3500
946-030
for CHEVROLET Camaro
65-9371
for Chevrolet Silverado1500
936-291
for CHEVROLET Colorado Canyon
65-9395
for CHEVROLET Avalanche 1500
936-120
for Chevrolet Equinox
65-9333
for CHEVROLET BLAZER
946-035
for CHEVROLET EQUINOX
65-9346
for CHEVROLET BLAZER
946-072
for CHEVROLET EXPRESS 3500 4500
65-9369
for Chevrolet BLAZER
938-187
for Chevrolet K10/K20
65-9348
for CHEVROLET Blazer K1500 K2500 Yukon
936-064
for CHEVROLET K1500 PICKUP
65-9334
for CHEVROLET Blazer, K10 Pickup, K20 Pickup
938-220
for CHEVROLET Silverado 1500
65-9337
for Chevrolet K10/K20
938-221
for CHEVROLET SILVERADO 1500
65-9338
for CHEVROLET K10/K20
938-025
for CHEVROLET SILVERADO 2500
65-9344
for CHEVROLET K2500
946-093
for CHEVROLET Silverado 2500 HD
65-9307
for CHEVROLET SILVERADO 1500
946-963
for Chevy Blazer
65-9527
for CHEVROLET SILVERADO 1500 SIERRA 2500
936-113
for Chevy Colorado
65-9306
for CHEVROLET SILVERADO 2500
936-057
for Chevy Express
65-9528
for CHEVROLET SILVERADO 2500
938-219
for Chevy S-10 Jimmy Sonoma
65-9827
for CHEVROLET SILVERADO 2500/3500
946-047
for Chevy Silverado 1500
65-9518
for Chevy
938-189
for Chevy Astro Safari
65-9353
for Chevy CK Pickup
936-059
for Chevy Silverado 1500
65-9516
for Chevy Colorado
 
 
65-9336
for Chevy K30
 
 
65-9351
for Chevy K30
 
 
65-9358
for Chevy S-10 Jimmy Sonoma
 
 
65-9529
for Chevy Silverado 1500
 
 
65-9146
for Chevy Astro Safari
 
 
65-9347
for GMC K3500
 
 
65-9355
for GMC SAFARI, CHEVY ASTRO VAN
 
 
After-sales Service: 1 Year
Condition: New
Color: Black
Certification: ISO, Ts16949
Type: Drive Shaft
Application Brand: Chevrolet

###

Samples:
US$ 300/Piece
1 Piece(Min.Order)

|
Request Sample

###

Customization:

###

Product Name:
Front Prop Drive Shaft For 77-80 Chevrolet K10 K20 Blazer, GMC Jimmy K15
OE NO.:
65-9337
Vehicle Fitment:
For Chevrolet K10 1977-1980
For Chevrolet K20 1977-1980
For Chevrolet Blazer 1977-1980
For GMC Jimmy 1977-1980
For GMC K15 1977-1980
Length:
29.49"
Material:
High Quality Steel
Colour:
Black painted
MOQ:
1pc if we have in stock
Note:
Have stock in China and US!

###

OE NO.
FITMENT
OE NO.
FITMENT
15113831
for CHEVROLET Astro
15087453
for CHEVROLET Silverado
15763590
for CHEVROLET Astro
15090195
for CHEVROLET Silverado
15011500
for CHEVROLET Astro
15719954
for CHEVROLET Silverado
15038493
for CHEVROLET Blazer
15769055
for CHEVROLET Silverado
26055483
for CHEVROLET Blazer
15711949
for CHEVROLET Silverado
92194140
for CHEVROLET Camaro
20912697
for CHEVROLET Silverado
92236999
for CHEVROLET Camaro
15794277
for CHEVROLET Silverado
92244891
for CHEVROLET Camaro
52105758AE
for CHEVROLET Silverado
20781756
for CHEVROLET Captiva
52105758AC
for CHEVROLET Silverado
96624771
for CHEVROLET Captiva
15271513
for CHEVROLET Silverado
15126587
for CHEVROLET Colorado
25857882
for CHEVROLET Silverado
15173138
for CHEVROLET Colorado
26037369
for CHEVROLET Silverado 1500
15286715
for CHEVROLET Colorado
53006786
for CHEVROLET Silverado 1500
20811300
for CHEVROLET Equinox
15094629
for CHEVROLET Silverado 1500
15801608
for CHEVROLET Equinox
10382040
for CHEVROLET Silverado 1500
25793000
for CHEVROLET Equinox
52105932AE
for CHEVROLET Silverado 3500
19328628
for CHEVROLET Equinox
52105932AG
for CHEVROLET Silverado 3500
20811303
for CHEVROLET Equinox
53006786AB
for CHEVROLET Silverado 3500
22889825
for CHEVROLET Express
15114531
for CHEVROLET Silverado 3500
20912345
for CHEVROLET Express
49300‐2B500
for CHEVROLET Silverado 3500
26057962
for CHEVROLET K1500
49300‐2S000
for CHEVROLET Silverado 3500
26038121
for CHEVROLET K2500
52105758AD
for CHEVROLET Silverado 3500
26057963
for CHEVROLET K2500
25976620
for CHEVROLET Silverado 3500
15087450
for CHEVROLET Silverado
15016994
for CHEVROLET Silverado 3500
15764125
for CHEVROLET Silverado
15024431
for CHEVROLET Silverado 3500
15186002
for CHEVROLET Silverado
15271519
for CHEVROLET Silverado 3500
15182094
for CHEVROLET Silverado
25775919
for CHEVROLET Silverado 3500
15109400
for CHEVROLET Silverado
25857888
for CHEVROLET Silverado 3500
15163798
for CHEVROLET Silverado
25857887
for CHEVROLET Silverado 3500
15024402
for CHEVROLET Silverado
53006781
for CHEVROLET Silverado 3500
15109388
for CHEVROLET Silverado
15016993
for CHEVROLET Silverado 3500
15189834
for CHEVROLET Silverado
25995544
for CHEVROLET Traverse
15749292
for CHEVROLET Silverado
25995545
for CHEVROLET Traverse
15746001
for CHEVROLET Silverado
25857868
for CHEVROLETE Silverado
15189835
for CHEVROLET Silverado
 
 
10382035
for GM Silverado 1500
84083946
for GMC Yukon XL Denali
15004110
for GMC K2500
23251156
for GMC Yukon XL Denali
7L6521102M
for GMC Sierra 2500 HD
23209521
for GMC Yukon XL Denali
15109384
for GMC Sierra 2500 HD
52099498AB
for GMC Yukon
7L6521102P
for GMC Sierra 3500 Classic
52099497AC
for GMC Yukon
95542102015
for GMC Sierra 3500 Classic
52099497AD
for GMC Yukon
15024424
for GMC Sierra 3500 Classic
F77A4A376CB
for GMC Yukon
25776616
for GMC Sierra 3500 Classic
26207526677
for GMC Yukon
7L6521101E
for GMC Yukon
26207529294
for GMC Yukon
7L6521102Q
for GMC Yukon
84202544
for GMC Yukon
7L0521101D
for GMC Yukon
23267375
for GMC Yukon
7L0521101H
for GMC Yukon
23469165
for GMC Yukon
7L6521102J
for GMC Yukon
23126607
for GMC Yukon
84546234
for GMC Yukon
15036952
for GMC Yukon
15247182
for GMC Yukon
26055999
for GMC Yukon
15902926
for GMC Yukon
XL2Z4A376BA
for GMC Yukon XL
22845693
for GMC Yukon
XL2Z4A376BB
for GMC Yukon XL
22847354
for GMC Yukon
52105982AC
for GMC Yukon XL
26207629987
for GMC Yukon XL Denali
23126608
for GMC Yukon XL
7L6521101G
for GMC Yukon XL Denali
23318717
for GMC Yukon XL
7L6521101N
for GMC Yukon XL Denali
84202545
for GMC Yukon XL
7L6521101C
for GMC Yukon XL Denali
84546234
for GMC Yukon XL Denali
CARDONE
FITMENT
DORMAN
FITMENT
65-9519
for CHEVROLET SILVERADO 1500
938-186
for CHEVROLET SILVERADO 1500
65-9520
for CHEVROLET SILVERADO 2500
938-222
for CHEVROLET SILVERADO 2500
65-9339
for CHEVROLET BLAZER
938-192
for CHEVROLET BLAZER
65-9329 / 65-9332
for Chevrolet Blazer S10
938-080
for Chevrolet Blazer S10
65-9359
for Chevrolet Blazer S10
938-083
for Chevrolet Blazer S10
65-1001A
for Chevrolet Equinox
936-297
for CHEVROLET 1500
65-9360
for CHEVROLET K1500
936-294
for CHEVROLET AVALANCHE 1500
65-9362
for CHEVROLET K1500
938-098
for CHEVROLET Blazer K1500 K2500 Yukon
65-9366
for CHEVROLET K2500 K3500
946-030
for CHEVROLET Camaro
65-9371
for Chevrolet Silverado1500
936-291
for CHEVROLET Colorado Canyon
65-9395
for CHEVROLET Avalanche 1500
936-120
for Chevrolet Equinox
65-9333
for CHEVROLET BLAZER
946-035
for CHEVROLET EQUINOX
65-9346
for CHEVROLET BLAZER
946-072
for CHEVROLET EXPRESS 3500 4500
65-9369
for Chevrolet BLAZER
938-187
for Chevrolet K10/K20
65-9348
for CHEVROLET Blazer K1500 K2500 Yukon
936-064
for CHEVROLET K1500 PICKUP
65-9334
for CHEVROLET Blazer, K10 Pickup, K20 Pickup
938-220
for CHEVROLET Silverado 1500
65-9337
for Chevrolet K10/K20
938-221
for CHEVROLET SILVERADO 1500
65-9338
for CHEVROLET K10/K20
938-025
for CHEVROLET SILVERADO 2500
65-9344
for CHEVROLET K2500
946-093
for CHEVROLET Silverado 2500 HD
65-9307
for CHEVROLET SILVERADO 1500
946-963
for Chevy Blazer
65-9527
for CHEVROLET SILVERADO 1500 SIERRA 2500
936-113
for Chevy Colorado
65-9306
for CHEVROLET SILVERADO 2500
936-057
for Chevy Express
65-9528
for CHEVROLET SILVERADO 2500
938-219
for Chevy S-10 Jimmy Sonoma
65-9827
for CHEVROLET SILVERADO 2500/3500
946-047
for Chevy Silverado 1500
65-9518
for Chevy
938-189
for Chevy Astro Safari
65-9353
for Chevy CK Pickup
936-059
for Chevy Silverado 1500
65-9516
for Chevy Colorado
 
 
65-9336
for Chevy K30
 
 
65-9351
for Chevy K30
 
 
65-9358
for Chevy S-10 Jimmy Sonoma
 
 
65-9529
for Chevy Silverado 1500
 
 
65-9146
for Chevy Astro Safari
 
 
65-9347
for GMC K3500
 
 
65-9355
for GMC SAFARI, CHEVY ASTRO VAN
 
 

How to tell if your driveshaft needs replacing

What is the cause of the unbalanced drive shaft? Unstable U-joint? Your car may make clicking noises while driving. If you can hear it from both sides, it might be time to hand it over to the mechanic. If you’re not sure, read on to learn more. Fortunately, there are many ways to tell if your driveshaft needs replacing.

unbalanced

An unbalanced driveshaft can be the source of strange noises and vibrations in your vehicle. To fix this problem, you should contact a professional. You can try a number of things to fix it, including welding and adjusting the weight. The following are the most common methods. In addition to the methods above, you can use standardized weights to balance the driveshaft. These standardized weights are attached to the shaft by welders.
An unbalanced drive shaft typically produces lateral vibrations per revolution. This type of vibration is usually caused by a damaged shaft, missing counterweights, or a foreign object stuck on the drive shaft. On the other hand, torsional vibrations occur twice per revolution, and they are caused by shaft phase shifts. Finally, critical speed vibration occurs when the RPM of the drive shaft exceeds its rated capacity. If you suspect a driveshaft problem, check the following:
Manually adjusting the imbalance of a drive shaft is not the easiest task. To avoid the difficulty of manual balancing, you can choose to use standardized weights. These weights are fixed on the outer circumference of the drive shaft. The operator can manually position the weight on the shaft with special tools, or use a robot. However, manual balancers have many disadvantages.
air-compressor

unstable

When the angular velocity of the output shaft is not constant, it is unstable. The angular velocity of the output shaft is 0.004 at ph = 29.5 and 1.9 at t = 1.9. The angular velocity of the intermediate shaft is not a problem. But when it’s unstable, the torque applied to it is too much for the machine. It might be a good idea to check the tension on the shaft.
An unstable drive shaft can cause a lot of noise and mechanical vibration. It can lead to premature shaft fatigue failure. CZPT studies the effect of shaft vibration on the rotor bearing system. They investigated the effect of flex coupling misalignment on the vibration of the rotor bearing system. They assume that the vibrational response has two components: x and y. However, this approach has limited application in many situations.
Experimental results show that the presence of cracks in the output shaft may mask the unbalanced excitation characteristics. For example, the presence of superharmonic peaks on the spectrum is characteristic of cracks. The presence of cracks in the output shaft masks unbalanced excitation characteristics that cannot be detected in the transient response of the input shaft. Figure 8 shows that the frequency of the rotor increases at critical speed and decreases as the shaft passes the natural frequency.

Unreliable

If you’re having trouble driving your car, chances are you’ve run into an unreliable driveshaft. This type of drivetrain can cause the wheels to stick or not turn at all, and also limit the overall control of the car. Whatever the reason, these issues should be resolved as soon as possible. Here are some symptoms to look for when diagnosing a driveshaft fault. Let’s take a closer look.
The first symptom you may notice is an unreliable drive shaft. You may feel vibrations, or hear noises under the vehicle. Depending on the cause, it could be a broken joint or a broken shaft. The good news is that driveshaft repairs are generally relatively inexpensive and take less time than a complete drivetrain replacement. If you’re not sure what to do, CZPT has a guide to replacing the U-connector.
One of the most common signs of an unreliable driveshaft is clanging and vibration. These sounds can be caused by worn bushings, loose U-joints, or damaged center bearings. This can cause severe vibration and noise. You can also feel these vibrations through the steering wheel or the floor. An unreliable driveshaft is a symptom of a bigger problem.
air-compressor

Unreliable U-joints

A car with an unreliable U-joint on the drive shaft can be dangerous. A bad u-joint can prevent the vehicle from driving properly and may even cause you trouble. Unreliable u-joints are cheap to replace and you should try getting parts from quality manufacturers. Unreliable U-joints can cause the car to vibrate in the chassis or gear lever. This is a sure sign that your car has been neglected in maintenance.
Replacing a U-joint is not a complicated task, but it requires special tools and a lot of elbow grease. If you don’t have the right tools, or you’re unfamiliar with mechanical terminology, it’s best to seek the help of a mechanic. A professional mechanic will be able to accurately assess the problem and propose an appropriate solution. But if you don’t feel confident enough, you can replace your own U-connector by following a few simple steps.
To ensure the vehicle’s driveshaft is not damaged, check the U-joint for wear and lubrication. If the U-joint is worn, the metal parts are likely to rub against each other, causing wear. The sooner a problem is diagnosed, the faster it can be resolved. Also, the longer you wait, the more you lose on repairs.

damaged drive shaft

The driveshaft is the part of the vehicle that connects the wheels. If the driveshaft is damaged, the wheels may stop turning and the vehicle may slow down or stop moving completely. It bears the weight of the car itself as well as the load on the road. So even a slight bend or break in the drive shaft can have dire consequences. Even a piece of loose metal can become a lethal missile if dropped from a vehicle.
If you hear a screeching noise or growl from your vehicle when shifting gears, your driveshaft may be damaged. When this happens, damage to the u-joint and excessive slack in the drive shaft can result. These conditions can further damage the drivetrain, including the front half. You should replace the driveshaft as soon as you notice any symptoms. After replacing the driveshaft, you can start looking for signs of wear.
A knocking sound is a sign of damage to the drive shaft. If you hear this sound while driving, it may be due to worn couplings, damaged propshaft bearings, or damaged U-joints. In some cases, the knocking noise can even be caused by a damaged U-joint. When this happens, you may need to replace the entire driveshaft, requiring a new one.
air-compressor

Maintenance fees

The cost of repairing a driveshaft varies widely, depending on the type and cause of the problem. A new driveshaft costs between $300 and $1,300, including labor. Repairing a damaged driveshaft can cost anywhere from $200 to $300, depending on the time required and the type of parts required. Symptoms of a damaged driveshaft include unresponsiveness, vibration, chassis noise and a stationary car.
The first thing to consider when estimating the cost of repairing a driveshaft is the type of vehicle you have. Some vehicles have more than one, and the parts used to make them may not be compatible with other cars. Even if the same car has two driveshafts, the damaged ones will cost more. Fortunately, many auto repair shops offer free quotes to repair damaged driveshafts, but be aware that such work can be complicated and expensive.

China 65-9337 Front Prop Drive Shaft for 77-80 Chevrolet K10 K20 Blazer, Gmc Jimmy K15 Driveshaft     drive shaft assembly parts	China 65-9337 Front Prop Drive Shaft for 77-80 Chevrolet K10 K20 Blazer, Gmc Jimmy K15 Driveshaft     drive shaft assembly parts
editor by czh 2022-12-06

Tractor shop China prop shaft Pto Driven 2 Row Peanut Harvest with ce certificate top quality low price

We – EPG Group the most significant agricultural gearbox and pto factory in China with 5 diverse branches. For far more particulars: Cellular/whatsapp/telegram/Kakao us at: 0086-13083988828

Tractor  shop  China  prop shaft Pto Driven 2 Row Peanut Harvest with ce certificate top quality low price

rhino pto shaft EPG double knuckle pto shaft significant 2009 jeep grand cherokee entrance generate shaft generation slicing pto shaft tractor attachments is defender rear prop shaft of bmw e90 generate shaft farming pto coupler types 15-500 pto shaft protect for sale horsepower alto drive shaft tractor bush hog shaft protect supporting equipment, mechanical cultivation, harvesting equipment and accessories. Our products are promoting nicely in Chinese markets and some merchandise bought in international marketplaces are properly gained by Chinese and overseas consumers at house and abroad. The peanut harvesting machine rewards:
one.Cell: +86~13083988828 shovel blade: in contrast with a mounted shovel blade,the Cell: +86~13083988828 shovel blade can minimize maximally resistance of harvesting.
So it can easily total the function in the scenario of lower energy.
two.The device can harvest peanut in flat or ridging fields
3.Modest vibration.
four.Higher efficiency.
five.Ideal for any soil

Item Description:
Principle of work: Tractor drives the harvester doing work, Digging shovel shove EPT soil at a particular angle. Peanut
vine and soil will be pushed to the roller chain of conveyor. The roller chain is moving backward and shake by vibrating shaft under the roller chain. The soil will be shake off for the duration of the approach, and the peanut vine will be independent with soil.Then the peanut vines are transported to the rear spiral,and the peanut vines toss off neatly by its rotation.

Model YL-S90 YL-S70
Dimension(L*W*H) 190*a hundred and fifteen*110cm one hundred ninety*one zero five*110cm
Matched energy >30hp 4-whee EPT tractor 18-30hp four-whee EPT tracto
Utilised for  any soil any soil
Depth of harvesting 30-40cm thirty-40cm
Width of harvesting 90cm 70cm
Potential .42-.60Acre/h .33-.50Acre/h
Transmission way belt or generate shaft belt or travel shaft
Weight 240kg 200kg

Front Roller:Stay away from peanut harvester sink into the earth, and it will unfastened the soil by operate in excess of in purchase to dig up the peanut far more effortless.
Shovel Blade:Dig up peanut plant
Roll Chain:Supply peanut pl EPT to postposition spiral after the shovel blade dig it up
Rear sprial:Put peanut pl EPT in a row orderly by rotate
Eccentric Wheel:Push swing arm move backwards and forwards

Prior to-sale services 
one. 24 hrs on the internet, Your inquiry will be reply rapidly.
two. Aid you pick the most appropriate machine
three. Introduce detai EPT of the equipment for you with pictures or movie. 
Income provider
one. Tailored device in accordance to your ask for.
two. Test and examine every single machine with rigorous quality control.
three.Packing with stHangZhourd export picket box right after you validate the equipment
After-product sales service 
one. Offer you the skilled engineer aid you to use the machine.
2. Supply technical assist and professional engineer support you remedy issues while using it.
three. Quality guarantee for two a long time. Cost-free fix for good quality dilemma in the course of these many years.

1.Integrate the layout,improvement,manufacture,together.
2. EPT management technique.advanced production and assessment facilities.
3.Exported to the United States Europe,South The usa,the Center East,South Asia,Africa.

Q:1.Are you a manufacturing facility or a investing company?
A:We are a manufacturing facility largely creates the agricultural machinery for eleven several years.We have our personal specialist research group to produce goods.utilizing “Self-produced 
Self-marketing and advertising” organization product, lowering the cost of intermediate hyperlinks.
Q:two.In which is your manufacturing unit positioned ? How can I pay a visit to there?
A:Our factory is positioned in HangZhou metropolis ,ZheJiang province ,China.1 hour push from closest HangZhou HangZhou airport.
Q:3.How long is your shipping and delivery time?
A:All equipment can be ten doing work day after get the deposit.
Q:4.What should I do if there is some difficulty although using?
A:We will provide English manual ebook and get a movie to demonstrate how to solve the troubles or dispatch our engineer to your manufacturing facility.
Q:five.Can we get 1 sample?
A:Yes, one particular sample order is welcome. Even so, we need to incorporate sample price to the value and will return it back to you after acquiring your big order in future.
Q: 6.How do you manage your quality?
A:To guarantee higher high quality and successful management, our whole manufacturing processes are underneath a very critical and rigid technique, and we have passed ISO9001 high quality management method certificate. All of our products are one hundred% inspected just before cargo.

Tractor  shop  China  prop shaft Pto Driven 2 Row Peanut Harvest with ce certificate top quality low price

Agricultural China 2017 polaris ranger prop shaft Pesticide Power Electric Battery Sprayer Pump for Field Pest with ce certificate top quality low price

Agricultural  China  2017 polaris ranger prop shaft Pesticide Power Electric Battery Sprayer Pump for Field Pest with ce certificate top quality low price

We – EPG Team the biggest agricultural gearbox and pto factory in China with five distinct branches. For much more specifics: Cell/whatsapp/telegram/Kakao us at: 0086-13083988828

Our PTO travel shafts allow the user easy servicing. The greasing nipples on normal crosses are positioned under angle to allow the consumer better accessibility. Simpler entry is also achievable simply because of the versatile cone. We listened to the needs of our buyers and placed the greasing nipple at vast-angle PTO’s into the cross bearing. The other novelty, we released with vast-angle PTO push shafts is in line greasing. We wished to moreover simplify the servicing and increase the lifespan of joints. We developed, specially for our customers, a protecting cone which is adaptable and permits less complicated managing whilst coupling the PTO on the tractor or doing work device. The versatile cone delivers additional comfort when coupling the PTO, because you can get a very good grip in the constrained shaft room. generate shaft u joint substitution value Our king kutter pto yoke products pto flex coupler are cci driveshaft selling 2004 f150 rear push shaft nicely 2004 chevy 2500hd rear drive shaft in crs driveshaft Chinese 370z driveshaft markets what is a series one pto shaft and 540 rpm pto gearbox some goods marketed in worldwide marketplaces are well obtained by Chinese and overseas consumers at house and abroad. Our business is positioned in XiHu HangZhou Zhejiang Province. T

3WPZ-1200G variety self propelled spray growth sprayer

3WPZ-1200G series of sprayer is appropriate for spraying the medicament for the planter of bean, corn, cotton, grain.
Also for lawn,fruiter,vegetable, highway side tree. The potential could be 1200L, the spraying width could be 16m with 53hp.
Benefits:
•This sort of growth sprayer is a tractor mounted sprayer.
•Wide doing work scope,spraying for bean,cotton,corn and many others.
•Wide spraying with to be 16m max.and the working angle of this tractor sprayer could be altered.
•The potential of mounted increase sprayer could be altered to meet diverse need to have from the user.

 Model 3WPZ-1200G self-propelled spray growth sprayer  Pump Kind  Plunger pump
 Engine Product  4L68 (Changchai) turbocharged diesel motor  Pump Model  OS-5200
 Power / Pace  53 hp      2400r / min  Pump Pressure  0-45kgf/cm²
 Displacement Stage  China III  Pump Flow  220-240L / Min
 Gear  Forward gear 4,reverse equipment 1  Pump Pace  600-800r / min
 Drive Manner  Four-wheel push  Tank Capacity  1500L
 Steering Mode  Hydraulic steering  Spray Top  0.five-3. m
 Mixing Strategy  Circulating h2o mixing  Nozzle Design  No.three
 Folding Approach  Hydraulic folding  Spray Angle  110°
 Spray Width  16 m  Nozzle Circulation  1.2L / min
 Ground clearance  1.eight m(customizable)  System Perform Pressure  0.three-.5Mpa
 Wheel Track  1.95-two.6 m(adjustable)  3 Filtration System  Tank inlet, pump inlet, nozzle
 Operating Efficiency  21-thirty acres / hour  Battery  12v / 120AH
 Walking Pace  ≤25Km / h  Front Tire Design  Tractor tires nine.five-24
 Overall Dimension  5800 mm x 2900 mm x 3700 mm  Rear Tire Design  Tractor tires 9.five-24
 Weight  3811Kg  Water Tank  15L

Q:Are you a factory or investing organization?

A:We are a manufacturing facility.

Q: How does your manufacturing unit do with regards to good quality manage?

A: Quality is priority. we  constantly say fantastic relevance to quality controlling from the extremely starting to the quite stop.

Q: Do you have a item accessory?

A: Yes, we have the add-ons of the solution.

Q:Can you customize the item?

A:We can personalize the solution.

Q: What’s your payment terms?

A: Payment terms is T/T or L/C,We accept all reasonable payment.

Q: How about delivery time of your machine?

A: The delivery time is in 60 working days. It depending your quantity.

 

The use of original tools manufacturer’s (OEM) part figures or trademarks , e.g. CASE® and John Deere® are for reference reasons only and for indicating product use and compatibility. Our firm and the listed alternative elements contained herein are not sponsored, approved, or made by the OEM.

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