China wholesaler Brush Cutter Part Diameter 8 mm Drive Shaft Brushcutter Spare Part

Product Description

Brush Cutter Part diameter 8 mm Drive Shaft For BrushCutter

  

 

NO Model L- 1 (MM) A (MM) B (MM) Material Note
1 ESR-DS-80-1 80 A STYPE 26*9T A STYPE 26*9T 40CR  
2 ESR-DS-120-1 120 A STYPE 22*9T A STYPE 22*9T 40CR  
3 ESR-DS-120-2 120 A STYPE 22*9T C STYPE 24*5.3 40CR  
4 ESR-DS-135-1 135 A STYPE 22*9T C STYPE 22*5.35 40CR  
5 ESR-DS-135-2 135 A STYPE 22*9T A STYPE 22*9T 72B  
6 ESR-DS-330-1 330 A STYPE 22*9T A STYPE 22*9T 40CR  
7 ESR-DS-340-1 340 C STYPE 22*6.6 B STYPE 13*M7 40CR  
8 ESR-DS-388-1 388 A STYPE 26*9T A STYPE 26*9T 72B  
9 ESR-DS-469-1 469 A STYPE 22*9T A STYPE 22*9T 40CR  
10 ESR-DS-530-1 530 A STYPE 22*9T A STYPE 22*9T 40CR  
11 ESR-DS-600-1 600 A STYPE 26*9T A STYPE 26*9T 40CR  
12 ESR-DS-660-1 660 A STYPE 20*9T B STYPE 25*M8 40CR  
13 ESR-DS-675-1 675 A STYPE 23*9T B STYPE 21*M8 72B  
14 ESR-DS-685-1 685 A STYPE 22*9T B STYPE 26*M8 40CR  
15 ESR-DS-703-1 703 A STYPE 22*9T C STYPE 22*5.3 40CR  
16 ESR-DS-703-2 703 C STYPE 25*5.35 C STYPE 25*5.35 40CR  
17 ESR-DS-725-1 725 B STYPE 25*M8 B STYPE 25*M8 40CR  
18 ESR-DS-747-1 747 A STYPE 24*9T A STYPE 24*9T 40CR  
19 ESR-DS-750-1 750 A STYPE 20*9T B STYPE 25*M8 72B Spline 79.5X1.1X<P7.4
20 ESR-DS-751.5-1 751.5 A STYPE 27*7T B STYPE 20*M7 40CR Spline 138X1.1X<ll7
21 ESR-DS-755- 1 755 A STYPE 2 0*9T C STYPE 24*6.8 72B Spline 44.5X1.1X<D7.4
22 ESR-DS-755-2 755 A STYPE 2 0*9T B STYPE  25*M8 72B  
23 ESR-DS-755-3 755 A STYPE 22*9T A STYPE 22*9T 72B  
24 ESR-DS-757-1 757 A STYPE 20*9T B STYPE 25*M8 72B Spline 79.5X1.1X7.4
25 ESR-DS-757-2 757 A STYPE 20*9T C STYPE 24*6.8 72B Spline 94.5X1.1X7.4
26 ESR-DS-760.5-1 760.5 A STYPE 22*9T A STYPE 22*9T 40CR Spline 25X1.1X7
27 ESR-DS-762-1 762 A STYPE 22*9T A STYPE 22*9T 40CR  
28 ESR-DS-762-2 762 A STYPE 22*7T C STYPE 24*5.3 40CR  

NO Model L-1 (MM) A (MM) B (MM) Material Note
29 ESR-DS-762-3 762 A Style 22*7T A Style 22*7T 40CR  
30 ESR-DS-762-4 762 A Style 22*9T B Style 22*M8 72B  
31 ESR-DS-762-5 762 C Style 22*5.3 C Style 22*5.3 40CR  
32 ESR-DS-763-1 763 A Style 26*9T B Style 30*M8 40CR  
33 ESR-DS-765-1 765 A Style 26*9T C Style 25*6.8 40CR  
34 ESR-DS-772-1 772 A Style 22*9T A Style 22*9T 72B  
35 ESR-DS-773-1 773 A Style 20*9T C Style 24*5 72B  spline44.55X1.1X<P7.4
36 ESR-DS-782-1 782 A Style 22*9T B Style 24*M8 40CR  
37 ESR-DS-784-1 784 A Style 22*9T D Style <P12X22*9T 40CR  
38 ESR-DS-790-1 790 A Style 20*9T A Style 20*9T 40CR  
39 ESR-DS-790-2 790 A Style 22*9T C Style 22*5 72B  
40 ESR-DS-798.5-1 798.5 A Style 28*9T D Style <ll14X19*5.4 40CR  
41 ESR-DS-822-1 822 A Style 25*9T B Style 20*M8 40CR  
42 ESR-DS-832-1 832 A Style 24*9T B Style 15*M8 40CR  
43 ESR-DS-840-1 840 A Style 22*9T A Style 22*9T 40CR  
44 ESR-DS-846-1 846 A Style 24*9T B Style 18*M8 40CR  
45 ESR-DS-855-1 855 A Style 22*9T A Style 22*9T 72B  
46 ESR-DS-915-1 915 A Style 22*9T A Style 22*9T 40CR  
47 ESR-DS-948-1 948 A Style 22*9T A Style 22*9T 40CR  
48 ESR-DS-953-1 953 A Style 22*9T A Style 22*9T 40CR  
49 ESR-DS-965-1 965 A Style 22*9T A Style 22*9T 72B  
50 ESR-DS-1000-1 1000 A Style 22*9T A Style 22*9T 40CR  
51 ESR-DS-1015-1 1015 A Style 22*9T A Style 22*9T 40CR  
52 ESR-DS-1092-1 1092 A Style 22*9T A Style 22*9T 40CR  
53 ESR-DS-1222-1 1222 C Style 22*5.3 B Style 13*M7 40CR  
54 ESR-DS-1255-1 1255 A Style 22*9T D Style 13X26*7 40CR  
55 ESR-DS-1299-1 1299 A Style 22*9T B Style 13*M7 40CR  
56 ESR-DS-1322-1 1322 C Style 22*5.3 B Style 14*M7 40CR  
57 ESR-DS-1324-1 1324 A Style 30*9T B Style 25*M8 40CR  
58 ESR-DS-1330-1 1330 A Style 22*9T C Style 30*6.8 40CR  

59 ESR-DS-1350-1 1350 A Style 26*9T B Style 25*M8 40CR  
60 ESR-DS-1370-1 1370 A Style 24*9T B Style 25*M8 40CR  
61 ESR-DS-1375- 1 1375 A Style 22*9T A Style 22*9T 40CR  
62 ESR-DS-1380-1 1380 A Style 24*9T B Style 25*M8 40CR  
63 ESR-DS-1380-2 1380 A Style 24*7T B Style 25*M8 40CR  
64 ESR-DS-1380-3 1380 A Style 30*9T B Style 25*M8 40CR  
65 ESR-DS-1390-1 1390 A Style 22*9T A Style 22*9T 40CR  
66 ESR-DS-1390-2 1390 A Style 24*7T B Style 25*M8 40CR  
67 ESR-DS-1390-3 1390 A Style 24*9T B Style 25*M8 40CR  
68 ESR-DS-1390-4 1390 A Style 24*9T D Style 13X26*7 40CR  
69 ESR-DS-1398-1 1398 A Style 25*9T D Style 4>13X26*7 40CR  
70 ESR-DS-1405- 1 1405 A Style 24*9T D Style 13X26*7 40CR  
71 ESR-DS-1448-1 1448 A Style 22*9T C Style 22*5.35 40CR  

72 ESR-DS-1460-1 1460 AStyle 22*9T AStyle 22*9T 40CR  
73 JG-VZ-1469-1 1469 AStyle 30*9T BStyle 25*M8 40CR  
74 ESR-DS-1476-1 1476 CStyle 22*5.3 BStyle 13*M7 40CR  
75 JG-VZ-1480-1 1480 AStyle 22*9T AStyle 22*9T 40CR  
76 ESR-DS-1490-1 1490 AStyle 20*9T AStyle 20*9T 40CR  
77 ESR-DS-1500-1 1500 AStyle 26*9T AStyle 26*9T 40CR  
78 ESR-DS-1500-2 1500 AStyle 22*9T CStyle 30*6.8 40CR  
79 ESR-DS-1500-3 1500 AStyle 26*9T AStyle 26*9T 40CR  
80 ESR-DS-1510-1 1510 AStyle 26*9T AStyle 26*9T 40CR  
81 ESR-DS-1515-1 1515 AStyle 26*9T AStyle 26*9T 40CR  
82 ESR-DS-1517-1 1517 AStyle 22*9T AStyle 22*9T 40CR  
83 ESR-DS-1518-1 1518 AStyle 27*9T CStyle 27*5.35 40CR  
84 ESR-DS-1519-1 1519 AStyle 24*9T AStyle 24*9T 40CR  
85 ESR-DS-1522-1 1522 AStyle 22*9T AStyle 22*9T 40CR  
86 ESR-DS-1522-2 1522 AStyle 22*7T AStyle 22*7T 72B  
87 ESR-DS-1522-3 1522 AStyle 22*9T AStyle 30*9T 72B  
88 ESR-DS-1525-1 1525 AStyle 20*9T AStyle 25*9T 40CR  
89 ESR-DS-1526-1 1526 AStyle 24*9T AStyle 24*9T 40CR  
90 ESR-DS-1526.5-1 1526.5 AStyle 22*9T AStyle 22*9T 40CR  
91 ESR-DS-1530-1 1530 AStyle 26*9T AStyle 26*9T 40CR  
92 ESR-DS-1530-2 1530 AStyle 26*9T BStyle 25*M8 40CR  
93 ESR-DS-1530-3 1530 AStyle 26*7T AStyle 26*7T 40CR  
94 ESR-DS-1530-4 1530 CStyle 26*5.3 CStyle 26*5.3 40CR  
95 ESR-DS-1532-1 1532 AStyle 27*9T AStyle 27*9T 40CR  
96 ESR-DS-1534-1 1534 AStyle 24*9T AStyle 24*9T 40CR  
97 ESR-DS-1534- 2 1534 AStyle 24*9T BStyle 14*M8 40CR  
98 ESR-DS-1535- 1 1535 AStyle 25*9T BStyle 20*M8 40CR  
99 ESR-DS-1537- 1 1537 AStyle 25*9T BStyle 13*M8 40CR  
100 ESR-DS-1537- 2 1537 AStyle 25*9T BStyle 25*M8 40CR  
101 ESR-DS-1540-1 1540 AStyle 26*9T AStyle 26*9T 40CR  
102 ESR-DS-1542-1 1542 AStyle 31*9T BStyle 14*1*M8 72B  
103 ESR-DS-1545-1 1545 AStyle 28*10T AStyle 28*10T 40CR  
104 ESR-DS-1545- 2 1545 AStyle 22*9T CStyle 26*6.8 40CR  
105 ESR-DS-1546-1 1546 AStyle 26*9T AStyle 26*9T 40CR  
106 ESR-DS-1550-1 1550 AStyle 26*9T BStyle 25*M8 40CR  
107 ESR-DS-1550-2 1550 AStyle 26*9T AStyle 26*9T 40CR  
108 ESR-DS-1553-1 1553 AStyle 26*9T AStyle 26*9T 40CR  
109 ESR-DS-1555-1 1555 AStyle 26*9T DStyle cP1 3X26*7 40CR  
110 ESR-DS-1560- 1 1560 AStyle 28*10T AStyle 28*10T 40CR  
111 ESR-DS-1575- 1 1575 AStyle 26*9T DStyle CD13X26*7 40CR  
112 ESR-DS-1610-1 1610 CStyle 27*6.1 CStyle 27*6.1 40CR  
113 ESR-DS-1622-1 1622 AStyle 22*9T AStyle 22*9T 40CR  

FAQ:

 

Notice

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2.  Please compare the good’s appearance, shape, size with your original parts before ordering.

3.  Due to the different color resolution settings of the display,  the CZPT may have a color difference, please know it.

4.  All our products are non-assembled, pictures are for reference only.

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About Us

We do retail and wholesale for gasoline chainsaw, brush cutter, grass trimmer, and other garden tool parts. Welcome here to pick out and buy.

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If you have questions or problems please leave messages, we will reply to you as soon as possible.

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Certification: RoHS, CE, ISO, CCC
Power Source: Gasoline
Type: Drive Shaft
Material: Abcd Style
Diameter: 8mm
Drive Shaft Style: a/B/C/D
Customization:
Available

|

Customized Request

pto shaft

Can drive shafts be adapted for use in both automotive and industrial settings?

Yes, drive shafts can be adapted for use in both automotive and industrial settings. While there may be some differences in design and specifications based on the specific application requirements, the fundamental principles and functions of drive shafts remain applicable in both contexts. Here’s a detailed explanation:

1. Power Transmission:

Drive shafts serve the primary purpose of transmitting rotational power from a power source, such as an engine or motor, to driven components, which can be wheels, machinery, or other mechanical systems. This fundamental function applies to both automotive and industrial settings. Whether it’s delivering power to the wheels of a vehicle or transferring torque to industrial machinery, the basic principle of power transmission remains the same for drive shafts in both contexts.

2. Design Considerations:

While there may be variations in design based on specific applications, the core design considerations for drive shafts are similar in both automotive and industrial settings. Factors such as torque requirements, operating speeds, length, and material selection are taken into account in both cases. Automotive drive shafts are typically designed to accommodate the dynamic nature of vehicle operation, including variations in speed, angles, and suspension movement. Industrial drive shafts, on the other hand, may be designed for specific machinery and equipment, taking into consideration factors such as load capacity, operating conditions, and alignment requirements. However, the underlying principles of ensuring proper dimensions, strength, and balance are essential in both automotive and industrial drive shaft designs.

3. Material Selection:

The material selection for drive shafts is influenced by the specific requirements of the application, whether in automotive or industrial settings. In automotive applications, drive shafts are commonly made from materials such as steel or aluminum alloys, chosen for their strength, durability, and ability to withstand varying operating conditions. In industrial settings, drive shafts may be made from a broader range of materials, including steel, stainless steel, or even specialized alloys, depending on factors such as load capacity, corrosion resistance, or temperature tolerance. The material selection is tailored to meet the specific needs of the application while ensuring efficient power transfer and durability.

4. Joint Configurations:

Both automotive and industrial drive shafts may incorporate various joint configurations to accommodate the specific requirements of the application. Universal joints (U-joints) are commonly used in both contexts to allow for angular movement and compensate for misalignment between the drive shaft and driven components. Constant velocity (CV) joints are also utilized, particularly in automotive drive shafts, to maintain a constant velocity of rotation and accommodate varying operating angles. These joint configurations are adapted and optimized based on the specific needs of automotive or industrial applications.

5. Maintenance and Service:

While maintenance practices may vary between automotive and industrial settings, the importance of regular inspection, lubrication, and balancing remains crucial in both cases. Both automotive and industrial drive shafts benefit from periodic maintenance to ensure optimal performance, identify potential issues, and prolong the lifespan of the drive shafts. Lubrication of joints, inspection for wear or damage, and balancing procedures are common maintenance tasks for drive shafts in both automotive and industrial applications.

6. Customization and Adaptation:

Drive shafts can be customized and adapted to meet the specific requirements of various automotive and industrial applications. Manufacturers often offer drive shafts with different lengths, diameters, and joint configurations to accommodate a wide range of vehicles or machinery. This flexibility allows for the adaptation of drive shafts to suit the specific torque, speed, and dimensional requirements of different applications, whether in automotive or industrial settings.

In summary, drive shafts can be adapted for use in both automotive and industrial settings by considering the specific requirements of each application. While there may be variations in design, materials, joint configurations, and maintenance practices, the fundamental principles of power transmission, design considerations, and customization options remain applicable in both contexts. Drive shafts play a crucial role in both automotive and industrial applications, enabling efficient power transfer and reliable operation in a wide range of mechanical systems.

pto shaft

How do drive shafts enhance the performance of automobiles and trucks?

Drive shafts play a significant role in enhancing the performance of automobiles and trucks. They contribute to various aspects of vehicle performance, including power delivery, traction, handling, and overall efficiency. Here’s a detailed explanation of how drive shafts enhance the performance of automobiles and trucks:

1. Power Delivery: Drive shafts are responsible for transmitting power from the engine to the wheels, enabling the vehicle to move forward. By efficiently transferring power without significant losses, drive shafts ensure that the engine’s power is effectively utilized, resulting in improved acceleration and overall performance. Well-designed drive shafts with minimal power loss contribute to the vehicle’s ability to deliver power to the wheels efficiently.

2. Torque Transfer: Drive shafts facilitate the transfer of torque from the engine to the wheels. Torque is the rotational force that drives the vehicle forward. High-quality drive shafts with proper torque conversion capabilities ensure that the torque generated by the engine is effectively transmitted to the wheels. This enhances the vehicle’s ability to accelerate quickly, tow heavy loads, and climb steep gradients, thereby improving overall performance.

3. Traction and Stability: Drive shafts contribute to the traction and stability of automobiles and trucks. They transmit power to the wheels, allowing them to exert force on the road surface. This enables the vehicle to maintain traction, especially during acceleration or when driving on slippery or uneven terrain. The efficient power delivery through the drive shafts enhances the vehicle’s stability by ensuring balanced power distribution to all wheels, improving control and handling.

4. Handling and Maneuverability: Drive shafts have an impact on the handling and maneuverability of vehicles. They help establish a direct connection between the engine and the wheels, allowing for precise control and responsive handling. Well-designed drive shafts with minimal play or backlash contribute to a more direct and immediate response to driver inputs, enhancing the vehicle’s agility and maneuverability.

5. Weight Reduction: Drive shafts can contribute to weight reduction in automobiles and trucks. Lightweight drive shafts made from materials such as aluminum or carbon fiber-reinforced composites reduce the overall weight of the vehicle. The reduced weight improves the power-to-weight ratio, resulting in better acceleration, handling, and fuel efficiency. Additionally, lightweight drive shafts reduce the rotational mass, allowing the engine to rev up more quickly, further enhancing performance.

6. Mechanical Efficiency: Efficient drive shafts minimize energy losses during power transmission. By incorporating features such as high-quality bearings, low-friction seals, and optimized lubrication, drive shafts reduce friction and minimize power losses due to internal resistance. This enhances the mechanical efficiency of the drivetrain system, allowing more power to reach the wheels and improving overall vehicle performance.

7. Performance Upgrades: Drive shaft upgrades can be popular performance enhancements for enthusiasts. Upgraded drive shafts, such as those made from stronger materials or with enhanced torque capacity, can handle higher power outputs from modified engines. These upgrades allow for increased performance, such as improved acceleration, higher top speeds, and better overall driving dynamics.

8. Compatibility with Performance Modifications: Performance modifications, such as engine upgrades, increased power output, or changes to the drivetrain system, often require compatible drive shafts. Drive shafts designed to handle higher torque loads or adapt to modified drivetrain configurations ensure optimal performance and reliability. They enable the vehicle to effectively harness the increased power and torque, resulting in improved performance and responsiveness.

9. Durability and Reliability: Robust and well-maintained drive shafts contribute to the durability and reliability of automobiles and trucks. They are designed to withstand the stresses and loads associated with power transmission. High-quality materials, appropriate balancing, and regular maintenance help ensure that drive shafts operate smoothly, minimizing the risk of failures or performance issues. Reliable drive shafts enhance the overall performance by providing consistent power delivery and minimizing downtime.

10. Compatibility with Advanced Technologies: Drive shafts are evolving in tandem with advancements in vehicle technologies. They are increasingly being integrated with advanced systems such as hybrid powertrains, electric motors, and regenerative braking. Drive shafts designed to work seamlessly with these technologies maximize their efficiency and performance benefits, contributing to improved overall vehicle performance.

In summary, drive shafts enhance the performance of automobiles and trucks by optimizing power delivery, facilitating torque transfer, improving traction and stability, enhancing handling and maneuverability, reducing weight, increasing mechanical efficiency, enabling compatibility with performance upgrades and advanced technologies, and ensuring durability and reliability. They play a crucial role in ensuring efficient power transmission, responsive acceleration, precise handling, and overall improved performance of vehicles.

pto shaft

Can you explain the different types of drive shafts and their specific applications?

Drive shafts come in various types, each designed to suit specific applications and requirements. The choice of drive shaft depends on factors such as the type of vehicle or equipment, power transmission needs, space limitations, and operating conditions. Here’s an explanation of the different types of drive shafts and their specific applications:

1. Solid Shaft:

A solid shaft, also known as a one-piece or solid-steel drive shaft, is a single, uninterrupted shaft that runs from the engine or power source to the driven components. It is a simple and robust design used in many applications. Solid shafts are commonly found in rear-wheel-drive vehicles, where they transmit power from the transmission to the rear axle. They are also used in industrial machinery, such as pumps, generators, and conveyors, where a straight and rigid power transmission is required.

2. Tubular Shaft:

Tubular shafts, also called hollow shafts, are drive shafts with a cylindrical tube-like structure. They are constructed with a hollow core and are typically lighter than solid shafts. Tubular shafts offer benefits such as reduced weight, improved torsional stiffness, and better damping of vibrations. They find applications in various vehicles, including cars, trucks, and motorcycles, as well as in industrial equipment and machinery. Tubular drive shafts are commonly used in front-wheel-drive vehicles, where they connect the transmission to the front wheels.

3. Constant Velocity (CV) Shaft:

Constant Velocity (CV) shafts are specifically designed to handle angular movement and maintain a constant velocity between the engine/transmission and the driven components. They incorporate CV joints at both ends, which allow flexibility and compensation for changes in angle. CV shafts are commonly used in front-wheel-drive and all-wheel-drive vehicles, as well as in off-road vehicles and certain heavy machinery. The CV joints enable smooth power transmission even when the wheels are turned or the suspension moves, reducing vibrations and improving overall performance.

4. Slip Joint Shaft:

Slip joint shafts, also known as telescopic shafts, consist of two or more tubular sections that can slide in and out of each other. This design allows for length adjustment, accommodating changes in distance between the engine/transmission and the driven components. Slip joint shafts are commonly used in vehicles with long wheelbases or adjustable suspension systems, such as some trucks, buses, and recreational vehicles. By providing flexibility in length, slip joint shafts ensure a constant power transfer, even when the vehicle chassis experiences movement or changes in suspension geometry.

5. Double Cardan Shaft:

A double Cardan shaft, also referred to as a double universal joint shaft, is a type of drive shaft that incorporates two universal joints. This configuration helps to reduce vibrations and minimize the operating angles of the joints, resulting in smoother power transmission. Double Cardan shafts are commonly used in heavy-duty applications, such as trucks, off-road vehicles, and agricultural machinery. They are particularly suitable for applications with high torque requirements and large operating angles, providing enhanced durability and performance.

6. Composite Shaft:

Composite shafts are made from composite materials such as carbon fiber or fiberglass, offering advantages such as reduced weight, improved strength, and resistance to corrosion. Composite drive shafts are increasingly being used in high-performance vehicles, sports cars, and racing applications, where weight reduction and enhanced power-to-weight ratio are critical. The composite construction allows for precise tuning of stiffness and damping characteristics, resulting in improved vehicle dynamics and drivetrain efficiency.

7. PTO Shaft:

Power Take-Off (PTO) shafts are specialized drive shafts used in agricultural machinery and certain industrial equipment. They are designed to transfer power from the engine or power source to various attachments, such as mowers, balers, or pumps. PTO shafts typically have a splined connection at one end to connect to the power source and a universal joint at the other end to accommodate angular movement. They are characterized by their ability to transmit high torque levels and their compatibility with a range of driven implements.

8. Marine Shaft:

Marine shafts, also known as propeller shafts or tail shafts, are specifically designed for marine vessels. They transmit power from the engine to the propeller, enabling propulsion. Marine shafts are usually long and operate in a harsh environment, exposed to water, corrosion, and high torque loads. They are typically made of stainless steel or other corrosion-resistant materials and are designed to withstand the challenging conditions encountered in marine applications.

It’simportant to note that the specific applications of drive shafts may vary depending on the vehicle or equipment manufacturer, as well as the specific design and engineering requirements. The examples provided above highlight common applications for each type of drive shaft, but there may be additional variations and specialized designs based on specific industry needs and technological advancements.

China wholesaler Brush Cutter Part Diameter 8 mm Drive Shaft Brushcutter Spare Part  China wholesaler Brush Cutter Part Diameter 8 mm Drive Shaft Brushcutter Spare Part
editor by CX 2024-02-23