China supplier Universal Joints for CZPT CZPT

Product Description

Spicer  P (mm) R (mm) Caterpillar Precision  Rockwell  GKN Alloy Neapcon Serie  Bearing type
5-2002X 33.34 79 644683 951 CP2002 HS520   1-2171 2C 4LWT
5-2117X 33.34 79 316117 994   HS521   1-2186 2C 4LWD
5-2116X 33.34 79 6S6902 952 CP2116   1063   2C 2LWT,2LWD
5-3000X 36.5 90.4 5D9153 536   HS530 1711 3-3152 3C 4LWT
5-3014X 36.5 90.4 9K1976 535   HS532     3C 2LWT,2LWD
5-4143X 36.5 108 6K 0571 969   HS545 1689 3-4143 4C 4HWD
5-4002X 36.5 108 6F7160 540 CP4002 HS540 1703 3-4138 4C 4LWT
5-4123X 36.5 108 9K3969 541 CP4101 HS542 1704 3-4123 4C 2LWT,2LWD
5-4140X 36.5 108 5M800 929 CP4130 HS543   3-4140 4C 2LWT,2HWD
5-1405X 36.5 108   549     1708   4C 4LWD
5-4141X 36.5 108 7M2695 996         4C 2LWD,2HWD
5-5177X 42.88 115.06 2K3631 968 CP5177 HS555 1728 4-5177 5C 4HWD
5-5000X 42.88 115.06 7J5251 550 CP5122 HS550 1720 4-5122 5C 4LWT
5-5121X 42.88 115.06 7J5245 552 CP5101 HS552 1721 4-5127 5C 2LWT,2LWD
5-5173X 42.88 115.06   933   HS553 1722 4-5173 5C 2LWT,2HWD
5-5000X 42.88 115.06   999         5C 4HWD
5-5139X 42.88 115.06             5C 2LWD,2HWD
5-6102X 42.88 140.46 643633 563 CP62N-13 HS563 1822 4-6114 6C 2LWT,2HWD
5-6000X 42.88 140.46 641152 560 CP62N-47 HS560 1820 4-6143 6C 4LWT
5-6106X 42.88 140.46 1S9670 905 CP62N-49 HS565 1826 4-6128 6C 4HWD
G5-6103X 42.88 140.46   564     1823 4-6103 6C 2LWT,2LWD
G5-6104X 42.88 140.46   566     1824 4-6104 6C 4LWD
G5-6149X 42.88 140.46             6C 2LWD,2HWD
5-7105X 49.2 148.38 6H2577 927 CP72N-31 HS575 1840 5-7126 7C 4HWD
5-7000X 49.2 148.32 8F7719 570 CP72N-32 HS570 1841 5-7205 7C 4LWT
5-7202X 49.2 148.38 7J5242 574 CP72N-33 HS573 1843 5-7207 7C 2LWT,2HWD
5-7203X 49.2 148.38   575 CP72N-55     5-7208 7C 4LWD
5-7206X 49.2 148.38   572 CP72N-34   1842 5-7206 7C 2LWT,2LWD
5-7204X 49.2 148.38   576 CP72N-57     5-7209 7C 2LWD,2HWD
5-8105X 49.2 206.32 6H2579 928 CP78WB-2 HS585 1850 6-8113 8C 4HWD
5-8200X 49.2 206.32   581 CP82N-28   1851 6-8205 8C 4LWT

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Condition: New
Certification: ISO, Ts16949
Structure: Single
Material: 20cr
Type: Universal Joint
Transport Package: Box + Plywood Case
Samples:
US$ 10/Piece
1 Piece(Min.Order)

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Customization:
Available

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universal joint

How do you ensure proper alignment when connecting a universal joint?

Ensuring proper alignment when connecting a universal joint is essential for its optimal performance and longevity. Here’s a detailed explanation:

Proper alignment of a universal joint involves aligning the input and output shafts to minimize angular misalignment and maintain a smooth and efficient power transfer. Here are the steps to ensure proper alignment:

  1. Measure shaft angles: Begin by measuring the angles of the input and output shafts that the universal joint will connect. This can be done using a protractor or an angle measuring tool. The angles should be measured in relation to a common reference plane, such as the horizontal or vertical.
  2. Calculate the operating angle: The operating angle of the universal joint is the difference between the angles of the input and output shafts. This angle determines the amount of angular misalignment that the universal joint needs to accommodate. It is crucial to calculate the operating angle accurately to ensure the proper selection of a universal joint suitable for the application.
  3. Select the appropriate universal joint: Based on the calculated operating angle, choose a universal joint that is designed to handle the specific misalignment requirements. Universal joints come in various sizes and designs to accommodate different operating angles and torque loads. Refer to the manufacturer’s specifications and guidelines to select the appropriate universal joint for the application.
  4. Achieve parallel alignment: To ensure proper alignment, it is important to align the input and output shafts so that they are parallel to each other when viewed from the common reference plane. This can be achieved by adjusting the mounting positions of the shafts or using alignment tools such as straightedges or laser alignment systems. The goal is to minimize any offset or skew between the shafts.
  5. Check centerline alignment: Once the shafts are parallel, it is necessary to check the centerline alignment. This involves verifying that the centerline of the input shaft and the centerline of the output shaft are in line with each other. Misalignment in the centerline can result in additional stress on the universal joint and lead to premature wear or failure. Use measurement tools or visual inspection to ensure the centerline alignment is maintained.
  6. Securely fasten the universal joint: After achieving proper alignment, securely fasten the universal joint to the input and output shafts according to the manufacturer’s recommendations. Follow the specified torque values for the fasteners to ensure proper clamping force without over-tightening. This will help maintain the alignment during operation.
  7. Perform regular maintenance: To ensure continued proper alignment, it is important to perform regular maintenance, including periodic inspections and lubrication of the universal joint. Regular maintenance can help detect any misalignment or wear issues early on and prevent further damage or failure.

By following these steps and paying attention to proper alignment, the universal joint can operate smoothly and effectively, minimizing stress, wear, and the risk of premature failure.

In summary, ensuring proper alignment when connecting a universal joint involves measuring shaft angles, calculating the operating angle, selecting the appropriate universal joint, achieving parallel alignment, checking centerline alignment, securely fastening the joint, and performing regular maintenance.

universal joint

How does a constant-velocity (CV) joint differ from a traditional universal joint?

A constant-velocity (CV) joint differs from a traditional universal joint in several ways. Here’s a detailed explanation:

A traditional universal joint (U-joint) and a constant-velocity (CV) joint are both used for transmitting torque between non-aligned or angularly displaced shafts. However, they have distinct design and operational differences:

  • Mechanism: The mechanism of torque transmission differs between a U-joint and a CV joint. In a U-joint, torque is transmitted through a set of intersecting shafts connected by a cross or yoke arrangement. The angular misalignment between the shafts causes variations in speed and velocity, resulting in fluctuating torque output. On the other hand, a CV joint uses a set of interconnected elements, typically ball bearings or roller bearings, to maintain a constant velocity and torque output, regardless of the angular displacement between the input and output shafts.
  • Smoothness and Efficiency: CV joints offer smoother torque transmission compared to U-joints. The constant velocity output of a CV joint eliminates speed fluctuations, reducing vibrations and allowing for more precise control and operation. This smoothness is particularly advantageous in applications where precise motion control and uniform power delivery are critical. Additionally, CV joints operate with higher efficiency as they minimize energy losses associated with speed variations and friction.
  • Angular Capability: While U-joints are capable of accommodating larger angular misalignments, CV joints have a limited angular capability. U-joints can handle significant angular displacements, making them suitable for applications with extreme misalignment. In contrast, CV joints are designed for smaller angular displacements and are typically used in applications where constant velocity is required, such as automotive drive shafts.
  • Operating Angles: CV joints can operate at larger operating angles without significant loss in torque or speed. This makes them well-suited for applications that require larger operating angles, such as front-wheel drive vehicles. U-joints, on the other hand, may experience speed fluctuations and reduced torque transmission capabilities at higher operating angles.
  • Complexity and Size: CV joints are generally more complex in design compared to U-joints. They consist of multiple components, including inner and outer races, balls or rollers, cages, and seals. This complexity often results in larger physical dimensions compared to U-joints. U-joints, with their simpler design, tend to be more compact and easier to install in tight spaces.

In summary, a constant-velocity (CV) joint differs from a traditional universal joint (U-joint) in terms of torque transmission mechanism, smoothness, efficiency, angular capability, operating angles, complexity, and size. CV joints provide constant velocity output, smoother operation, and higher efficiency, making them suitable for applications where precise motion control and uniform power delivery are essential. U-joints, with their ability to accommodate larger angular misalignments, are often preferred for applications with extreme misalignment requirements.

universal joint

What is a universal joint and how does it work?

A universal joint, also known as a U-joint, is a mechanical coupling that allows for the transmission of rotary motion between two shafts that are not in line with each other. It is commonly used in applications where shafts need to transmit motion at angles or around obstacles. The universal joint consists of a cross-shaped or H-shaped yoke with bearings at the ends of each arm. Let’s explore how it works:

A universal joint typically comprises four main components:

  1. Input Shaft: The input shaft is the shaft that provides the initial rotary motion.
  2. Output Shaft: The output shaft is the shaft that receives the rotary motion from the input shaft.
  3. Yoke: The yoke is a cross-shaped or H-shaped component that connects the input and output shafts. It consists of two arms perpendicular to each other.
  4. Bearings: Bearings are located at the ends of each arm of the yoke. These bearings allow for smooth rotation and reduce friction between the yoke and the shafts.

When the input shaft rotates, it causes the yoke to rotate along with it. Due to the perpendicular arrangement of the arms, the output shaft connected to the other arm of the yoke experiences rotary motion at an angle to the input shaft.

The universal joint works by accommodating the misalignment between the input and output shafts. As the input shaft rotates, the yoke allows the output shaft to rotate freely and continuously despite any angular displacement or misalignment between the two shafts. This flexibility of the universal joint enables torque to be transmitted smoothly between the shafts while compensating for their misalignment.

During operation, the bearings at the ends of the yoke arms allow for the rotation of the yoke and the connected shafts. The bearings are often enclosed within a housing or cross-shaped cap to provide protection and retain lubrication. The design of the bearings allows for a range of motion and flexibility, allowing the yoke to move and adjust as the shafts rotate at different angles.

The universal joint is commonly used in various applications, including automotive drivelines, industrial machinery, and power transmission systems. It allows for the transmission of rotary motion at different angles and helps compensate for misalignment, eliminating the need for perfectly aligned shafts.

It is important to note that universal joints have certain limitations. They introduce a small amount of backlash or play, which can affect precision and accuracy in some applications. Furthermore, at extreme angles, the operating angles of the universal joint may become limited, potentially causing increased wear and reducing its lifespan.

Overall, the universal joint is a versatile mechanical coupling that enables the transmission of rotary motion between misaligned shafts. Its ability to accommodate angular displacement and misalignment makes it a valuable component in numerous mechanical systems.

China supplier Universal Joints for CZPT CZPT  China supplier Universal Joints for CZPT CZPT
editor by CX 2024-04-09