Product Description
Worm Gear Series Transmission Double Enveloping Worm Industry Gearbox
Product Description
Series C double enveloping worm gear
Model: 100 – 500
Ratio: 10 -63
Output Torque : 683 – 51180 N.m
Rating Power : 47/25HP(1.41Kw) – 597HP(448Kw)
Working conditions
Two shafts for 90 ° Intersect, input speed must not be more than 1500 rpm.The working environment temperature should range from 0 ~ 40 ° C, when the environment temperature below 0 ° C or above 40 ° C.Before starting the lubricating oil to corresponding heating and cooling, The worm shafts, reverse operation can be positive.
Data sheet on CUW double enveloping worm gear reducer :
Model | ShaftDia. (mm) | Center Height (CUW) | (CUW) Output shaft Dia. | Power | Ratio | Permitted Torque | Weight |
(CUW) input Solid(h6) | (mm) | (mm) | (kw) | (Nm) | (KGS) | ||
100 | 28 | 190 | 48 | 1.41~11.5 | 10 .25~ 62 | 683-1094 | 42 |
125 | 32 | 225 | 55 | 2.42~19.7 | 10 .25 ~ 62 | 1170~2221 | 65 |
140 | 38 | 255 | 65 | 3.94~25.9 | 10 .25 ~ 62 | 1555 ~ 3473 | 85 |
160 | 42 | 290 | 70 | 4.39~35.7 | 10 .25 ~ 62 | 2143 ~4212 | 120 |
180 | 48 | 320 | 80 | 5.83~47.5 | 10 .25 ~ 62 | 2812 ~ 5387 | 170 |
200 | 55 | 350 | 90 | 7.52 ~61.2 | 10 .25 ~ 62 | 3624 ~6859 | 220 |
225 | 60 | 390 | 100 | 9.9~81.4 | 10 .25 ~ 62 | 4872 ~ 9224 | 290 |
250 | 65 | 430 | 110 | 12.9 ~105 | 10 .25~ 62 | 6284~11892 | 380 |
280 | 70 | 480 | 120 | 16.9 ~ 138 | 10 .25 ~ 62 | 8347 ~ 15820 | 520 |
315 | 75 | 530 | 140 | 22.5 ~183 | 10 .25 ~ 62 | 11068~ 19450 | 700 |
355 | 80 | 595 | 150 | 30~245 | 10 .25 ~ 62 | 14818 ~28014 | 1030 |
400 | 90 | 660 | 170 | 32.1 ~261 | 10 .25 ~ 62 | 15786~29918 | 1400 |
450 | 100 | 740 | 190 | 42.6 ~347 | 10 .25 ~ 62 | 2571~39881 | 1980 |
500 | 110 | 815 | 210 | 54.9 ~ 448 | 10 .25 ~ 62 | 27097~51180 | 270 |
Application: | Motor, Machinery, Marine, Agricultural Machinery |
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Function: | Distribution Power, Change Drive Torque, Change Drive Direction, Speed Changing, Speed Reduction, Speed Increase |
Layout: | Coaxial |
Hardness: | Hardened Tooth Surface |
Installation: | Horizontal Type |
Step: | Single-Step |
Samples: |
US$ 2000/Piece
1 Piece(Min.Order) | |
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Customization: |
Available
| Customized Request |
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What are the Noise Levels Associated with Worm Gearboxes?
The noise levels associated with worm gearboxes can vary depending on several factors, including the design, quality, operating conditions, and maintenance of the gearbox. Here are some key points to consider:
- Design and Quality: Well-designed and high-quality worm gearboxes tend to produce lower noise levels. Factors such as gear tooth profile, precision manufacturing, and proper alignment can contribute to reduced noise.
- Gear Engagement: The way the worm and worm wheel engage and mesh with each other can impact noise levels. Proper tooth contact and alignment can help minimize noise during operation.
- Lubrication: Inadequate or improper lubrication can lead to increased friction and wear, resulting in higher noise levels. Using the recommended lubricant and maintaining proper lubrication levels are important for noise reduction.
- Operating Conditions: Operating the gearbox within its specified load and speed limits can help prevent excessive noise generation. Overloading or operating at high speeds beyond the gearbox’s capabilities can lead to increased noise.
- Backlash: Excessive backlash or play between the gear teeth can lead to impact noise as the teeth engage. Proper backlash adjustment can help mitigate this issue.
- Maintenance: Regular maintenance, including gear inspection, lubrication checks, and addressing any wear or damage, can help keep noise levels in check.
It’s important to note that while worm gearboxes can produce some noise due to the nature of gear meshing, proper design, maintenance, and operation can significantly reduce noise levels. If noise is a concern for your application, consulting with gearbox manufacturers and experts can provide insights into selecting the right gearbox type and implementing measures to minimize noise.
Worm Gearboxes in Conveyor Systems: Benefits and Considerations
Worm gearboxes play a crucial role in conveyor systems, offering several benefits and considerations for their effective integration:
- Space Efficiency: Worm gearboxes have a compact design, making them suitable for applications with limited space, such as conveyor systems.
- High Reduction Ratios: Worm gearboxes can achieve high reduction ratios in a single stage, allowing for slower conveyor speeds without sacrificing torque.
- Self-Locking: Worm gearboxes have inherent self-locking properties, preventing the conveyor from moving when the motor is not actively driving it.
- Directional Control: Worm gearboxes facilitate directional control, enabling the conveyor to move forward or reverse as needed.
- Low Noise: Worm gearboxes often produce lower noise levels compared to other gearbox types, contributing to quieter conveyor operation.
However, there are also considerations to keep in mind when using worm gearboxes in conveyor systems:
- Efficiency: Worm gearboxes may have lower mechanical efficiency compared to some other gearbox types, leading to energy losses.
- Heat Generation: Worm gearboxes can generate more heat due to sliding contact between the worm and gear, necessitating proper cooling mechanisms.
- Lubrication: Proper lubrication is critical to prevent wear and ensure efficient operation. Regular maintenance is required to monitor lubrication levels.
- Load and Speed: Worm gearboxes are well-suited for applications with high torque and low to moderate speed requirements. They may not be optimal for high-speed conveyors.
Before integrating a worm gearbox into a conveyor system, it’s important to carefully consider the specific requirements of the application, including load, speed, space constraints, and efficiency needs. Consulting with gearbox experts and manufacturers can help ensure the right choice for the conveyor’s performance and longevity.
How to Select the Right Worm Gearbox for Your Application
Selecting the right worm gearbox for your application involves careful consideration of various factors:
- Load Requirements: Determine the torque and load requirements of your application to ensure the selected gearbox can handle the load without compromising performance.
- Speed Reduction: Calculate the required gear reduction ratio to achieve the desired output speed. Worm gearboxes are known for high reduction ratios.
- Efficiency: Consider the gearbox’s efficiency, as worm gearboxes typically have lower efficiency due to the sliding action. Evaluate whether the efficiency meets your application’s needs.
- Space Constraints: Assess the available space for the gearbox. Worm gearboxes have a compact design, making them suitable for applications with limited space.
- Mounting Options: Determine the mounting orientation and configuration that best suits your application.
- Operating Environment: Consider factors such as temperature, humidity, and exposure to contaminants. Choose a gearbox with appropriate seals and materials to withstand the environment.
- Backlash: Evaluate the acceptable level of backlash in your application. Worm gearboxes may exhibit more backlash compared to other gear types.
- Self-Locking: If self-locking capability is required, confirm that the selected gearbox can prevent reverse motion without the need for external braking mechanisms.
- Maintenance: Consider the maintenance requirements of the gearbox. Some worm gearboxes require periodic lubrication and maintenance to ensure proper functioning.
- Cost: Balance the features and performance of the gearbox with the overall cost to ensure it aligns with your budget.
Consult with gearbox manufacturers or experts to get recommendations tailored to your specific application. Testing and simulations can also help validate the suitability of a particular gearbox for your needs.
editor by CX 2023-09-13
China Standard Wpda Worm Shaft Reducer Wp Series Worm Gear Reduction Gearbox with Good quality
Product Description
Product Parameters
Model Ratio |
10 |
15 |
20 |
25 |
30 |
40 |
50 |
60 |
40 |
0.4 |
0.33 |
0.26 |
0.24 |
0.22 |
0.16 |
0.14 |
o.12 |
50 |
0.65 |
0.52 |
0.40 |
0.37 |
0.34 |
0.27 |
0.24 |
0.20 |
60 |
1.00 |
0.82 |
0.65 |
0.59 |
0.54 |
0.45 |
0.40 |
0.32 |
70 |
1.60 |
1.35 |
1.10 |
0.96 |
0.82 |
0.67 |
0.61 |
0.52 |
80 |
2.20 |
1.78 |
1.36 |
1.28 |
1.20 |
0.90 |
0.80 |
0.75 |
100 |
3.60 |
3.10 |
2.60 |
2.35 |
2.10 |
1.68 |
1.30 |
1.00 |
120 |
5.20 |
4.35 |
3.50 |
3.25 |
3.00 |
2.20 |
1.90 |
1.50 |
135 |
9.75 |
7.85 |
6.00 |
5.50 |
5.00 |
3.69 |
2.89 |
2.30 |
147 |
10.71 |
8.43 |
6.18 |
5.71 |
5.23 |
3.84 |
3.09 |
2.52 |
155 |
12.80 |
9.90 |
7.00 |
6.53 |
6.00 |
4.40 |
3.61 |
3.00 |
175 |
17.30 |
13.60 |
10.00 |
9.13 |
8.30 |
6.18 |
4.85 |
4.07 |
200 |
22.60 |
18.20 |
13.86 |
12.75 |
11.67 |
8.78 |
6.71 |
5.58 |
250 |
33.20 |
27.40 |
21.60 |
20.00 |
18.43 |
14.00 |
10.43 |
8.62 |
Product Description
Product Description
(1)Worm gear reducer is a power transmission mechanism, the use of gear speed converter, the motor (motor) the number of rotation to slow down to the number of rotation, and get a larger torque mechanism. At present, the application of speed reducer is widely used in the mechanism of transmitting power and motion.
(2)In all kinds of mechanical transmission system can see traces of it, from the transport ships, automobiles, motorcycles, construction heavy machinery, industrial machinery processing equipment and automated production equipment, to the common daily life appliances, clocks and watches, and so forth. Its application from the transmission of large power, to a small load, the precision of the angle of transmission can be seen in the application, and in industrial applications, the reducer has a reduction and increase the torque function. So it is widely used in speed and torque conversion equipmen
The role of main reducer:
1, reduce speed and increase the output torque, torque output ratio of motor output by the deceleration ratio, but should pay attention to not exceed the speed reducer rated torque.
2, deceleration while reducing the load inertia, inertia is reduced to the square of the reduction ratio. We can look at the General Motors has a value of inertia.
Detailed Photos
Parameter
Certifications
Application: | Electric Cars, Motorcycle, Agricultural Machinery, Car, Power Transmission |
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Layout: | Three-Ring |
Hardness: | Hardened Tooth Surface |
Installation: | Torque Arm Type |
Type: | Worm Gear Box |
Input Speed: | 1440rpm |
Samples: |
US$ 50/Piece
1 Piece(Min.Order) | |
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Common Problems and Troubleshooting for Worm Gearboxes
Worm gearboxes, like any mechanical component, can experience various issues over time. Here are some common problems that may arise and possible troubleshooting steps:
- Overheating: Overheating can occur due to factors such as inadequate lubrication, excessive loads, or high operating temperatures. Check lubrication levels, ensure proper ventilation, and reduce loads if necessary.
- Noise and Vibration: Excessive noise and vibration may result from misalignment, worn gears, or improper meshing. Check for misalignment, inspect gear teeth for wear, and ensure proper gear meshing.
- Leakage: Oil leakage can be caused by damaged seals or gaskets. Inspect seals and gaskets, and replace them if necessary.
- Reduced Efficiency: Efficiency loss can occur due to friction, wear, or misalignment. Regularly monitor gearbox performance, ensure proper lubrication, and address any wear or misalignment issues.
- Backlash: Excessive backlash can affect precision and accuracy. Adjust gear meshing and reduce backlash to improve performance.
- Seizure or Binding: Seizure or binding can result from inadequate lubrication, debris, or misalignment. Clean the gearbox, ensure proper lubrication, and address misalignment issues.
- Worn Gears: Worn gear teeth can lead to poor performance. Regularly inspect gears for signs of wear, and replace worn gears as needed.
- Seal Wear: Seals can wear over time, leading to leakage and contamination. Inspect seals regularly and replace them if necessary.
If you encounter any of these problems, it’s important to address them promptly to prevent further damage and maintain the performance of your worm gearbox. Regular maintenance, proper lubrication, and addressing issues early can help extend the lifespan and reliability of the gearbox.
How to Calculate the Efficiency of a Worm Gearbox
Calculating the efficiency of a worm gearbox involves determining the ratio of output power to input power. Efficiency is a measure of how well the gearbox converts input power into useful output power without losses. Here’s how to calculate it:
- Step 1: Measure Input Power: Measure the input power (Pin) using a power meter or other suitable measuring equipment.
- Step 2: Measure Output Power: Measure the output power (Pout) that the gearbox is delivering to the load.
- Step 3: Calculate Efficiency: Calculate the efficiency (η) using the formula: Efficiency (η) = (Output Power / Input Power) * 100%
For example, if the input power is 1000 watts and the output power is 850 watts, the efficiency would be (850 / 1000) * 100% = 85%.
It’s important to note that efficiencies can vary based on factors such as gear design, lubrication, wear, and load conditions. The calculated efficiency provides insight into how effectively the gearbox is converting power, but it’s always a good practice to refer to manufacturer specifications for gearbox efficiency ratings.
Preventing Backlash in a Worm Gearbox
Backlash in a worm gearbox can lead to reduced accuracy, positioning errors, and decreased overall efficiency. Here are steps to prevent or minimize backlash:
- High-Quality Components: Use high-quality worm gears and worm wheels with tight manufacturing tolerances. Precision components will help reduce backlash.
- Proper Meshing: Ensure the worm gear and worm wheel are properly aligned and meshed. Improper meshing can lead to increased backlash.
- Preload: Applying a small amount of preload to the worm gear can help reduce backlash. However, excessive preload can increase friction and wear.
- Anti-Backlash Mechanisms: Consider using anti-backlash mechanisms, such as spring-loaded systems or adjustable shims, to compensate for any inherent backlash.
- Lubrication: Proper lubrication can reduce friction and play a role in minimizing backlash. Use a lubricant that provides good film strength and reduces wear.
- Maintenance: Regularly inspect and maintain the gearbox to identify and address any changes in backlash over time.
It’s important to strike a balance between reducing backlash and maintaining smooth operation. Consulting with gearbox experts and following manufacturer guidelines will help you optimize your worm gearbox’s performance while minimizing backlash.
editor by CX 2023-09-13
China Standard Gear Universal Joint Agricultural Machinery Transmission Shaft Baler Transmission Shaft High Horsepower Transmission Shaft Drive Shaft
Product Description
Gear universal joint agricultural machinery transmission shaft Baler transmission shaft High horsepower transmission shaft
Product Features: Electronic Processing Customization: Yes Brand: Electronic Processing
Model: Electric machine Applicable model: Agricultural machine Length: Electric machine mm
***Degree: diameter of electrode: electrode d Origin: electrode
Part number: Dianyi
Type: | Transmission Shaft |
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Usage: | Agricultural Products Processing, Farmland Infrastructure, Tillage, Harvester, Planting and Fertilization, Grain Threshing, Cleaning and Drying |
Material: | Carbon Steel |
Power Source: | Diesel |
Weight: | Discuss Personally |
After-sales Service: | One Year |
Customization: |
Available
| Customized Request |
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How do manufacturers ensure the compatibility of drive shafts with different equipment?
Manufacturers employ various strategies and processes to ensure the compatibility of drive shafts with different equipment. Compatibility refers to the ability of a drive shaft to effectively integrate and function within a specific piece of equipment or machinery. Manufacturers take into account several factors to ensure compatibility, including dimensional requirements, torque capacity, operating conditions, and specific application needs. Here’s a detailed explanation of how manufacturers ensure the compatibility of drive shafts:
1. Application Analysis:
Manufacturers begin by conducting a thorough analysis of the intended application and equipment requirements. This analysis involves understanding the specific torque and speed demands, operating conditions (such as temperature, vibration levels, and environmental factors), and any unique characteristics or constraints of the equipment. By gaining a comprehensive understanding of the application, manufacturers can tailor the design and specifications of the drive shaft to ensure compatibility.
2. Customization and Design:
Manufacturers often offer customization options to adapt drive shafts to different equipment. This customization involves tailoring the dimensions, materials, joint configurations, and other parameters to match the specific requirements of the equipment. By working closely with the equipment manufacturer or end-user, manufacturers can design drive shafts that align with the equipment’s mechanical interfaces, mounting points, available space, and other constraints. Customization ensures that the drive shaft fits seamlessly into the equipment, promoting compatibility and optimal performance.
3. Torque and Power Capacity:
Drive shaft manufacturers carefully determine the torque and power capacity of their products to ensure compatibility with different equipment. They consider factors such as the maximum torque requirements of the equipment, the expected operating conditions, and the safety margins necessary to withstand transient loads. By engineering drive shafts with appropriate torque ratings and power capacities, manufacturers ensure that the shaft can handle the demands of the equipment without experiencing premature failure or performance issues.
4. Material Selection:
Manufacturers choose materials for drive shafts based on the specific needs of different equipment. Factors such as torque capacity, operating temperature, corrosion resistance, and weight requirements influence material selection. Drive shafts may be made from various materials, including steel, aluminum alloys, or specialized composites, to provide the necessary strength, durability, and performance characteristics. The selected materials ensure compatibility with the equipment’s operating conditions, load requirements, and other environmental factors.
5. Joint Configurations:
Drive shafts incorporate joint configurations, such as universal joints (U-joints) or constant velocity (CV) joints, to accommodate different equipment needs. Manufacturers select and design the appropriate joint configuration based on factors such as operating angles, misalignment tolerances, and the desired level of smooth power transmission. The choice of joint configuration ensures that the drive shaft can effectively transmit power and accommodate the range of motion required by the equipment, promoting compatibility and reliable operation.
6. Quality Control and Testing:
Manufacturers implement stringent quality control processes and testing procedures to verify the compatibility of drive shafts with different equipment. These processes involve conducting dimensional inspections, material testing, torque and stress analysis, and performance testing under simulated operating conditions. By subjecting drive shafts to rigorous quality control measures, manufacturers can ensure that they meet the required specifications and performance criteria, guaranteeing compatibility with the intended equipment.
7. Compliance with Standards:
Manufacturers ensure that their drive shafts comply with relevant industry standards and regulations. Compliance with standards, such as ISO (International Organization for Standardization) or specific industry standards, provides assurance of quality, safety, and compatibility. Adhering to these standards helps manufacturers meet the expectations and requirements of equipment manufacturers and end-users, ensuring that the drive shafts are compatible and can be seamlessly integrated into different equipment.
8. Collaboration and Feedback:
Manufacturers often collaborate closely with equipment manufacturers, OEMs (Original Equipment Manufacturers), or end-users to gather feedback and incorporate their specific requirements into the drive shaft design and manufacturing processes. This collaborative approach ensures that the drive shafts are compatible with the intended equipment and meet the expectations of the end-users. By actively seeking input and feedback, manufacturers can continuously improve their products’ compatibility and performance.
In summary, manufacturers ensure the compatibility of drive shafts with different equipment through a combination of application analysis, customization, torque and power capacity considerations, material selection, joint configurations, quality control and testing, compliance with standards, and collaboration with equipment manufacturers and end-users. These efforts enable manufacturers to design and produce drive shafts that seamlessly integrate with various equipment, ensuring optimal performance, reliability, and compatibility in different applications.
How do drive shafts contribute to the efficiency of vehicle propulsion and power transmission?
Drive shafts play a crucial role in the efficiency of vehicle propulsion and power transmission systems. They are responsible for transferring power from the engine or power source to the wheels or driven components. Here’s a detailed explanation of how drive shafts contribute to the efficiency of vehicle propulsion and power transmission:
1. Power Transfer:
Drive shafts transmit power from the engine or power source to the wheels or driven components. By efficiently transferring rotational energy, drive shafts enable the vehicle to move forward or drive the machinery. The design and construction of drive shafts ensure minimal power loss during the transfer process, maximizing the efficiency of power transmission.
2. Torque Conversion:
Drive shafts can convert torque from the engine or power source to the wheels or driven components. Torque conversion is necessary to match the power characteristics of the engine with the requirements of the vehicle or machinery. Drive shafts with appropriate torque conversion capabilities ensure that the power delivered to the wheels is optimized for efficient propulsion and performance.
3. Constant Velocity (CV) Joints:
Many drive shafts incorporate Constant Velocity (CV) joints, which help maintain a constant speed and efficient power transmission, even when the driving and driven components are at different angles. CV joints allow for smooth power transfer and minimize vibration or power losses that may occur due to changing operating angles. By maintaining constant velocity, drive shafts contribute to efficient power transmission and improved overall vehicle performance.
4. Lightweight Construction:
Efficient drive shafts are often designed with lightweight materials, such as aluminum or composite materials. Lightweight construction reduces the rotational mass of the drive shaft, which results in lower inertia and improved efficiency. Reduced rotational mass enables the engine to accelerate and decelerate more quickly, allowing for better fuel efficiency and overall vehicle performance.
5. Minimized Friction:
Efficient drive shafts are engineered to minimize frictional losses during power transmission. They incorporate features such as high-quality bearings, low-friction seals, and proper lubrication to reduce energy losses caused by friction. By minimizing friction, drive shafts enhance power transmission efficiency and maximize the available power for propulsion or operating other machinery.
6. Balanced and Vibration-Free Operation:
Drive shafts undergo dynamic balancing during the manufacturing process to ensure smooth and vibration-free operation. Imbalances in the drive shaft can lead to power losses, increased wear, and vibrations that reduce overall efficiency. By balancing the drive shaft, it can spin evenly, minimizing vibrations and optimizing power transmission efficiency.
7. Maintenance and Regular Inspection:
Proper maintenance and regular inspection of drive shafts are essential for maintaining their efficiency. Regular lubrication, inspection of joints and components, and prompt repair or replacement of worn or damaged parts help ensure optimal power transmission efficiency. Well-maintained drive shafts operate with minimal friction, reduced power losses, and improved overall efficiency.
8. Integration with Efficient Transmission Systems:
Drive shafts work in conjunction with efficient transmission systems, such as manual, automatic, or continuously variable transmissions. These transmissions help optimize power delivery and gear ratios based on driving conditions and vehicle speed. By integrating with efficient transmission systems, drive shafts contribute to the overall efficiency of the vehicle propulsion and power transmission system.
9. Aerodynamic Considerations:
In some cases, drive shafts are designed with aerodynamic considerations in mind. Streamlined drive shafts, often used in high-performance or electric vehicles, minimize drag and air resistance to improve overall vehicle efficiency. By reducing aerodynamic drag, drive shafts contribute to the efficient propulsion and power transmission of the vehicle.
10. Optimized Length and Design:
Drive shafts are designed to have optimal lengths and designs to minimize energy losses. Excessive drive shaft length or improper design can introduce additional rotational mass, increase bending stresses, and result in energy losses. By optimizing the length and design, drive shafts maximize power transmission efficiency and contribute to improved overall vehicle efficiency.
Overall, drive shafts contribute to the efficiency of vehicle propulsion and power transmission through effective power transfer, torque conversion, utilization of CV joints, lightweight construction, minimized friction, balanced operation, regular maintenance, integration with efficient transmission systems, aerodynamic considerations, and optimized length and design. By ensuring efficient power delivery and minimizing energy losses, drive shafts play a significant role in enhancing the overall efficiency and performance of vehicles and machinery.
Are there variations in drive shaft designs for different types of machinery?
Yes, there are variations in drive shaft designs to cater to the specific requirements of different types of machinery. The design of a drive shaft is influenced by factors such as the application, power transmission needs, space limitations, operating conditions, and the type of driven components. Here’s an explanation of how drive shaft designs can vary for different types of machinery:
1. Automotive Applications:
In the automotive industry, drive shaft designs can vary depending on the vehicle’s configuration. Rear-wheel-drive vehicles typically use a single-piece or two-piece drive shaft, which connects the transmission or transfer case to the rear differential. Front-wheel-drive vehicles often use a different design, employing a drive shaft that combines with the constant velocity (CV) joints to transmit power to the front wheels. All-wheel-drive vehicles may have multiple drive shafts to distribute power to all wheels. The length, diameter, material, and joint types can differ based on the vehicle’s layout and torque requirements.
2. Industrial Machinery:
Drive shaft designs for industrial machinery depend on the specific application and power transmission requirements. In manufacturing machinery, such as conveyors, presses, and rotating equipment, drive shafts are designed to transfer power efficiently within the machine. They may incorporate flexible joints or use a splined or keyed connection to accommodate misalignment or allow for easy disassembly. The dimensions, materials, and reinforcement of the drive shaft are selected based on the torque, speed, and operating conditions of the machinery.
3. Agriculture and Farming:
Agricultural machinery, such as tractors, combines, and harvesters, often requires drive shafts that can handle high torque loads and varying operating angles. These drive shafts are designed to transmit power from the engine to attachments and implements, such as mowers, balers, tillers, and harvesters. They may incorporate telescopic sections to accommodate adjustable lengths, flexible joints to compensate for misalignment during operation, and protective shielding to prevent entanglement with crops or debris.
4. Construction and Heavy Equipment:
Construction and heavy equipment, including excavators, loaders, bulldozers, and cranes, require robust drive shaft designs capable of transmitting power in demanding conditions. These drive shafts often have larger diameters and thicker walls to handle high torque loads. They may incorporate universal joints or CV joints to accommodate operating angles and absorb shocks and vibrations. Drive shafts in this category may also have additional reinforcements to withstand the harsh environments and heavy-duty applications associated with construction and excavation.
5. Marine and Maritime Applications:
Drive shaft designs for marine applications are specifically engineered to withstand the corrosive effects of seawater and the high torque loads encountered in marine propulsion systems. Marine drive shafts are typically made from stainless steel or other corrosion-resistant materials. They may incorporate flexible couplings or dampening devices to reduce vibration and mitigate the effects of misalignment. The design of marine drive shafts also considers factors such as shaft length, diameter, and support bearings to ensure reliable power transmission in marine vessels.
6. Mining and Extraction Equipment:
In the mining industry, drive shafts are used in heavy machinery and equipment such as mining trucks, excavators, and drilling rigs. These drive shafts need to withstand extremely high torque loads and harsh operating conditions. Drive shaft designs for mining applications often feature larger diameters, thicker walls, and specialized materials such as alloy steel or composite materials. They may incorporate universal joints or CV joints to handle operating angles, and they are designed to be resistant to abrasion and wear.
These examples highlight the variations in drive shaft designs for different types of machinery. The design considerations take into account factors such as power requirements, operating conditions, space constraints, alignment needs, and the specific demands of the machinery or industry. By tailoring the drive shaft design to the unique requirements of each application, optimal power transmission efficiency and reliability can be achieved.
editor by CX 2023-09-13
China Standard Best Selling S37-97 Series Helical Worm Gear Speed Reducer 90 Degree Gear Box synchromesh gearbox
Product Description
Company Profiles
-We are a leading gear motor manufacturer
ZHangZhoug Xihu (West Lake) Dis.hai Reducer is a leading manufacturer of gear motor and gearbox.
Since 1991, we have specialized in manufacturing a wide range of gear motor and gear box including:
- helical gear motor
- helical bevel gear motor
- parallel shaft helical gear motor
- helical worm gear motor
- hoist drive
- heavy-duty helical gearbox
- heavy-duty helical bevel gearbox
- gear motor for car parking system
- sprial bevel gearbox
Product Description
E series gear motor is combined with helical gear and worm gear. It is 90° for input and output shaft.
Mounting position: footed mounting, flange mounting and shaft mounting etc.
Technical data:
Output speed:0.12~397rpm
Rated output torque:10~4200N*m
Motor power: 0.12~22KW
Product Show
Product Specification
Product features | |||||||
1. Economical operation, low noise and high permitted overhung loads. | |||||||
2. Due to their outstanding efficiency, these drives can be used in every industrial sector and tailored to individual torque and speed requirements. | |||||||
General Technical data | |||||||
Housing material | HT250 high-strength cast iron | ||||||
Housing hardness | HBS190-240 | ||||||
Pinion material | 20CrMnTiH | ||||||
Gear material | 20CrMnTiH | ||||||
Surface hardness of gears | HRC58°~62 ° | ||||||
Gear core hardness | HRC33~40 | ||||||
Input /output shaft material | 40CrMnTiH | ||||||
Input / Output shaft hardness | HRC25~30 | ||||||
Machining precision of gears | accurate grinding, 6~7 Grade | ||||||
Lubricating oil | GB L-CKC220 | ||||||
Heat treatment | tempering, cementiting, quenching, etc. | ||||||
Efficiency | 94%~96% (depends on the transmission stage) | ||||||
Noise (MAX) | 60~68dB | ||||||
Temp. rise (MAX) | 40°C | ||||||
Temp. rise (Oil)(MAX) | 50°C | ||||||
Vibration | ≤20µm | ||||||
Backlash | ≤20Arcmin | ||||||
Brand of bearings | China Top brand C&U,LYC,TMB or other brands requested, SKF….. | ||||||
Brand of oil seal | CTY— ZheJiang or other brands requested | ||||||
E —- series helical-worm gear motor | |||||||
E-series single stages | |||||||
Model | Output Shaft Dia. | Center Height | Output Flange Dia. | Power | Ratio | Permitted Torque | Output Speed |
Solid (mm) | (mm) | (mm) | (kw) | (Nm) | (RPM) | ||
E37 | 20k6 | 80j6 | 80/120 | 0.12~1.5 | 6.72~160 | 105 | 8.4~397 |
E47 | 25k6 | 100j6 | 110/160 | 0.12~1.5 | 7.5~212 | 190 | 6.6~192 |
E57 | 30k6 | 112j6 | 130/200 | 0.18~3.0 | 7.5~212 | 340 | 6.5~194 |
E67 | 35k6 | 140j6 | 130/200 | 0.25~5.5 | 7.45~215 | 565 | 6~189 |
E77 | 45k6 | 180j6 | 180/250 | 0.37~7.5 | 7.9~257 | 1200 | 3.5~177 |
E87 | 60m6 | 225h6 | 250/350 | 0.55~15 | 8.52~277 | 2600 | 1.0~171 |
E97 | 70m6 | 280h6 | 350/450 | 1.5~22 | 8.26~282 | 4185 | 4.9~177 |
E- series double stages | |||||||
Model | Output Shaft Dia. | Center Height | Output Flange Dia. | Power | Ratio | Permitted Torque | Output Speed |
Solid (mm) | (mm) | (mm) | (kw) | (Nm) | (RPM) | ||
E37D17 | 20k6 | 80j13 | 80/120 | 0.12 | 110~202 | 89 | 6.8~13 |
E47D17 | 25k6 | 100j13 | 110/160 | 0.12~0.18 | 180~438 | 255 | 3.2~7.4 |
E57D17 | 30k6 | 112j13 | 130/200 | 0.12~0.25 | 131~655 | 311 | 2.1~9.9 |
E67D37 | 35k6 | 140j13 | 130/200 | 0.12~0.37 | 246~1363 | 600 | 1.0~5.6 |
E77D37 | 45k6 | 180j13 | 180/250 | 0.12~1.1 | 219~3540 | 1230 | 0.39~6.4 |
E87D57 | 60m6 | 225h13 | 250/350 | 0.12~1.5 | 205~7643 | 2810 | 0.18~6.9 |
E97D57 | 70m6 | 280h13 | 350/450 | 0.12~3.0 | 179~11267 | 4420 | 0.12~7.7 |
Remarks: please refer to our catalogue or ask for sales man when your technical requirements is special. |
Package
Plastic bag + wooden carton
Certificate
FAQ
Q: Can you print other colors?
Yes. Customized color can be printed on the gear motor according to your requirements.
Q: Is that factory price?
Yes. We assure you all prices are based on factory.
Q: What is the life span? what is the guarantee
The lifespan of gear motor can reach 5-20 years depending on different working conditions .The guarantee time is 1 year after delivery.
Q: What documents are available?
A full range documents including structural drawings, packing list, installation manual and relative certificates can be provided. Moreover, customs declaration is provided. We provide one-stop service for you.
Q: Is it able to customized?
yes, we could re-design and produce the gear motor as your requirements if the quantity is large.
Application: | Motor, Machinery, Transmission Equipment |
---|---|
Hardness: | Hardened Tooth Surface |
Installation: | Horizontal Type |
Layout: | Shunting |
Gear Shape: | Bevel |
Step: | Three-Step |
editor by CX 2023-09-13
China Standard high precision custom helical herringbone gear shaft drive shaft in china factory with Best Sales
Issue: New
Warranty: 1.5 a long time
Relevant Industries: Manufacturing Plant, Equipment Mend Stores, Construction works , Strength & Mining
Showroom Area: None
Movie outgoing-inspection: Presented
Machinery Take a look at Report: Supplied
Advertising and marketing Kind: Scorching Merchandise 2019
Warranty of main parts: 1 Calendar year
Main Parts: gear wheel shaft
Framework: Spline
Content: Custom-made
Coatings: anti-rust
Torque Capability: Customers’requirements
Product Quantity: Custom-made
Product title: Equipment wheel shaft
Application: Equipment products
Area Therapy: Lathing, grinding, milling
Warmth therapy: Quenching and tempering
Certification: ISO9001
Dimension: Personalized Dimension Satisfactory
MOQ: 1 Piece
Top quality: OEM Standard
Package: Standard picket box
Supply way: Customer’s necessity
Right after Guarantee Provider: On-line assistance
Nearby Service Location: None
Packaging Specifics: Deal adapting to transport
Port: ZheJiang Port, HangZhou Port
Why Pick Us We provide One particular-cease support From raw content firm to processing manufacturing and assembly .
skilled engineer crew to make sure the good top quality.
Substantial-precision CNC processing equipments.
large precision custom made helical herringbone gear shaft travel shaft in china factoryGear shafts provide the rotation that makes it possible for 1 gear to have interaction with and switch one more and have gear enamel integrated into the shaft. A gear shaft with the gearing profiles at every single stop are named intersecting shaft gears.
ApplicationSpline shafts are extensively employed in kinds of transmission devices of numerous industries, these kinds of as big printing equipment,airplanes,generation machinery, port sector, heavy sector machinery,and many others.Item Gain– Designed for highly efficient movement controls and power transmitting in between intersecting shafts at an angle.– TDER electric powered mini loader wheel loader electric gearbox battery powered electric powered loader Excellent for initiatives that require a pace / toughness operate capability and the capability to adjust the angle of power movement. Simply click below,ship me an inquiry Engineering Procedure
Inspection in every process and give the screening report for last inspection.
steer clear of rusting and according to customer’s prerequisite.
Remember to freely advise me in scenario of any inquiry. We will response you in 24 several hours. Thanks!
Relevant Products About Us YOGIE is largely engaged in the developing and production of massive equipment components and non-standard machinery components in accordance to customer’s ask for, which includes shafts, gears, sprockets, mining equipment elements, weldings, bearings, castings and forgings etc.The items are largely employed in the fields of mining, petroleum, cement, Transmission Belt Pulley 2 Grooves metal mill, energy plant, sugar manufacturing unit and so on.
Our provider & FAQ one.Are you a producer or a trading company?we are a manufacturing unit with our own equipments, which can make and procedure all types of merchandise effectively, so our items equally inquality and price tag have great benefit,you can get whatsoever you want from our manufacturing unit.2.What type of transportation do you generally use?Ocean shipping and delivery, air transportation, depending on the customer’s actual specifications and item characteristics.three.What sort of payment technique do you accept?we settle for T/T, L/C and western union are Okay, and the payment strategy can be determined by negotiation with the ourcustomerfour.How prolonged is your shipping and delivery time of your merchandise?fifteen-thirty days or 30-60 days in most conditions. Contact Us LuoYang CZPT Market&Trade Co.,Ltd
Address:Xihu (West Lake) Dis. district, T90 Multiple Rotary Tillers Publish Gap Diggers Dryer Shredders Bales Gearbox HangZhou cityTel:571-80882592Fax:571-65163600web:
What is a generate shaft?
If you recognize a clicking sounds although driving, it is most very likely the driveshaft. An experienced vehicle mechanic will be capable to notify you if the noise is coming from both sides or from 1 side. If it only happens on one particular side, you ought to examine it. If you discover sounds on each sides, you must speak to a mechanic. In either circumstance, a substitute driveshaft ought to be effortless to locate.
The travel shaft is a mechanical portion
A driveshaft is a mechanical system that transmits rotation and torque from the motor to the wheels of the motor vehicle. This ingredient is important to the procedure of any driveline, as the mechanical electricity from the engine is transmitted to the PTO (energy consider-off) shaft, which hydraulically transmits that electrical power to related products. Diverse generate shafts have diverse combinations of joints to compensate for changes in shaft duration and angle. Some sorts of push shafts consist of connecting shafts, internal constant velocity joints, and exterior mounted joints. They also have anti-lock method rings and torsional dampers to avoid overloading the axle or causing the wheels to lock.
Though driveshafts are comparatively light-weight, they need to have to deal with a good deal of torque. Torque utilized to the push shaft creates torsional and shear stresses. Due to the fact they have to face up to torque, these shafts are created to be lightweight and have minor inertia or weight. Therefore, they typically have a joint, coupling or rod amongst the two areas. Factors can also be bent to accommodate modifications in the distance among them.
The drive shaft can be made from a variety of resources. The most typical content for these elements is metal, though alloy steels are usually utilised for higher-strength apps. Alloy metal, chromium or vanadium are other resources that can be employed. The variety of content employed relies upon on the application and dimension of the ingredient. In several situations, steel driveshafts are the most sturdy and most inexpensive selection. Plastic shafts are employed for mild responsibility apps and have various torque stages than metallic shafts.
It transfers power from the motor to the wheels
A car’s powertrain is composed of an electrical motor, transmission, and differential. Every section performs a particular work. In a rear-wheel travel automobile, the power created by the engine is transmitted to the rear tires. This arrangement increases braking and dealing with. The differential controls how considerably power every wheel gets. The torque of the engine is transferred to the wheels according to its velocity.
The transmission transfers energy from the engine to the wheels. It is also known as “transgender”. Its job is to guarantee electricity is sent to the wheels. Electric cars can not generate by themselves and demand a gearbox to travel ahead. It also controls how much electrical power reaches the wheels at any given minute. The transmission is the final part of the electricity transmission chain. Even with its numerous names, the transmission is the most sophisticated component of a car’s powertrain.
The driveshaft is a long steel tube that transmits mechanical electrical power from the transmission to the wheels. Cardan joints join to the drive shaft and offer adaptable pivot factors. The differential assembly is mounted on the generate shaft, permitting the wheels to flip at diverse speeds. The differential enables the wheels to turn at different speeds and is quite essential when cornering. Axles are also important to the functionality of the car.
It has a rubber boot that protects it from dust and dampness
To preserve this boot in very good condition, you should clear it with cold drinking water and a rag. By no means area it in the dryer or in immediate sunlight. Heat can deteriorate the rubber and cause it to shrink or crack. To extend the existence of your rubber boots, apply rubber conditioner to them routinely. Indigenous peoples in the Amazon area collect latex sap from the bark of rubber trees. Then they put their toes on the hearth to solidify the sap.
it has a U-formed connector
The drive shaft has a U-joint that transfers rotational vitality from the motor to the axle. Faulty gimbal joints can trigger vibrations when the motor vehicle is in movement. This vibration is usually mistaken for a wheel equilibrium dilemma. Wheel balance difficulties can trigger the motor vehicle to vibrate although driving, although a U-joint failure can trigger the motor vehicle to vibrate when decelerating and accelerating, and stop when the car is stopped.
The travel shaft is linked to the transmission and differential employing a U-joint. It makes it possible for for small modifications in situation among the two elements. This prevents the differential and transmission from remaining properly aligned. The U-joint also permits the push shaft to be connected unconstrained, allowing the motor vehicle to shift. Its primary function is to transmit electricity. Of all sorts of elastic couplings, U-joints are the oldest.
Your vehicle’s U-joints ought to be inspected at least twice a year, and the joints ought to be greased. When examining the U-joint, you should hear a uninteresting audio when altering gears. A clicking sound indicates insufficient grease in the bearing. If you hear or feel vibrations when shifting gears, you could need to have to support the bearings to extend their life.
it has a slide-in tube
The telescopic layout is a contemporary option to classic driveshaft styles. This innovative design and style is based mostly on an unconventional layout philosophy that brings together developments in materials science and producing procedures. Consequently, they are much more efficient and lighter than standard types. Slide-in tubes are a basic and effective layout remedy for any car software. Listed here are some of its positive aspects. Go through on to discover why this variety of shaft is best for several purposes.
The telescopic generate shaft is an crucial portion of the standard automobile transmission technique. These driveshafts allow linear motion of the two parts, transmitting torque and rotation all through the vehicle’s driveline. They also soak up power if the motor vehicle collides. Usually referred to as foldable driveshafts, their reputation is straight dependent on the evolution of the automotive sector.
It makes use of a bearing push to exchange worn or broken U-joints
A bearing press is a system that employs a rotary press mechanism to put in or take away worn or ruined U-joints from a generate shaft. With this instrument, you can change worn or damaged U-joints in your auto with relative simplicity. The 1st stage requires placing the generate shaft in the vise. Then, use the eleven/16″ socket to press the other cup in significantly ample to install the clips. If the cups never in shape, you can use a bearing press to get rid of them and repeat the method. After eliminating the U-joint, use a grease nipple Make positive the new grease nipple is set up accurately.
Worn or ruined U-joints are a main source of driveshaft failure. If one particular of them ended up ruined or destroyed, the entire driveshaft could dislocate and the vehicle would get rid of electrical power. Unless you have a professional mechanic performing the repairs, you will have to substitute the total driveshaft. The good news is, there are several techniques to do this by yourself.
If any of these warning signs appear on your vehicle, you must contemplate changing the damaged or worn U-joint. Typical symptoms of damaged U-joints include rattling or periodic squeaking when shifting, rattling when shifting, wobbling when turning, or rusted oil seals. If you discover any of these symptoms, take your vehicle to a certified mechanic for a total inspection. Neglecting to substitute a worn or broken u-joint on the driveshaft can end result in high-priced and unsafe repairs and can trigger significant hurt to your vehicle.