China supplier Machine Part OEM Customized Spur Helical Gear Transmission Wheel Gear hypoid bevel gear
Product Description
We are a professional company in bulk material handling, transportation, storage, processing, accessory equipment design, integration and manufacturing. We can provide a complete set of solutions. Thank you for reading the information and welcome to purchase! Welcome to agent distribution!
Brief introduction of the company’s manufacturing capacity
The company’s headquarters, technology and sales are located in Lingang New Area of China (ZheJiang ) pilot free trade zone, The company’s manufacture base is located in Xihu (West Lake) Dis. county, ZHangZhoug Province, which is known as “the most beautiful county in China”. It is 65 kilometers away from HangZhou city and 60 kilometers away from Qiandao Lake. The transportation to Xihu (West Lake) Dis. county from other places is very convenient. No matter by railway, highway or waterway. The manufacture base has a total plant area of around 30000 square CHINAMFG and workshop is equipped with more than 300 sets of various advance manufacture equipment, including 20 sets of CNC precision vertical lathe MODEL: SMVTM12000×50/150, CNC vertical lathe MODEL:DVT8000×30/32, CNC horizontal lathe, MODEL: CK61315×125/32, CNC horizontal lathe MODEL:CK61200×80/32, CNC Grounding boring and milling machine MODEL:TJK6920,etc.Most of the parts are machined by using CNC machine equipment. Theis is a hot treatment CHINAMFG with size 10.5m×8m×8m. The manufacture base also equipped with lifting capacity of 25t, 50t, 100t, 200t overhead crane to handle heavy workpiece and assembly work.
Metalworking equipment
| Name of equipment | Model number | Quantity | SCOPE of application | |
| A | Lathes | |||
| 1 | Vertical Lathe | Numerical control | 1 | Φ 12000 |
| 2 | Vertical Lathe | Numerical control | 1 | Φ 8000 |
| 3 | Vertical Lathe | 1 | Φ 1600 | |
| 4 | Vertical Lathe | C5112A | 1 | Ф 1250 |
| 5 | Horizontal Lathe | Numerical control | 1 | CK61315×12×100T |
| 6 | Horizontal Lathe | CW61200 | 1 | Ф 2000×8000 |
| 7 | Horizontal Lathe | CW61160 | 1 | Ф 1600×6500 |
| 8 | Horizontal Lathe | CW6180 | 2 | Ф 800×3000 |
| 9 | Horizontal Lathe | CW61125 | 2 | Ф 1250×5000 |
| 10 | Horizontal Lathe (remodel) | CW62500 | 2 | Ф 2800×6000 |
| 11 | Common Lathe | CY6140 | 3 | Ф 400×1000 |
| 12 | Common Lathe | CA6140 | 3 | Ф 400×1500 |
| 13 | Common Lathe | C620 | 2 | Ф 400×1400 |
| 14 | Common Lathe | C616 | 1 | Ф 320×1000 |
| 15 | Common Lathe | C650 | 1 | Ф 650×2000 |
| B | Drilling machine | |||
| 1 | Radial drilling machine | Z3080 | 3 | Ф 80×2500 |
| 2 | Radial drilling machine | Z3040 | 2 | Ф 60×1600 |
| 3 | Universal drilling machine | ZW3725 | 3 | Ф 25×880 |
| C | Planing machine | |||
| 1 | Shaper | B665 | 1 | L650 |
| 2 | Hydraulic Shaper | B690 | 1 | L900 |
| 3 | Gantry Planer | HD–16 | 1 | L10000×B1600 |
| D | Milling Machine | |||
| 1 | 4 Coordinate Milling Machine | Numerical control | 1 | 2500×4000 |
| 2 | Gantry milling machine | Numerical contro | 1 | 16mx5mx3m |
| 3 | Gantry milling machine | Numerical contro | 1 | 12mx4mx2.5m |
| 4 | Gantry milling and boring machine | Numerical contro | 1 | Φ 250 |
| 5 | Vertical Milling Machine | XS5054 | 1 | 1600×400 |
| 6 | Horizontal Milling Machine | C62W | 1 | 1250×320 |
| 7 | Horizontal Milling Machine | X60 | 1 | 800×200 |
| 8 | Gantry milling machine | X2014J | 1 | L4000×B1400 |
| 9 | Gantry milling machine | X2571J | 1 | L3000×B1000 |
| 10 | Floor end milling | TX32-1 | 1 | L1500×H800 |
| E | Grinding machine | |||
| 1 | External Grinder | M131W | 1 | Ф 300×1000 |
| 2 | External Grinder | M1432B | 1 | Ф 320×15000 |
| 3 | Surface Grinder | M7130 | 1 | L 1000×300 |
| 4 | Tool grinder | M6571C | 1 | Ф 250 |
| F | Boring machine | |||
| 1 | Floor-standing milling and boring machine | TJK6920 | 1 | X12000 × Y4500 × Z1000 |
| 2 | Boring machine | TSPX619 | 1 | Ф 1000 |
| 3 | Boring machine | T616 | 1 | Ф 800 |
| 4 | Boring machine | T611 | 1 | Ф 800 |
| G | Slotted bed | |||
| 1 | Slotted bed | B5032 | 1 | H320 |
| H | Other machine tools | |||
| 1 | Gear hobbing machine | Y3150 | 1 | Ф 500 M=6 |
| 2 | Hacksaw machine | G7571 | 1 | Ф 220 |
Products and services available
Material handling equipment
Storage equipment
Conveying equipment
Feeding equipment
Component of conveying system
Belt conveyor parts
Large and medium sized finishing parts
If you need above products, please contact us!
ZheJiang Sunshine Industrial Technology Co. , Ltd.
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| Application: | Motor, Electric Cars, Motorcycle, Machinery, Marine, Toy, Agricultural Machinery, Car, Customization |
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| Hardness: | Customization |
| Gear Position: | Customization |
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| Currency: | US$ |
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| Return&refunds: | You can apply for a refund up to 30 days after receipt of the products. |
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How does a helical gear impact the overall efficiency of a system?
A helical gear has a significant impact on the overall efficiency of a system. Due to their unique design and characteristics, helical gears offer several advantages that contribute to improved efficiency. Here’s a detailed explanation of how a helical gear impacts the overall efficiency of a system:
- Power Transmission: Helical gears provide efficient power transmission due to their inclined tooth design. The helical teeth engage gradually, resulting in a smooth transfer of torque between the gears. This gradual engagement reduces impact and shock loads, minimizing energy losses and improving overall efficiency.
- Load Distribution: The helical tooth profile allows for increased contact area between the gear teeth compared to other gear types. This larger contact area results in improved load distribution across the gear teeth. By distributing the load more evenly, helical gears can handle higher loads without excessive wear and reduce the risk of tooth failure, leading to increased efficiency and reliability.
- Noise and Vibration Reduction: Helical gears operate with less noise and vibration compared to other gear types, such as spur gears. The inclined tooth profile of helical gears helps to minimize gear meshing noise and vibration by distributing the forces along the gear teeth over a larger contact area. Reduced noise and vibration levels contribute to a quieter and smoother operation, indicating lower energy losses and improved overall efficiency.
- Higher Gear Ratios: Helical gears can achieve higher gear ratios compared to other gear types. This capability allows for more precise speed control and torque conversion in various applications. By providing the desired gear ratios, helical gears enable the system to operate at optimal speeds and torque levels, maximizing efficiency and performance.
- Efficient Lubrication: The helical gear design allows for effective lubrication of the gear teeth. The continuous sliding action between the helical teeth assists in distributing the lubricant evenly along the gear contact surfaces. Proper lubrication reduces friction and wear, minimizing energy losses and enhancing the overall efficiency of the gear system.
- Compact Design: Helical gears have a compact design that allows for efficient use of space within a system. The inclined tooth profile enables multiple gear sets to be positioned on parallel or intersecting shafts, facilitating compact gear arrangements. This compactness reduces the overall size and weight of the system while maintaining high efficiency.
- High Precision: Helical gears offer excellent positional accuracy and repeatability. The helical tooth profile ensures precise and consistent gear meshing, resulting in accurate motion control and minimal backlash. This precision contributes to efficient operation, especially in applications requiring precise positioning and synchronization of components.
- Wear Resistance: Helical gears exhibit good wear resistance due to the larger contact area and gradual tooth engagement. The inclined tooth profile helps distribute the load, reducing localized wear and extending the gear’s service life. Reduced wear translates to sustained gear efficiency over time, minimizing the need for frequent replacements and maintenance.
Overall, the design characteristics of helical gears, including smooth power transmission, load distribution, noise reduction, higher gear ratios, efficient lubrication, compactness, precision, and wear resistance, collectively contribute to improved system efficiency. By choosing helical gears appropriately for a given application, engineers can enhance the overall performance, reliability, and energy efficiency of the system.

How do you ensure proper alignment when connecting helical gears?
Proper alignment is crucial when connecting helical gears to ensure smooth and efficient operation, minimize noise and vibration, and prevent premature wear. Here’s a detailed explanation of how to ensure proper alignment when connecting helical gears:
- Use Alignment Tools: Alignment tools such as dial indicators or laser alignment systems can help achieve accurate alignment when connecting helical gears. These tools measure the relative positions of the gears and aid in adjusting their positions to achieve proper alignment. By using precise alignment tools, engineers can ensure the gears are correctly positioned for optimal meshing and load distribution.
- Check Gear Meshing: Proper gear meshing is essential for alignment. Ensure that the teeth of the helical gears are correctly meshed, and there is sufficient contact across the entire tooth width. Improper meshing, such as excessive or insufficient contact, can lead to noise, vibration, and accelerated wear. Adjust the gear positions if necessary to achieve optimal meshing conditions.
- Verify Center Distance: The center distance between the two helical gears must be accurately determined and maintained. The center distance affects the gear meshing and tooth contact pattern. Measure and verify the center distance using appropriate measuring tools, such as calipers or micrometers, to ensure it aligns with the gear design specifications. Make adjustments if needed to achieve the correct center distance.
- Check Axial Alignment: Proper axial alignment is crucial for helical gears. The axial alignment refers to the alignment of the gear shafts and the gears along the axial direction. Misalignment can cause uneven load distribution, increased noise and vibration, and accelerated wear. Use appropriate alignment tools to check and adjust the axial alignment, ensuring the gears are aligned along the same axis.
- Consider Preload and Backlash: Preload and backlash are important considerations for helical gears. Preload refers to applying a slight axial force to the gears to ensure proper contact and minimize backlash. Backlash is the small amount of clearance between the gear teeth. Follow the gear manufacturer’s recommendations for preload and backlash values and make adjustments as necessary during the gear connection process.
- Check Parallelism: The gear shafts should be parallel to each other to ensure proper alignment. Use precision measuring tools, such as straightedges or feeler gauges, to verify the parallelism of the gear shafts. If any deviation is detected, adjust the gear positions or make appropriate modifications to achieve parallel alignment.
- Consider Thermal Expansion: Take into account the potential thermal expansion of the gear components. Gears can expand or contract due to temperature variations during operation. Ensure proper clearances and allowances are considered to accommodate thermal expansion without compromising alignment. Consult the gear manufacturer’s guidelines or industry standards for recommended clearances based on the expected operating temperature range.
- Follow Manufacturer’s Guidelines: Always refer to the gear manufacturer’s guidelines, specifications, and recommendations for proper alignment procedures. Different gear types and designs may have specific alignment requirements. Manufacturers often provide detailed instructions and alignment tolerances that should be followed to achieve optimal gear performance and longevity.
By following these alignment practices, engineers can ensure the proper alignment of helical gears, promoting smooth and efficient gear operation, reducing noise and vibration, and maximizing gear system lifespan.

How do you choose the right size helical gear for your application?
Choosing the right size helical gear for your application involves considering several factors to ensure optimal performance and reliability. Here’s a detailed explanation of the steps involved in selecting the right size helical gear:
- Determine the Application Requirements: Start by understanding the specific requirements of your application. Consider factors such as the desired speed ratio, torque requirements, power transmission capacity, operating conditions (including temperature, lubrication, and environment), and any special considerations unique to your application.
- Calculate the Gear Parameters: Based on the application requirements, calculate the necessary gear parameters. These parameters include the pitch diameter, number of teeth, module or pitch, pressure angle, helix angle, face width, and center distance. These calculations can be performed using gear design formulas or software tools specifically designed for gear selection.
- Consider Load and Strength: Evaluate the load conditions that the helical gear will experience. Take into account factors such as the transmitted torque, radial loads, axial loads, and dynamic forces. Ensure that the selected gear can withstand the anticipated loads and provide sufficient strength and durability. Consider factors such as gear material, heat treatment, and tooth geometry to ensure adequate load-carrying capacity and resistance to wear and fatigue.
- Check Gear Meshing and Alignment: Proper gear meshing and alignment are crucial for smooth operation and efficient power transmission. Ensure that the selected gear size and tooth profile allow for proper meshing with the mating gear. Consider factors such as backlash, tooth contact pattern, and alignment tolerances to minimize noise, vibration, and wear. Proper alignment of shafts and bearings is also important for optimal gear performance.
- Consider Space Limitations: Evaluate the available space in your application for gear installation. Consider factors such as the gear diameter, length, and clearance requirements. Ensure that the selected gear size can fit within the available space without interfering with other components or causing installation challenges.
- Consult Manufacturer’s Guidelines: Refer to the manufacturer’s guidelines, catalogs, and technical documentation for the specific type and brand of helical gear you are considering. Manufacturers often provide recommendations, selection charts, and engineering support to assist in choosing the right size gear for different applications. It’s beneficial to leverage their expertise and knowledge.
- Consider Cost and Availability: Evaluate the cost and availability of the selected helical gear. Consider factors such as the gear’s price, lead time, availability of spare parts, and any additional costs associated with installation or maintenance. Balance your requirements with the available budget and ensure that the chosen gear offers a cost-effective solution without compromising performance or quality.
By following these steps and considering the application requirements, load conditions, gear parameters, meshing characteristics, space limitations, manufacturer’s guidelines, and cost factors, you can choose the right size helical gear that meets your specific application needs.
It’s important to note that gear selection can be a complex process, and it may be beneficial to consult with an experienced engineer or gear specialist to ensure an accurate and optimized gear sizing for your specific application.


editor by CX 2024-03-27