China OEM Straight Spiral Helical Hypoid Spline Shaft External Grinding Teeth Worm Drive Gear with Good quality

Product Description

Key attributes of Straight Spiral Helical Hypoid Spline Shaft External Grinding Teeth Worm Drive Gear
Industry-specific attributes of Straight Spiral Helical Hypoid Spline Shaft External Grinding Teeth Worm Drive Gear

CNC Machining or Not Cnc Machining
Material Capabilities Aluminum, Brass, Bronze, Copper, Hardened Metals, Precious Metals, Stainless steel, Steel Alloys

Other attributes of Straight Spiral Helical Hypoid Spline Shaft External Grinding Teeth Worm Drive Gear

Place of Origin ZheJiang , China
Type Broaching, Drilling, Etching / Chemical Machining, Laser Machining, Milling, Turning, Wire EDM, Other Machining Services
Model Number OEM
Brand Name OEM
Material Metal
Process Cnc Machining+deburrs
Surface treatment Customer’s Request
Equipment CNC Machining Centres / Core moving machine / precision lathe / Automatic loading and unloading equipment
Processing Type Milling / Turning / Stamping
OEM/ODM OEM & ODM CNC Milling Turning Machining Service
Drawing Format 2D/(PDF/CAD)3D(IGES/STEP)
Our Service OEM ODM Customers’drawing
Materials Avaliable Stainless Steel / Aluminum / Metals / Copper / Plastic

Best Seller of 304 Stainless Steel Polishing Finishing CNC Machining Bracket for Laser Cutting

 

About YiSheng

Business Type Factory / Manufacturer
Service CNC Machining
Turning and Milling
CNC Turning
OEM Parts
Material 1). Aluminum: AL 6061-T6, 6063, 7075-T etc
2). Stainless steel: 303,304,316L, 17-4(SUS630) etc
3). Steel: 4140, Q235, Q345B,20#,45# etc.
4). Titanium: TA1,TA2/GR2, TA4/GR5, TC4, TC18 etc
5). Brass: C36000 (HPb62), C37700 (HPb59), C26800 (H68), C22000(H90) etc
6). Copper, bronze, Magnesium alloy, Delrin, POM,Acrylic, PC, etc.
Finish Sandblasting, Anodize color, Blackenning, Zinc/Nickl Plating, Polish, 
Power coating, Passivation PVD, Titanium Plating, Electrogalvanizing,
electroplating chromium, electrophoresis, QPQ(Quench-Polish-Quench),
Electro Polishing,Chrome Plating, Knurl, Laser etch Logo, etc.
Main Equipment CNC Machining center, CNC Lathe, precision lathe 
Automatic loading and unloading equipment
Core moving machine
Drawing format STEP,STP,GIS,CAD,PDF,DWG,DXF etc or samples. 
Tolerance +/-0.001mm ~ +/-0.05mm
Surface roughness Ra 0.1~3.2
Test Equipment Complete test lab with Projector, High-low temperature test chamber, Tensile tester
Gauge, Salt fog test
Inspection Complete inspection lab with Micrometer, Optical Comparator, Caliper Vernier,CMM
Depth Caliper Vernier, Universal Protractor, Clock Gauge
Capacity CNC turning work range: φ0.5mm-φ150mm*300mm
CNC center work range: 510mm*850mm*500mm
Core moving machine work range: φ32mm*85mm
Gerenal Tolerance:
(+/-mm)
CNC Machining: 0.005
Core moving: 0.005
Turning: 0.005
Grinding(Flatness/in2): 0.003
ID/OD Grinding: 0.002
Wire-Cutting: 0.002

 

RFQ of Straight Spiral Helical Hypoid Spline Shaft External Grinding Teeth Worm Drive Gear

Certification: ISO9001
Standard: DIN, ASTM, GOST, GB, JIS, ANSI, BS
Customized: Customized
Customization:
Available

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Currency: US$
Return&refunds: You can apply for a refund up to 30 days after receipt of the products.

helical gear

Are helical gears suitable for high-torque applications?

Helical gears are indeed well-suited for high-torque applications. Their design features and characteristics make them capable of handling significant torque loads without compromising performance or durability. Here’s a detailed explanation of why helical gears are suitable for high-torque applications:

  • Inclined Tooth Profile: Helical gears have teeth with an inclined profile, which allows for greater tooth engagement compared to other gear types. This increased contact area spreads the load over multiple teeth, distributing the torque more evenly. As a result, helical gears can handle higher torque levels without exceeding the strength limits of the gear teeth.
  • Large Contact Ratio: The inclined tooth design of helical gears also contributes to a large contact ratio, which refers to the number of teeth in contact at any given moment. The large contact ratio enables helical gears to transmit torque more smoothly and efficiently. It reduces localized stress on individual teeth, minimizing the risk of tooth failure and enhancing the gear’s ability to handle high-torque loads.
  • High Load-Carrying Capacity: Helical gears are known for their high load-carrying capacity. The inclined tooth profile and larger contact area allow helical gears to distribute the torque load over a broader surface, reducing the stress on individual teeth. This design feature enables helical gears to handle higher torque levels without experiencing premature wear or failure.
  • Gradual Tooth Engagement: During gear meshing, the inclined teeth of helical gears gradually engage, resulting in a smooth and gradual transfer of torque. This gradual engagement helps to reduce impact and shock loads, which can be detrimental to gear performance. By minimizing sudden torque spikes, helical gears maintain a consistent and reliable torque transmission, making them suitable for high-torque applications.
  • Efficient Power Transmission: Helical gears offer efficient power transmission, even in high-torque applications. The inclined tooth design reduces sliding friction between the gear teeth, resulting in lower energy losses and improved overall efficiency. This efficiency is particularly beneficial in high-torque applications where power consumption and heat generation need to be minimized.
  • Ability to Handle Variable Torque: Helical gears are capable of handling variable torque loads effectively. The gradual tooth engagement and larger contact area allow helical gears to accommodate fluctuations in torque without compromising performance. This flexibility makes helical gears suitable for applications where torque requirements may vary during operation.

In summary, helical gears are well-suited for high-torque applications due to their inclined tooth profile, large contact ratio, high load-carrying capacity, gradual tooth engagement, efficient power transmission, and ability to handle variable torque. These characteristics make helical gears reliable and durable in demanding industrial scenarios where high torque levels are encountered.

helical gear

How do you retrofit an existing mechanical system with helical gears?

Retrofitting an existing mechanical system with helical gears involves replacing the current gear system with helical gears to improve performance, efficiency, or address specific requirements. The process requires careful planning, analysis, and implementation to ensure a successful retrofit. Here is a detailed explanation of how to retrofit an existing mechanical system with helical gears:

  1. Assess the Existing System: Begin by thoroughly assessing the existing mechanical system. Understand its design, operating conditions, gear specifications, and performance limitations. Identify the reasons for retrofitting, such as the need for increased load capacity, improved efficiency, noise reduction, or other specific requirements.
  2. Define Retrofit Objectives: Clearly define the objectives of the retrofit. Determine the specific improvements or modifications desired from the retrofit. This could include increasing torque capacity, reducing backlash, improving gear meshing characteristics, or optimizing gear ratios. Having well-defined objectives will guide the retrofitting process.
  3. Perform Gear Design and Analysis: Based on the defined objectives, conduct gear design and analysis to determine the appropriate helical gear configuration. Consider factors such as gear size, tooth profile, helix angle, module or diametral pitch, and gear material. Use engineering calculations, software simulations, or consult with gear design experts to ensure the selected helical gears meet the retrofit objectives and are compatible with the existing system.
  4. Modify Gear Housing and Mounting: In some cases, retrofitting with helical gears may require modifications to the gear housing or mounting arrangements. Ensure that the gear housing can accommodate the helical gears and provide proper alignment and support. Modify or adapt the housing as necessary to ensure a precise fit and alignment of the new gear system.
  5. Manufacture or Source Helical Gears: Once the gear design is finalized, manufacture or source the helical gears according to the specifications determined during the design phase. Work with experienced gear manufacturers or suppliers who can provide high-quality helical gears that meet the required specifications and performance criteria.
  6. Installation and Alignment: Remove the existing gears and install the helical gears in the mechanical system. Ensure proper alignment of the gears to maintain smooth operation and minimize wear. Follow recommended installation procedures and torque specifications provided by the gear manufacturer. Consider using alignment tools, such as dial indicators or laser alignment systems, to achieve precise gear alignment.
  7. Test and Fine-tune: After installation, conduct thorough testing of the retrofit system. Monitor performance, check for any abnormal vibrations, noise, or operating issues. Fine-tune the system as needed, making adjustments to gear meshing, lubrication, or other parameters to optimize performance and ensure the retrofit objectives are met.
  8. Monitor and Maintain: Once the retrofit is complete, establish a regular monitoring and maintenance schedule. Periodically inspect the helical gears for wear, perform lubrication checks, and address any maintenance requirements. Regular monitoring and maintenance will help ensure the longevity and optimal performance of the retrofit system.

Retrofitting an existing mechanical system with helical gears can significantly enhance its performance, efficiency, and reliability. However, it is essential to carefully plan and execute the retrofitting process to achieve the desired outcomes. Consulting with gear design experts and experienced professionals can provide valuable guidance and expertise throughout the retrofitting process.

helical gear

What are the benefits of using a helical gear mechanism?

A helical gear mechanism offers several benefits that make it a preferred choice in many applications. Here’s a detailed explanation of the advantages of using a helical gear mechanism:

  • Smooth and Quiet Operation: Helical gears are designed with angled teeth that gradually engage and disengage during rotation. This gradual engagement reduces noise and vibration, resulting in smoother and quieter operation compared to other gear types such as spur gears. The continuous contact between the teeth also helps in distributing the load more evenly, reducing the risk of concentrated wear or damage.
  • High Load-Carrying Capacity: The inclined teeth of helical gears allow for greater tooth engagement compared to spur gears. This increased tooth contact area results in improved load distribution and higher load-carrying capacity. Helical gears can transmit higher torque and handle heavier loads, making them suitable for applications that require high power transmission and torque transfer.
  • Efficient Power Transmission: The inclined tooth profile of helical gears enables smooth and efficient power transmission. The gradual engagement of teeth minimizes shock loads and ensures a continuous transfer of power without sudden jolts or interruptions. This efficiency is particularly beneficial in applications where precise motion control, energy efficiency, and smooth acceleration are required.
  • Versatility and Adaptability: Helical gears can be manufactured in various configurations to suit different application requirements. They can be designed as parallel helical gears for transmitting power between parallel shafts, double helical gears (herringbone gears) for balancing axial thrust, crossed helical gears (screw gears) for non-parallel and non-intersecting shafts, and other specialized variations. This versatility allows for a wide range of gear arrangements and applications.
  • Improved Tooth Strength: The helical tooth profile provides better tooth strength compared to spur gears. The inclined teeth distribute the load over a larger contact area, reducing stress concentrations and enhancing the gear’s resistance to wear, pitting, and tooth breakage. This improved tooth strength contributes to the overall durability and longevity of the gear mechanism.
  • Compact Design: Helical gears can achieve a high gear ratio in a relatively compact design. The inclined teeth allow for more teeth to be in contact at any given time, enabling a higher gear ratio within a limited space. This compactness is advantageous when there are size constraints or when a smaller gear mechanism is desired without sacrificing performance.
  • High Efficiency: Due to their smooth operation and improved tooth engagement, helical gears offer high mechanical efficiency. They minimize power losses caused by friction, heat generation, and vibration, resulting in efficient power transmission. The high efficiency of helical gears is particularly beneficial in applications where energy conservation and reduced operating costs are important considerations.

In summary, the benefits of using a helical gear mechanism include smooth and quiet operation, high load-carrying capacity, efficient power transmission, versatility, improved tooth strength, compact design, and high mechanical efficiency. These advantages make helical gears suitable for a wide range of applications, including automotive transmissions, industrial machinery, power generation equipment, robotics, and more.

China OEM Straight Spiral Helical Hypoid Spline Shaft External Grinding Teeth Worm Drive Gear with Good qualityChina OEM Straight Spiral Helical Hypoid Spline Shaft External Grinding Teeth Worm Drive Gear with Good quality
editor by CX 2023-12-04

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Double Helical Gear

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