China Professional Large Module Forging Carbon Steel Herringbone Double Helical Spur Bull Gear with Good quality
Product Description
Key attributes
Other attributes
Applicable Industries
Manufacturing Plant, Construction works , Energy & Mining
Weight (KG)
3000
Showroom Location
None
Video outgoing-inspection
Provided
Machinery Test Report
Provided
Marketing Type
Ordinary Product
Warranty of core components
Not Available
Core Components
Gear, Ring Gear
Place of CHINAMFG
ZheJiang , China
Condition
New
Warranty
1year
Shape
Ring Gear
Standard or Nonstandard
Nonstandard
Tooth Profile
Helical Gear,spur gear
Material
Steel
Processing
Forging
Pressure Angle
custom
Brand Name
TS
Product Name
Large Ring Gear
Module No.
5-180
Process
Milling,hobbing
Surface treatment
as request
Heat treatment
Q&T
Application
Industry machinery,transmission equipment
Standard
DIN ANSI ISO
Certificate
ISO
OEM Service
YES
Delivery time
15-60days
Packaging and delivery
Packaging Details
Package adapting to CHINAMFG transport
Port
ZheJiang ,HangZhou
Supply Ability
Supply Ability
5 Piece/Pieces per Month
OUR WORKSHOPS
OUR EQUIPMENTS
Technology Process
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Material |
Carbon steel,Alloy steel |
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Structure |
Forging,casting |
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Type of gear |
spur gear,helical gear,Planetary Gear |
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Heat treatment |
Quenching and tempering |
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Process |
forging, rough machining, QT, finish machining |
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Main equipments |
hobbing,CNC machine |
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Module |
up to 200 |
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Precision of gear |
Grinding ISO Grade 5-7 & Hobbing ISO Grade 8-9 |
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Inspection |
Raw material inspection, UT,physical property test,dimension inspect |
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Application |
Mining machinery, mill, kiln and other equipment |
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OUR CERTIFICATE
OUR CUSTOMER FEEDBACK
CONTACT
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| Application: | Industry |
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| Hardness: | Hb190-Hb300 |
| Gear Position: | External Gear |
| Samples: |
US$ 100/Piece
1 Piece(Min.Order) | Order Sample |
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| Customization: |
Available
| Customized Request |
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| Shipping Cost:
Estimated freight per unit. |
about shipping cost and estimated delivery time. |
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| Payment Method: |
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Initial Payment Full Payment |
| 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 do herringbone gears contribute to smooth power transmission?
Herringbone gears contribute to smooth power transmission through their unique design and characteristics. Here’s a detailed explanation of how herringbone gears achieve smooth power transmission:
- Opposing Helix Angles: Herringbone gears have a double helical tooth profile with opposing helix angles on each side. The helix angles are inclined in opposite directions to each other. This design feature helps to cancel out axial and radial forces that would occur in single helical gears. The opposing helix angles create a self-centering effect that promotes proper tooth engagement and load distribution, reducing gear vibrations and ensuring smooth power transmission.
- Reduced Vibration and Noise: The opposing helix angles of the herringbone gear teeth minimize gear vibrations during operation. When the teeth of one side of the gear mesh with the teeth of the other side, the opposing helix angles create a balanced force distribution that counteracts any tendency for the gear to move laterally. This results in reduced vibration and noise levels, making herringbone gears ideal for applications where quiet operation is desired, such as precision machinery and automotive transmissions.
- Large Contact Area: Herringbone gears have a larger contact area compared to spur gears. The double helical tooth profile allows for overlapping engagement of the gear teeth, resulting in a larger contact ratio. This increased contact area distributes the transmitted torque over more teeth, reducing the stress on individual teeth and promoting smoother power transmission. The larger contact area also helps to minimize wear and improve the overall durability of the gear system.
- Enhanced Load Distribution: The double helical tooth design of herringbone gears provides improved load distribution along the tooth surfaces. The opposing helix angles help to evenly distribute the transmitted load between the two sides of the gear. This balanced load distribution minimizes localized stress concentrations and reduces the risk of tooth failure. It ensures that the torque is transmitted smoothly across the entire tooth profile, resulting in efficient power transmission and reduced wear.
- Efficient Torque Transfer: Herringbone gears offer efficient torque transfer due to their large contact area and overlapping tooth engagement. The double helical tooth profile provides a larger contact ratio compared to spur gears, allowing for a greater number of teeth in contact at any given time. This increased contact ratio distributes the torque more evenly, reducing the risk of tooth shear and improving power transmission efficiency. The efficient torque transfer contributes to smooth and reliable operation of the gear system.
These factors combined – opposing helix angles, reduced vibration and noise, large contact area, enhanced load distribution, and efficient torque transfer – contribute to the smooth power transmission capabilities of herringbone gears. Their design minimizes the effects of axial and radial forces, promotes balanced load distribution, and ensures reliable and efficient power transfer in various applications.

Can you provide examples of machinery that use herringbone gears?
Herringbone gears are widely used in various machinery and mechanical systems that require high torque transmission, smooth operation, and reduced noise levels. Here are some examples of machinery and applications where herringbone gears are commonly employed:
- Marine Propulsion Systems: Herringbone gears are commonly found in marine propulsion systems, including ship engines and marine gearboxes. They are used to transmit power from the engine to the propeller shaft, providing efficient torque transfer and smooth operation in marine vessels.
- Mining Equipment: Herringbone gears are used in heavy-duty mining equipment, such as crushers, conveyors, and excavators. These gears can handle high loads and provide reliable power transmission in demanding mining operations.
- Turbines and Power Generation: Herringbone gears are utilized in various power generation applications, including steam turbines and hydroelectric generators. They help transmit torque from the turbine or generator shaft to other components, such as the gearbox or electrical generator, ensuring efficient power generation.
- Rotating Kilns and Dryers: Herringbone gears are commonly employed in rotating kilns and dryers used in industries such as cement manufacturing and chemical processing. These gears facilitate the rotation of the kiln or dryer, ensuring proper heat distribution and material processing.
- Metal Rolling Mills: Herringbone gears are utilized in metal rolling mills to transmit power from the motor to the rollers. They enable precise and synchronized movement of the rolls, allowing for the shaping and forming of metal sheets or bars in the rolling process.
- Paper and Pulp Industry: Herringbone gears are used in machinery and equipment involved in the paper and pulp industry, such as paper machines, pulpers, and digesters. These gears facilitate the movement of various components, including rollers and conveyors, ensuring smooth and efficient paper production processes.
- Textile Machinery: Herringbone gears find applications in textile machinery, including spinning machines, weaving looms, and knitting machines. They assist in the movement and synchronization of various components, such as spindles, shuttles, and fabric feeders, enabling precise and efficient textile production.
- Machine Tools: Herringbone gears are utilized in machine tools, such as gear hobbing machines, milling machines, and lathes. These gears help transmit power from the motor to the tooling components, allowing for precise and controlled machining operations.
These examples represent just a few of the many applications where herringbone gears are employed. Herringbone gears are valued for their ability to handle high loads, provide smooth operation, and reduce noise levels, making them suitable for a wide range of machinery and mechanical systems.

Are there different variations of herringbone gears available?
Yes, there are different variations of herringbone gears available to suit specific application requirements. Here’s a detailed explanation of some of the common variations of herringbone gears:
- Single- and Double-Sided: Herringbone gears can be classified as single-sided or double-sided based on the number of helical sections. Single-sided herringbone gears have a herringbone tooth profile on one side and a straight tooth profile on the other side. Double-sided herringbone gears have herringbone tooth profiles on both sides. Single-sided herringbone gears are commonly used when axial thrust elimination is not a primary requirement, while double-sided herringbone gears provide superior axial thrust cancellation.
- Conventional and Low-Backlash: Herringbone gears can also be categorized as conventional or low-backlash based on their tooth design and manufacturing precision. Conventional herringbone gears have standard tooth profiles and may exhibit some level of backlash, which is the slight clearance between the mating teeth. Low-backlash herringbone gears are designed and manufactured with tighter tolerances to minimize or eliminate backlash, resulting in improved precision and reduced vibration.
- Materials and Coatings: Herringbone gears can be made from various materials depending on the application requirements. Common materials include steel, cast iron, bronze, and non-ferrous alloys. Additionally, surface coatings such as nitriding or carburizing can be applied to enhance the gear’s hardness, wear resistance, and durability. The choice of material and coating depends on factors like load capacity, operating conditions, and cost considerations.
- Customized Geometries: Herringbone gears can be customized to specific geometries and specifications based on the application requirements. This includes variations in tooth dimensions, helix angles, pressure angles, and gear module (the ratio of the gear’s pitch diameter to the number of teeth). Customized geometries allow herringbone gears to be optimized for specific torque loads, speed ranges, and space constraints.
- Integrated Components: In some applications, herringbone gears may be integrated with other components to form specialized gear systems. For example, herringbone gears can be combined with planetary gear systems to create herringbone planetary gears, which offer high torque capacity and compact design. These integrated variations provide specific advantages in terms of load distribution, torque transmission, and overall system efficiency.
The choice of herringbone gear variation depends on the specific application requirements, including factors such as torque loads, speed ranges, axial thrust considerations, precision requirements, and space limitations. Manufacturers and engineers can select the most appropriate variation or customize herringbone gears to ensure optimal performance and reliability in their respective applications.
In summary, herringbone gears offer different variations such as single-sided and double-sided configurations, conventional and low-backlash designs, variations in materials and coatings, customized geometries, and integration with other gear systems. These variations allow herringbone gears to be tailored to meet the specific needs of diverse industrial applications.


editor by CX 2024-04-04