Categories: Katalog produktów

China factory Auto Parts Spline Shaft with Gears 45 ODM/OEM CNC Machining Lathing/Milling/Drilling/Knurling/Grinding for Outdoor Equipment/Vehicle Transmission/Gearbox

Opis produktu

You can kindly find the specification details below:

HangZhou Mastery Machinery Technology Co., LTD helps manufacturers and brands fulfill their machinery parts by precision manufacturing. High precision machinery products like the shaft, worm screw, bushing, couplings, joints……Our products are used widely in electronic motors, the main shaft of the engine, the transmission shaft in the gearbox, couplers, printers, pumps, drones, and so on. They cater to different industries, including automotive, industrial, power tools, garden tools, healthcare, smart home, etc.

Mastery caters to the industrial industry by offering high-level Cardan shafts, pump shafts, and a bushing that come in different sizes ranging from diameter 3mm-50mm. Our products are specifically formulated for transmissions, robots, gearboxes, industrial fans, and drones, etc.

Mastery factory currently has more than 100 main production equipment such as CNC lathe, CNC machining center, CAM Automatic Lathe, grinding machine, hobbing machine, etc. The production capacity can be up to 5-micron mechanical tolerance accuracy, automatic wiring machine processing range covering 3mm-50mm diameter bar.

Key Specifications:

Name Shaft/Motor Shaft/Drive Shaft/Gear Shaft/Pump Shaft/Worm Screw/Worm Gear/Bushing/Ring/Joint/Pin
Tworzywo 40Cr/35C/GB45/70Cr/40CrMo
Process Machining/Lathing/Milling/Drilling/Grinding/Polishing
Size 2-400mm(Customized)
Diameter φ15(Customized)
Diameter Tolerance 0.01mm
Roundness 0.003mm
Roughness Ra0.4
Straightness 0.008mm
Hardness HRC45-50
Length 40mm(Customized)
Heat Treatment Customized
Surface treatment Coating/Ni plating/Zn plating/QPQ/Carbonization/Quenching/Black Treatment/Steaming Treatment/Nitrocarburizing/Carbonitriding

Quality Management:

  • Raw Material Quality Control: Chemical Composition Analysis, Mechanical Performance Test, ROHS, and Mechanical Dimension Check
  • Production Process Quality Control: Full-size inspection for the 1st part, Critical size process inspection, SPC process monitoring
  • Lab ability: CMM, OGP, XRF, Roughness meter, Profiler, Automatic optical inspector
  • Quality system: ISO9001, IATF 16949, ISO14001
  • Eco-Friendly: ROHS, Reach.

Packaging and Shipping:  

Throughout the entire process of our supply chain management, consistent on-time delivery is vital and very important for the success of our business.

Mastery utilizes several different shipping methods that are detailed below:

For Samples/Small Q’ty: By Express Services or Air Fright.

For Formal Order: By Sea or by air according to your requirement.

 

Mastery Services:

  • One-Stop solution from idea to product/ODM&OEM acceptable
  • Individual research and sourcing/purchasing tasks
  • Individual supplier management/development, on-site quality check projects
  • Muti-varieties/small batch/customization/trial orders are acceptable
  • Flexibility on quantity/Quick samples
  • Forecast and raw material preparation in advance are negotiable
  • Quick quotes and quick responses

General Parameters:

If you are looking for a reliable machinery product partner, you can rely on Mastery. Work with us and let us help you grow your business using our customizable and affordable products.

Material: Carbon Steel
Load: Drive Shaft
Stiffness & Flexibility: Stiffness / Rigid Axle
Journal Diameter Dimensional Accuracy: IT6-IT9
Axis Shape: Straight Shaft
Shaft Shape: Real Axis
Personalizacja:
Dostępny

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Spersonalizowane żądanie

Jak wałki wielowypustowe radzą sobie ze zmianami momentu obrotowego i siły obrotowej?

Spline shafts are designed to handle variations in torque and rotational force in mechanical systems. Here’s a detailed explanation:

1. Wzajemnie blokujące się rowki:

Wałki wielowypustowe posiadają szereg zazębiających się wielowypustów na całej swojej długości. Wielowypusty te zazębiają się z odpowiadającymi im wielowypustami na współpracującym elemencie, takim jak koła zębate lub sprzęgła. Zazębiająca się konstrukcja zapewnia bezpieczne i solidne połączenie, zdolne do przenoszenia momentu obrotowego i siły obrotowej.

2. Rozkład obciążenia:

Po przyłożeniu momentu obrotowego do wału wielowypustowego, obciążenie rozkłada się na całą powierzchnię styku wielowypustów. Pomaga to zminimalizować koncentrację naprężeń i zapobiega lokalnemu zużyciu lub uszkodzeniu. Możliwość rozkładu obciążenia wałów wielowypustowych pozwala im skutecznie radzić sobie ze zmianami momentu obrotowego i siły obrotowej.

3. Wybór materiałów:

Wały wielowypustowe są zazwyczaj wykonane z materiałów o wysokiej wytrzymałości i trwałości, takich jak stale stopowe. Dobór materiału ma kluczowe znaczenie dla dostosowania się do wahań momentu obrotowego i siły obrotowej. Gwarantuje on, że wał wielowypustowy wytrzyma przyłożone obciążenia bez odkształceń i uszkodzeń.

4. Profil wielowypustowy:

Konstrukcja profilu wielowypustowego wpływa również na zdolność do radzenia sobie ze zmianami momentu obrotowego. Profil wielowypustowy określa powierzchnię styku i rozkład sił wzdłuż wielowypustów. Optymalizując profil wielowypustowy, producenci mogą zwiększyć nośność i poprawić zdolność wału wielowypustowego do radzenia sobie ze zmianami momentu obrotowego.

5. Wykończenie powierzchni i smarowanie:

Prawidłowe wykończenie powierzchni i smarowanie odgrywają kluczową rolę w działaniu wałów wielowypustowych. Gładka powierzchnia zmniejsza tarcie i zużycie, a odpowiednie smarowanie minimalizuje wytwarzanie ciepła i zapewnia płynną pracę. Czynniki te pomagają w radzeniu sobie ze zmianami momentu obrotowego i siły obrotowej poprzez redukcję wpływu tarcia i zużycia na zazębienie wielowypustowe.

6. Zagadnienia projektowe:

Engineers take several design considerations into account to ensure spline shafts can handle variations in torque and rotational force. These considerations include appropriate spline dimensions, tooth profile geometry, spline fit tolerance, and the selection of mating components. By carefully designing the spline shaft and its mating components, engineers can optimize the system’s performance and reliability.

7. Zabezpieczenie przed przeciążeniem:

W niektórych zastosowaniach wałki wielowypustowe mogą być wyposażone w mechanizmy zabezpieczające przed przeciążeniem. Mechanizmy te, takie jak kołki ścinane lub ograniczniki momentu obrotowego, służą do tymczasowego rozłączenia napędu lub jego poślizgu, gdy moment obrotowy przekroczy określony próg. Chroni to wałek wielowypustowy i inne podzespoły przed uszkodzeniem spowodowanym nadmiernym momentem obrotowym.

Ogólnie rzecz biorąc, wałki wielowypustowe radzą sobie ze zmianami momentu obrotowego i siły obrotowej poprzez zazębiające się wielowypusty, możliwość rozkładu obciążenia, odpowiedni dobór materiałów, zoptymalizowane profile wielowypustów, wykończenie powierzchni, smarowanie, względy konstrukcyjne oraz, w niektórych przypadkach, mechanizmy zabezpieczające przed przeciążeniem. Cechy te zapewniają efektywne przenoszenie momentu obrotowego i pozwalają wałkom wielowypustowym sprostać wymaganiom różnych układów mechanicznych.

How do spline shafts handle variations in environmental conditions?

Spline shafts are designed to handle variations in environmental conditions and maintain their performance and reliability. Here’s a detailed explanation:

1. Temperature Variations:

Spline shafts are engineered to withstand a wide range of temperature variations. They are constructed from materials that exhibit good thermal stability, such as high-grade steels or alloys. These materials have low coefficients of thermal expansion, minimizing the effects of temperature changes on the shaft’s dimensional stability. Additionally, proper lubrication with temperature-resistant lubricants helps reduce friction and wear in the spline engagement, even under extreme temperature conditions.

2. Moisture and Corrosion Resistance:

Spline shafts can be designed to resist moisture and corrosion, ensuring their performance in humid or corrosive environments. Protective coatings, such as platings or surface treatments, can be applied to the shaft’s surfaces to enhance their resistance to moisture, oxidation, and corrosion. Additionally, selecting materials with inherent corrosion resistance, such as stainless steel or specialized alloys, can further enhance the spline shaft’s ability to handle environmental conditions.

3. Dust and Contaminant Protection:

Spline shafts used in environments with high levels of dust, dirt, or contaminants can be equipped with protective measures. Seals, gaskets, or covers can be employed to prevent the ingress of particles into the spline engagement. These protective measures help maintain the integrity of the spline profile, minimize wear, and ensure smooth operation even in dirty or dusty conditions.

4. Lubrication and Maintenance:

Proper lubrication is essential for the reliable operation of spline shafts, especially in challenging environmental conditions. Lubricants with appropriate viscosity and additives can be selected to provide effective lubrication and protection against wear, friction, and corrosion. Regular maintenance and lubrication intervals should be followed to ensure optimal performance and longevity of the spline shaft.

5. Shock and Vibration Resistance:

Spline shafts are designed to withstand shock and vibration encountered in various applications. The spline engagement and shaft design can incorporate features such as tighter tolerances, increased contact area, or damping elements to minimize the effects of shock and vibration. Additionally, proper fastening and mounting techniques help secure the shaft and reduce the risk of loosening or failure due to dynamic loads.

6. Environmental Sealing:

In certain applications where spline shafts are exposed to harsh environmental conditions, such as underwater or in chemical environments, environmental sealing can be employed. Sealing methods such as O-rings, gaskets, or specialized seals provide an additional barrier against external elements, ensuring the integrity and performance of the spline shaft.

7. Compliance with Standards:

Spline shafts used in specific industries or applications may need to comply with industry standards or regulations regarding environmental conditions. Manufacturers can design and test their spline shafts to meet these requirements, ensuring that the shafts can handle the specified environmental conditions and perform reliably.

By incorporating design considerations, appropriate materials, protective coatings, lubrication, and maintenance practices, spline shafts can effectively handle variations in environmental conditions. This enables them to maintain their functionality, performance, and longevity even in challenging operating environments.

What is a spline shaft and what is its primary function?

A spline shaft is a mechanical component that consists of a series of ridges or teeth (called splines) that are machined onto the surface of the shaft. Its primary function is to transmit torque while allowing for the relative movement or sliding of mating components. Here’s a detailed explanation:

1. Structure and Design:

A spline shaft typically has a cylindrical shape with external or internal splines. The external spline shaft has splines on the outer surface, while the internal spline shaft has splines on the inner bore. The number, size, and shape of the splines can vary depending on the specific application and design requirements.

2. Torque Transmission:

The main function of a spline shaft is to transmit torque between two mating components, such as gears, couplings, or other rotational elements. The splines on the shaft engage with corresponding splines on the mating component, creating a mechanical interlock. When torque is applied to the spline shaft, the engagement between the splines ensures that the rotational force is transferred from the shaft to the mating component, allowing the system to transmit power.

3. Relative Movement:

Unlike other types of shafts, a spline shaft allows for relative movement or sliding between the shaft and the mating component. This sliding motion can be axial (along the shaft’s axis) or radial (perpendicular to the shaft’s axis). The splines provide a precise and controlled interface that allows for this movement while maintaining torque transmission. This feature is particularly useful in applications where axial or radial displacement or misalignment needs to be accommodated.

4. Load Distribution:

Another important function of a spline shaft is to distribute the applied load evenly along its length. The splines create multiple contact points between the shaft and the mating component, which helps to distribute the torque and axial or radial forces over a larger surface area. This load distribution minimizes stress concentrations and reduces the risk of premature wear or failure.

5. Versatility and Applications:

Spline shafts find applications in various industries and systems, including automotive, aerospace, machinery, and power transmission. They are commonly used in gearboxes, drive systems, power take-off units, steering systems, and many other rotational mechanisms where torque transmission, relative movement, and load distribution are essential.

6. Zagadnienia projektowe:

When designing a spline shaft, factors such as the torque requirements, speed, applied loads, and environmental conditions need to be considered. The spline geometry, material selection, and surface finish are critical for ensuring proper engagement, load-bearing capacity, and durability of the spline shaft.

In summary, a spline shaft is a mechanical component with splines that allows for torque transmission while accommodating relative movement or sliding between mating components. Its primary function is to transmit rotational force, distribute loads, and enable axial or radial displacement in various applications requiring precise torque transfer and flexibility.


editor by CX 2023-10-04

odcinek

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