Description du produit
Customized High Precision Spare Parts Auto/Truck/Drive/Gear/Spline/Propeller/Half/Sleeve/Machinery/Sliding/Transmission Axle Shaft 42CrMo 20CrMoTi
(1) Accessory products of the truck, the product quality is stable and reliable.
(2) Forged with 42CrMo material and heat treated and tempered for 32 degrees, so that the half shaft has stronger toughness and is not easy to break and bend.
(3) Processed in the machining center, ensure that the products have rigorous dimensional coordinates to ensure 100% qualified rate of products.
(4) Products are inspected 1 by 1 and delivered out of the warehouse, with unified laser identification to ensure product traceability.
(5) Various sizes of axle shafts can be customized to meet customer needs.
(6) The unified brand carton, inner bag and integral foam packaging, which is strong and beautiful.
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More Products
| Truck Model | Sinotruk, Shacman, CZPT Auman, CZPT Xihu (West Lake) Dis., Xihu (West Lake) Dis.feng, Xihu (West Lake) Dis.feng Liuqi Balong, North BENZ( BEIBEN), C&C, JAC, etc. | |
| Product catalogue | Axle | Wheel Assembly |
| Differential Assembly | ||
| Main Reducer Assembly | ||
| Inner Ring Gear& Bracket | ||
| Basin Angle Gear/ Bevel Gear | ||
| Axle Shaft/ Half Shaft & Through Shaft | ||
| Axle Housing& Axle Assembly | ||
| Steering knuckle & Front Axle | ||
| Gear | ||
| Brake Drum& Wheel Hub | ||
| Flange | ||
| Bearing | ||
| Main Reducer Housing | ||
| Oil Seal Seat | ||
| Nut& Shim Series | ||
| Brake Backing Plate | ||
| Chassis Support Products | Leaf Spring Bracket | |
| Drop Arm Series | ||
| Bracket Series | ||
| Leaf Spring Shackle Series | ||
| Balanced Suspension Series | Balance Shaft Assembly | |
| Balance Shaft Housing | ||
| Axle Spring Seat | ||
| Thrust Rod | ||
| Balance Shaft Parts | ||
| Shock Absorber Series | Shock Absorber | |
| Shock Absorbing Airbag | ||
| Steering System | Power Steering Pump | |
| Power Steering Gear | ||
| Rubber Products | Oil Seal | |
| Rubber Support | ||
| Thrust Rod Rubber Core | ||
| Truck Belt | ||
| Engine support | ||
| Other | ||
| Clutch Series | Clutch Pressure Plate | |
| Clutch Disc | ||
| Flywheel Assembly | ||
| Flywheel Ring Gear | ||
| Adjusting Arm Series | ||
Function
Heavy trucks usually have double rear axles. If they are driven separately, they need to use 2 transmission shafts or add a transfer case at the output of the gearbox, which is heavy and cumbersome. Now a through shaft is designed in the middle axle to solve this problem. Only 1 transmission shaft is needed to drive 2 rear axles at the same time.
Packaging & Shipping
Exhibition
FAQ
Q1. Are you a factory or trading company?
We are a factory integrating research, development, production and sales.
Q2. What are the advantages of your products?
We support product customization to meet customer needs for special products. We can strictly control the products from raw materials to production, processing, product quality inspection, delivery, packaging, etc., and provide customers with high-end products and the most advantageous prices.
Q3. How about products price?
We are a factory, all products are direct sale at factory price. For the same price, we will provide the best quality; for the same quality, we have the most advantageous price.
Q4. What is your terms of packing?
We have branded packaging and neutral packaging, and we can also do what you want with authorization. This is flexible.
Q5. How to guarantee your after-sales service?
Strict inspection during production, Strictly check the products before shipment to ensure our packaging in good condition. Track and receive feedback from customer regularly. Our products warranty is 365 days.
Each product provides quality assurance service. If there is a problem with the product within the warranty period, the customer can negotiate with us in detail about the related claims, and we will do our best to satisfy the customer.
Certifications
/* January 22, 2571 19:08:37 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))&&1
| Matériel: | 45#Steel, 42CrMo, 20crmoti |
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| Charger: | Arbre de transmission |
| Journal Diameter Dimensional Accuracy: | High Precision |
| Exemples : |
US$ 29/Piece
1 pièce (commande minimale) | Order Sample |
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| Personnalisation : |
Disponible
| Demande personnalisée |
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.shipping-cost-tm .tm-status-off{background: none;padding:0;color: #1470cc}
| 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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What maintenance practices are crucial for prolonging the lifespan of drive shafts?
To prolong the lifespan of drive shafts and ensure their optimal performance, several maintenance practices are crucial. Regular maintenance helps identify and address potential issues before they escalate, reduces wear and tear, and ensures the drive shaft operates smoothly and efficiently. Here are some essential maintenance practices for prolonging the lifespan of drive shafts:
1. Regular Inspection:
Performing regular inspections is vital for detecting any signs of wear, damage, or misalignment. Inspect the drive shaft visually, looking for cracks, dents, or any signs of excessive wear on the shaft itself and its associated components such as joints, yokes, and splines. Check for any signs of lubrication leaks or contamination. Additionally, inspect the fasteners and mounting points to ensure they are secure. Early detection of any issues allows for timely repairs or replacements, preventing further damage to the drive shaft.
2. Lubrication:
Proper lubrication is essential for the smooth operation and longevity of drive shafts. Lubricate the joints, such as universal joints or constant velocity joints, as recommended by the manufacturer. Lubrication reduces friction, minimizes wear, and helps dissipate heat generated during operation. Use the appropriate lubricant specified for the specific drive shaft and application, considering factors such as temperature, load, and operating conditions. Regularly check the lubrication levels and replenish as necessary to ensure optimal performance and prevent premature failure.
3. Balancing and Alignment:
Maintaining proper balancing and alignment is crucial for the lifespan of drive shafts. Imbalances or misalignments can lead to vibrations, accelerated wear, and potential failure. If vibrations or unusual noises are detected during operation, it is important to address them promptly. Perform balancing procedures as necessary, including dynamic balancing, to ensure even weight distribution along the drive shaft. Additionally, verify that the drive shaft is correctly aligned with the engine or power source and the driven components. Misalignment can cause excessive stress on the drive shaft, leading to premature failure.
4. Protective Coatings:
Applying protective coatings can help prolong the lifespan of drive shafts, particularly in applications exposed to harsh environments or corrosive substances. Consider using coatings such as zinc plating, powder coating, or specialized corrosion-resistant coatings to enhance the drive shaft’s resistance to corrosion, rust, and chemical damage. Regularly inspect the coating for any signs of degradation or damage, and reapply or repair as necessary to maintain the protective barrier.
5. Torque and Fastener Checks:
Ensure that the drive shaft’s fasteners, such as bolts, nuts, or clamps, are properly torqued and secured according to the manufacturer’s specifications. Loose or improperly tightened fasteners can lead to excessive vibrations, misalignment, or even detachment of the drive shaft. Periodically check and retighten the fasteners as recommended or after any maintenance or repair procedures. Additionally, monitor the torque levels during operation to ensure they remain within the specified range, as excessive torque can strain the drive shaft and lead to premature failure.
6. Environmental Protection:
Protecting the drive shaft from environmental factors can significantly extend its lifespan. In applications exposed to extreme temperatures, moisture, chemicals, or abrasive substances, take appropriate measures to shield the drive shaft. This may include using protective covers, seals, or guards to prevent contaminants from entering and causing damage. Regular cleaning of the drive shaft, especially in dirty or corrosive environments, can also help remove debris and prevent buildup that could compromise its performance and longevity.
7. Manufacturer Guidelines:
Follow the manufacturer’s guidelines and recommendations for maintenance practices specific to the drive shaft model and application. The manufacturer’s instructions may include specific intervals for inspections, lubrication, balancing, or other maintenance tasks. Adhering to these guidelines ensures that the drive shaft is properly maintained and serviced, maximizing its lifespan and minimizing the risk of unexpected failures.
By implementing these maintenance practices, drive shafts can operate reliably, maintain efficient power transmission, and have an extended service life, ultimately reducing downtime and ensuring optimal performance in various applications.

How do drive shafts handle variations in load and vibration during operation?
Drive shafts are designed to handle variations in load and vibration during operation by employing various mechanisms and features. These mechanisms help ensure smooth power transmission, minimize vibrations, and maintain the structural integrity of the drive shaft. Here’s a detailed explanation of how drive shafts handle load and vibration variations:
1. Material Selection and Design:
Drive shafts are typically made from materials with high strength and stiffness, such as steel alloys or composite materials. The material selection and design take into account the anticipated loads and operating conditions of the application. By using appropriate materials and optimizing the design, drive shafts can withstand the expected variations in load without experiencing excessive deflection or deformation.
2. Torque Capacity:
Drive shafts are designed with a specific torque capacity that corresponds to the expected loads. The torque capacity takes into account factors such as the power output of the driving source and the torque requirements of the driven components. By selecting a drive shaft with sufficient torque capacity, variations in load can be accommodated without exceeding the drive shaft’s limits and risking failure or damage.
3. Dynamic Balancing:
During the manufacturing process, drive shafts can undergo dynamic balancing. Imbalances in the drive shaft can result in vibrations during operation. Through the balancing process, weights are strategically added or removed to ensure that the drive shaft spins evenly and minimizes vibrations. Dynamic balancing helps to mitigate the effects of load variations and reduces the potential for excessive vibrations in the drive shaft.
4. Dampers and Vibration Control:
Drive shafts can incorporate dampers or vibration control mechanisms to further minimize vibrations. These devices are typically designed to absorb or dissipate vibrations that may arise from load variations or other factors. Dampers can be in the form of torsional dampers, rubber isolators, or other vibration-absorbing elements strategically placed along the drive shaft. By managing and attenuating vibrations, drive shafts ensure smooth operation and enhance overall system performance.
5. CV Joints:
Constant Velocity (CV) joints are often used in drive shafts to accommodate variations in operating angles and to maintain a constant speed. CV joints allow the drive shaft to transmit power even when the driving and driven components are at different angles. By accommodating variations in operating angles, CV joints help minimize the impact of load variations and reduce potential vibrations that may arise from changes in the driveline geometry.
6. Lubrication and Maintenance:
Proper lubrication and regular maintenance are essential for drive shafts to handle load and vibration variations effectively. Lubrication helps reduce friction between moving parts, minimizing wear and heat generation. Regular maintenance, including inspection and lubrication of joints, ensures that the drive shaft remains in optimal condition, reducing the risk of failure or performance degradation due to load variations.
7. Structural Rigidity:
Drive shafts are designed to have sufficient structural rigidity to resist bending and torsional forces. This rigidity helps maintain the integrity of the drive shaft when subjected to load variations. By minimizing deflection and maintaining structural integrity, the drive shaft can effectively transmit power and handle variations in load without compromising performance or introducing excessive vibrations.
8. Control Systems and Feedback:
In some applications, drive shafts may be equipped with control systems that actively monitor and adjust parameters such as torque, speed, and vibration. These control systems use sensors and feedback mechanisms to detect variations in load or vibrations and make real-time adjustments to optimize performance. By actively managing load variations and vibrations, drive shafts can adapt to changing operating conditions and maintain smooth operation.
In summary, drive shafts handle variations in load and vibration during operation through careful material selection and design, torque capacity considerations, dynamic balancing, integration of dampers and vibration control mechanisms, utilization of CV joints, proper lubrication and maintenance, structural rigidity, and, in some cases, control systems and feedback mechanisms. By incorporating these features and mechanisms, drive shafts ensure reliable and efficient power transmission while minimizing the impact of load variations and vibrations on overall system performance.

Comment les arbres de transmission contribuent-ils au transfert de la puissance de rotation dans diverses applications ?
Les arbres de transmission jouent un rôle crucial dans le transfert de la puissance de rotation du moteur ou de la source d'énergie aux roues ou aux composants entraînés dans diverses applications. Que ce soit dans les véhicules ou les machines, les arbres de transmission permettent une transmission de puissance efficace et facilitent le fonctionnement des différents systèmes. Voici une explication détaillée de la manière dont les arbres de transmission contribuent au transfert de la puissance de rotation :
1. Applications pour véhicules :
Dans les véhicules, les arbres de transmission transmettent la puissance de rotation du moteur aux roues, permettant ainsi au véhicule de se déplacer. L'arbre de transmission relie l'arbre de sortie de la boîte de vitesses ou de la transmission au différentiel, qui répartit ensuite la puissance entre les roues. Lorsque le moteur génère du couple, celui-ci est transmis aux roues par l'arbre de transmission, propulsant le véhicule vers l'avant. Cette transmission de puissance permet au véhicule d'accélérer, de maintenir sa vitesse et de surmonter les résistances, telles que le frottement et les pentes.
2. Applications des machines :
Dans les machines, les arbres de transmission servent à transmettre la puissance de rotation du moteur thermique aux différents composants entraînés. Par exemple, dans les machines industrielles, ils peuvent alimenter des pompes, des générateurs, des convoyeurs ou d'autres systèmes mécaniques. Dans les machines agricoles, les arbres de transmission sont couramment utilisés pour relier la source d'énergie à des équipements tels que les moissonneuses-batteuses, les presses à balles ou les systèmes d'irrigation. Les arbres de transmission permettent à ces machines de fonctionner en fournissant la puissance de rotation aux composants nécessaires.
3. Transmission de puissance :
Les arbres de transmission sont conçus pour transmettre la puissance de rotation de manière efficace et fiable. Ils sont capables de transférer un couple important du moteur aux roues ou aux organes entraînés. Le couple généré par le moteur est transmis par l'arbre de transmission sans pertes de puissance significatives. En assurant une liaison rigide entre le moteur et les organes entraînés, les arbres de transmission garantissent une utilisation optimale de la puissance produite par le moteur pour la réalisation d'un travail utile.
4. Accouplement flexible :
L'une des fonctions essentielles des arbres de transmission est d'assurer une liaison flexible entre le moteur/la boîte de vitesses et les roues ou les organes moteurs. Cette flexibilité permet à l'arbre de transmission d'absorber les mouvements angulaires et de compenser les défauts d'alignement entre le moteur et le système entraîné. Sur un véhicule, lorsque la suspension se déplace ou que les roues rencontrent des irrégularités du terrain, l'arbre de transmission ajuste sa longueur et son angle afin de maintenir une transmission de puissance constante. Cette flexibilité contribue à prévenir les contraintes excessives sur les composants de la transmission et garantit une transmission de puissance fluide.
5. Transmission du couple et de la vitesse :
Les arbres de transmission assurent la transmission du couple et de la vitesse de rotation. Le couple correspond à la force de rotation générée par le moteur ou la source d'énergie, tandis que la vitesse de rotation s'exprime en tours par minute (tr/min). Les arbres de transmission doivent pouvoir supporter le couple requis par l'application sans se tordre ni se courber excessivement. De plus, ils doivent maintenir la vitesse de rotation souhaitée pour garantir le bon fonctionnement des composants entraînés. Une conception appropriée, le choix des matériaux et l'équilibrage des arbres de transmission contribuent à une transmission efficace du couple et de la vitesse.
6. Longueur et équilibre :
La longueur et l'équilibrage des arbres de transmission sont des facteurs essentiels à leurs performances. La longueur de l'arbre de transmission est déterminée par la distance entre le moteur ou la source d'énergie et les composants entraînés. Elle doit être correctement dimensionnée afin d'éviter les vibrations excessives et les déformations. Les arbres de transmission sont soigneusement équilibrés pour minimiser les vibrations et les déséquilibres de rotation, qui peuvent affecter les performances globales, le confort et la durée de vie du système de transmission.
7. Sécurité et entretien :
Les arbres de transmission nécessitent des mesures de sécurité appropriées et un entretien régulier. Dans les véhicules, ils sont souvent protégés par un tube ou un carter afin d'éviter tout contact avec les pièces mobiles et de réduire ainsi les risques de blessure. Des protections peuvent également être installées autour des arbres de transmission exposés dans les machines afin de protéger les opérateurs des dangers potentiels. L'entretien régulier comprend l'inspection de l'arbre de transmission pour détecter toute usure, tout dommage ou tout défaut d'alignement, ainsi que la lubrification adéquate des joints de cardan. Ces mesures contribuent à prévenir les pannes, à garantir des performances optimales et à prolonger la durée de vie de l'arbre de transmission.
En résumé, les arbres de transmission jouent un rôle essentiel dans la transmission de la puissance de rotation dans diverses applications. Que ce soit dans les véhicules ou les machines, ils permettent une transmission efficace de la puissance du moteur ou de la source d'énergie aux roues ou aux composants entraînés. Ils assurent un accouplement flexible, gèrent la transmission du couple et de la vitesse, permettent les mouvements angulaires et contribuent à la sécurité et à la maintenance du système. En transmettant efficacement la puissance de rotation, les arbres de transmission optimisent le fonctionnement et les performances des véhicules et des machines dans de nombreux secteurs industriels.


editor by CX 2024-04-09