Tuotekuvaus
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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| 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
Usein kysytyt kysymykset
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.
Sertifioinnit
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| Material: | 45#Steel, 42CrMo, 20crmoti |
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| Load: | Vetoakseli |
| Journal Diameter Dimensional Accuracy: | High Precision |
| Samples: |
US$ 29/Piece
1 Piece(Min.Order) | Order Sample |
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| Customization: |
Saatavilla
| Customized Request |
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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 factors should be considered when selecting the right drive shaft for an application?
When selecting the right drive shaft for an application, several factors need to be considered. The choice of drive shaft plays a crucial role in ensuring efficient and reliable power transmission. Here are the key factors to consider:
1. Power and Torque Requirements:
The power and torque requirements of the application are essential considerations. It is crucial to determine the maximum torque that the drive shaft will need to transmit without failure or excessive deflection. This includes evaluating the power output of the engine or power source, as well as the torque demands of the driven components. Selecting a drive shaft with the appropriate diameter, material strength, and design is essential to ensure it can handle the expected torque levels without compromising performance or safety.
2. Operating Speed:
The operating speed of the drive shaft is another critical factor. The rotational speed affects the dynamic behavior of the drive shaft, including the potential for vibration, resonance, and critical speed limitations. It is important to choose a drive shaft that can operate within the desired speed range without encountering excessive vibrations or compromising the structural integrity. Factors such as the material properties, balance, and critical speed analysis should be considered to ensure the drive shaft can handle the required operating speed effectively.
3. Length and Alignment:
The length and alignment requirements of the application must be considered when selecting a drive shaft. The distance between the engine or power source and the driven components determines the required length of the drive shaft. In situations where there are significant variations in length or operating angles, telescopic drive shafts or multiple drive shafts with appropriate couplings or universal joints may be necessary. Proper alignment of the drive shaft is crucial to minimize vibrations, reduce wear and tear, and ensure efficient power transmission.
4. Space Limitations:
The available space within the application is an important factor to consider. The drive shaft must fit within the allocated space without interfering with other components or structures. It is essential to consider the overall dimensions of the drive shaft, including length, diameter, and any additional components such as joints or couplings. In some cases, custom or compact drive shaft designs may be required to accommodate space limitations while maintaining adequate power transmission capabilities.
5. Environmental Conditions:
The environmental conditions in which the drive shaft will operate should be evaluated. Factors such as temperature, humidity, corrosive agents, and exposure to contaminants can impact the performance and lifespan of the drive shaft. It is important to select materials and coatings that can withstand the specific environmental conditions to prevent corrosion, degradation, or premature failure of the drive shaft. Special considerations may be necessary for applications exposed to extreme temperatures, water, chemicals, or abrasive substances.
6. Application Type and Industry:
The specific application type and industry requirements play a significant role in drive shaft selection. Different industries, such as automotive, aerospace, industrial machinery, agriculture, or marine, have unique demands that need to be addressed. Understanding the specific needs and operating conditions of the application is crucial in determining the appropriate drive shaft design, materials, and performance characteristics. Compliance with industry standards and regulations may also be a consideration in certain applications.
7. Maintenance and Serviceability:
The ease of maintenance and serviceability should be taken into account. Some drive shaft designs may require periodic inspection, lubrication, or replacement of components. Considering the accessibility of the drive shaft and associated maintenance requirements can help minimize downtime and ensure long-term reliability. Easy disassembly and reassembly of the drive shaft can also be beneficial for repair or component replacement.
By carefully considering these factors, one can select the right drive shaft for an application that meets the power transmission needs, operating conditions, and durability requirements, ultimately ensuring optimal performance and reliability.

Miten vetoakselit parantavat autojen ja kuorma-autojen suorituskykyä?
Vetoakseleilla on merkittävä rooli autojen ja kuorma-autojen suorituskyvyn parantamisessa. Ne vaikuttavat ajoneuvon suorituskyvyn eri osa-alueisiin, kuten tehonsiirtoon, pitoon, käsiteltävyyteen ja kokonaistehokkuuteen. Tässä on yksityiskohtainen selitys siitä, miten vetoakselit parantavat autojen ja kuorma-autojen suorituskykyä:
1. Virransyöttö:
Vetoakselit vastaavat voiman siirtämisestä moottorista pyöriin, mikä mahdollistaa ajoneuvon liikkumisen eteenpäin. Siirtämällä tehoa tehokkaasti ilman merkittäviä häviöitä vetoakselit varmistavat, että moottorin teho käytetään tehokkaasti, mikä parantaa kiihtyvyyttä ja kokonaissuorituskykyä. Hyvin suunnitellut vetoakselit, joilla on minimaalinen tehohäviö, edistävät ajoneuvon kykyä välittää tehoa pyöriin tehokkaasti.
2. Vääntömomentin siirto:
Vetoakselit helpottavat vääntömomentin siirtymistä moottorista pyöriin. Vääntömomentti on pyörimisvoima, joka ajaa ajoneuvoa eteenpäin. Korkealaatuiset vetoakselit, joilla on asianmukaiset vääntömomentin muuntamisominaisuudet, varmistavat, että moottorin tuottama vääntömomentti välittyy tehokkaasti pyöriin. Tämä parantaa ajoneuvon kykyä kiihdyttää nopeasti, vetää raskaita kuormia ja kiivetä jyrkissä mäissä, mikä parantaa kokonaissuorituskykyä.
3. Pito ja vakaus:
Vetoakselit edistävät autojen ja kuorma-autojen pitoa ja vakautta. Ne välittävät voiman pyörille, jolloin ne voivat kohdistaa voimaa tienpintaan. Tämä mahdollistaa ajoneuvon pidon säilyttämisen erityisesti kiihdytyksen aikana tai ajettaessa liukkaalla tai epätasaisella maastolla. Tehokas voimansiirto vetoakseleiden kautta parantaa ajoneuvon vakautta varmistamalla tasapainoisen voimanjaon kaikille pyörille, mikä parantaa hallintaa ja käsiteltävyyttä.
4. Käsittely ja ohjattavuus:
Vetoakseleilla on vaikutusta ajoneuvojen käsiteltävyyteen ja ohjattavuuteen. Ne auttavat luomaan suoran yhteyden moottorin ja pyörien välille, mikä mahdollistaa tarkan hallinnan ja herkän käsiteltävyyden. Hyvin suunnitellut vetoakselit, joissa on minimaalinen välys tai vastavirta, edistävät suorempaa ja välittömämpää vastetta kuljettajan liikkeisiin, mikä parantaa ajoneuvon ketteryyttä ja ohjattavuutta.
5. Painonpudotus:
Vetoakselit voivat auttaa vähentämään autojen ja kuorma-autojen painoa. Kevyet vetoakselit, jotka on valmistettu esimerkiksi alumiinista tai hiilikuituvahvisteisista komposiiteista, vähentävät ajoneuvon kokonaispainoa. Pienempi paino parantaa teho-painosuhdetta, mikä johtaa parempaan kiihtyvyyteen, käsiteltävyyteen ja polttoainetehokkuuteen. Lisäksi kevyet vetoakselit vähentävät pyörimismassaa, jolloin moottorin kierrokset nousevat nopeammin, mikä parantaa entisestään suorituskykyä.
6. Mekaaninen hyötysuhde:
Tehokkaat vetoakselit minimoivat energiahäviöitä voimansiirron aikana. Korkealaatuisten laakereiden, pienikitkaisten tiivisteiden ja optimoidun voitelun kaltaisten ominaisuuksien ansiosta vetoakselit vähentävät kitkaa ja minimoivat sisäisen vastuksesta johtuvat tehohäviöt. Tämä parantaa voimansiirtojärjestelmän mekaanista tehokkuutta, jolloin pyörille pääsee enemmän tehoa ja ajoneuvon kokonaissuorituskyky paranee.
7. Suorituskyvyn päivitykset:
Vetoakselin päivitykset voivat olla suosittu suorituskyvyn parannus harrastajien keskuudessa. Päivitetyt vetoakselit, kuten vahvemmista materiaaleista valmistetut tai suuremmalla vääntömomentilla varustetut, pystyvät käsittelemään muunneltujen moottoreiden suurempia tehoja. Nämä päivitykset mahdollistavat paremman suorituskyvyn, kuten paremman kiihtyvyyden, suuremmat huippunopeudet ja paremman ajodynamiikan.
8. Yhteensopivuus suorituskykymuutosten kanssa:
Suorituskyvyn muutokset, kuten moottorin päivitykset, tehonlisäys tai voimansiirtojärjestelmän muutokset, vaativat usein yhteensopivia vetoakseleita. Suurempia vääntömomentteja käsittelemään tai muokattuihin voimansiirtokokoonpanoihin mukautumaan suunnitellut vetoakselit varmistavat optimaalisen suorituskyvyn ja luotettavuuden. Ne mahdollistavat ajoneuvon tehokkaan tehon ja vääntömomentin hyödyntämisen, mikä parantaa suorituskykyä ja reagointikykyä.
9. Kestävyys ja luotettavuus:
Kestävät ja hyvin huolletut vetoakselit edistävät autojen ja kuorma-autojen kestävyyttä ja luotettavuutta. Ne on suunniteltu kestämään voimansiirtoon liittyviä rasituksia ja kuormia. Korkealaatuiset materiaalit, asianmukainen tasapainotus ja säännöllinen huolto varmistavat vetoakselien sujuvan toiminnan, mikä minimoi vikojen tai suorituskykyongelmien riskin. Luotettavat vetoakselit parantavat yleistä suorituskykyä tarjoamalla tasaisen tehonsyötön ja minimoimalla seisokkiajat.
10. Yhteensopivuus edistyneiden teknologioiden kanssa:
Vetoakselit kehittyvät ajoneuvotekniikan kehityksen tahdissa. Niitä integroidaan yhä enemmän edistyneisiin järjestelmiin, kuten hybridivoimansiirtoihin, sähkömoottoreihin ja regeneratiiviseen jarrutukseen. Näiden teknologioiden kanssa saumattomasti toimimaan suunnitellut vetoakselit maksimoivat niiden tehokkuuden ja suorituskyvyn hyödyt, mikä parantaa ajoneuvon kokonaissuorituskykyä.
Yhteenvetona voidaan todeta, että vetoakselit parantavat autojen ja kuorma-autojen suorituskykyä optimoimalla tehonsiirron, helpottamalla vääntömomentin siirtoa, parantamalla pitoa ja vakautta, parantamalla käsiteltävyyttä ja ohjattavuutta, vähentämällä painoa, lisäämällä mekaanista tehokkuutta ja mahdollistamalla yhteensopivuuden suorituskyvyn parannusten ja edistyneiden teknologioiden kanssa. Niillä on ratkaiseva rooli tehokkaan voimansiirron, reagoivan kiihtyvyyden, tarkan käsiteltävyyden ja ajoneuvojen yleisen suorituskyvyn parantamisessa.
Are there variations in drive shaft designs for different types of machinery?
Yes, there are variations in drive shaft designs to cater to the specific requirements of different types of machinery. The design of a drive shaft is influenced by factors such as the application, power transmission needs, space limitations, operating conditions, and the type of driven components. Here’s an explanation of how drive shaft designs can vary for different types of machinery:
1. Automotive Applications:
In the automotive industry, drive shaft designs can vary depending on the vehicle’s configuration. Rear-wheel-drive vehicles typically use a single-piece or two-piece drive shaft, which connects the transmission or transfer case to the rear differential. Front-wheel-drive vehicles often use a different design, employing a drive shaft that combines with the constant velocity (CV) joints to transmit power to the front wheels. All-wheel-drive vehicles may have multiple drive shafts to distribute power to all wheels. The length, diameter, material, and joint types can differ based on the vehicle’s layout and torque requirements.
2. Industrial Machinery:
Drive shaft designs for industrial machinery depend on the specific application and power transmission requirements. In manufacturing machinery, such as conveyors, presses, and rotating equipment, drive shafts are designed to transfer power efficiently within the machine. They may incorporate flexible joints or use a splined or keyed connection to accommodate misalignment or allow for easy disassembly. The dimensions, materials, and reinforcement of the drive shaft are selected based on the torque, speed, and operating conditions of the machinery.
3. Agriculture and Farming:
Agricultural machinery, such as tractors, combines, and harvesters, often requires drive shafts that can handle high torque loads and varying operating angles. These drive shafts are designed to transmit power from the engine to attachments and implements, such as mowers, balers, tillers, and harvesters. They may incorporate telescopic sections to accommodate adjustable lengths, flexible joints to compensate for misalignment during operation, and protective shielding to prevent entanglement with crops or debris.
4. Construction and Heavy Equipment:
Construction and heavy equipment, including excavators, loaders, bulldozers, and cranes, require robust drive shaft designs capable of transmitting power in demanding conditions. These drive shafts often have larger diameters and thicker walls to handle high torque loads. They may incorporate universal joints or CV joints to accommodate operating angles and absorb shocks and vibrations. Drive shafts in this category may also have additional reinforcements to withstand the harsh environments and heavy-duty applications associated with construction and excavation.
5. Marine and Maritime Applications:
Drive shaft designs for marine applications are specifically engineered to withstand the corrosive effects of seawater and the high torque loads encountered in marine propulsion systems. Marine drive shafts are typically made from stainless steel or other corrosion-resistant materials. They may incorporate flexible couplings or dampening devices to reduce vibration and mitigate the effects of misalignment. The design of marine drive shafts also considers factors such as shaft length, diameter, and support bearings to ensure reliable power transmission in marine vessels.
6. Mining and Extraction Equipment:
In the mining industry, drive shafts are used in heavy machinery and equipment such as mining trucks, excavators, and drilling rigs. These drive shafts need to withstand extremely high torque loads and harsh operating conditions. Drive shaft designs for mining applications often feature larger diameters, thicker walls, and specialized materials such as alloy steel or composite materials. They may incorporate universal joints or CV joints to handle operating angles, and they are designed to be resistant to abrasion and wear.
These examples highlight the variations in drive shaft designs for different types of machinery. The design considerations take into account factors such as power requirements, operating conditions, space constraints, alignment needs, and the specific demands of the machinery or industry. By tailoring the drive shaft design to the unique requirements of each application, optimal power transmission efficiency and reliability can be achieved.


editor by CX 2024-04-26
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