Produktbeskrivelse

ZheJiang WALLONG-HSIN MACHINERY ENGINEERING CORPORATION LTD. short name ‘JSW’, is a wholly state-owned company, also a subsidiary of SINOMACH GROUP (the biggest machinery group in China, ranked No.250 of TOP500 in 2571). 

JSW is founded in 1992 and registered with capital of 4.5 million US dollars, located in HangZhou city, ZheJiang Province, with workshop area 50,000 square meters with first-class production lines, and office area 3000 square meters.

JSW passed ISO 9001,ISO 14001,ISO 45001 ,ISO 50001 and AEO custom certified.
The turnover last year is 20 million US dollar,exporting to European, North American, South American, and Asian markets. 

We have successfully developed a wide range and variety of drive shaft products,mainly including PTO agricultural shaft, industrial cardan shaft, drive shaft for automotive, and universal couplings.

Our products are welcomed by all our customers based on our competitive price, guaranteed quality and on-time delivery.

*Agricultural PTO aksel :
Standard series, customized also accpeted.
Tube type:Triangle, Lemon, Star, Spline stub (Z6,Z8,Z20,Z21).
Accessory: various yokes, splined stub shaft, clutch and torque limiter.

*Industrial cardan aksel
Light duty type: flange Dia. Φ58-180mm
Medium duty type: SWC180 – 550

*Automotive drive aksel : 
Aftermarket for ATV,Pickup truck,Light truck

***HOW TO CHOOSE THE SUITABLE PTO SHAFT FOR YOUR DEMANDS?

1. Model/size of the universal joint, which is according to your requirment of maximum torque(TN) and R.P.M.

2. Closed overall length of shaft assembly (or cross (u-joint) to cross length).

3. Shape of the steel tube/pipe (traiangle, lemon, star, splined stub).

4. Type of the 2 end yokes/forks which used to connect the input end (power source) and output end (implement).
    Including the series of quick released splined yoke/fork, plain bore yoke/fork, wide-angle yoke/fork, double yoke/fork.

5. Overload protection device including the clutch and torque limitter.
    (shear bolt SB, free wheel/overrunning RA/RAS, ratchet SA/SAS, friction FF/FFS) 

6. Others requirements:such as with/no plastic guard, painting color, package type,etc.

Triangle tube type
Serie Cross kit Operating torque
540rpm    1000rpm
Kw Pk Nm Kw Pk Nm
T1 1.01    22*54 12 16 210 18 25 172
T2 2.01    23.8*61.3 15 21 270 23 31 220
T3 3.01    27*70 22 30 390 35 47 330
T4 4.01    27*74.6 26 35 460 40 55 380
T5 5.01    30.2*80 35 47 620 54 74 520
T6 6.01    30.2*92 47 64 830 74 100 710
T7 7.01    30.2*106.5 55 75 970 87 118 830
T7N 7N.01 35*94 55 75 970 87 118 830
T8 8.01    35*106.5 70 95 110 110 150 1050
T38 38.01  38*105.6 78 105 123 123 166 1175
T9 9.01    41*108 88 120 140 140 190 1340
T10 10.01  41*118 106 145 179 170 230 1650

 

Lemon tube type
Serie Cross kit Operating torque
540rpm    1000rpm
Kw Pk Nm Kw Pk Nm
L1 1.01    22*54 12 16 210 18 25 172
L2 2.01    23.8*61.3 15 21 270 23 31 220
L3 3.01    27*70 22 30 390 35 47 330
L4 4.01    27*74.6 26 35 460 40 55 380
L5 5.01    30.2*80 35 47 620 54 74 520
L6 6.01    30.2*92 47 64 830 74 100 710
L32 32.01  32*76 39 53 695 61 83 580

 

Star tube type
Serie Cross kit Operating torque
540rpm    1000rpm
Kw Pk Nm Kw Pk Nm
S6 6.01    30.2*92 47 64 830 74 100 710
S7 7.01    30.2*106.5 55 75 970 87 118 830
S8 8.01    35*106.5 70 95 1240 110 150 1050
S38 38.0    38*105.6 78 105 1380 123 166 1175
S32 32.01  32*76 39 53 695 61 83 580
S36 2500   36*89 66 90 1175 102 139 975
S9 9.01    41*108 88 120 1560 140 190 1340
S10 10.01  41*118 106 145 1905 170 230 1650
S42 2600   42*104.5 79 107 1400 122 166 1175
S48 48.01  48*127 133 180 2390 205 277 1958
S50 50.01  50*118 119 162 2095 182 248 1740

 

Spline stub type
Serie Cross kit Operating torque
540rpm    1000rpm
Kw Pk Nm Kw Pk Nm
ST2 2.01    23.8*61.3 15 21 270 23 31 220
ST4 4.01    27*74.6 26 35 460 40 55 380
ST5 5.01    30.2*80 35 47 620 54 74 520
ST6 6.01    30.2*92 47 64 830 74 100 710
ST7 7.01    30.2*106.5 55 75 970 87 118 830
ST8 8.01    35*106.5 70 95 1240 110 150 1050
ST38 38.10  38*105.6 78 105 1380 123 166 1175
ST42 2600   42*104.5 79 107 1400 122 166 1175
ST50 50.01  50*118 119 162 2095 182 248 1740

*** APPLICATION OF PTO DRIEVE SHAFT:

We have a variety of inspection equipments with high precision, and QA engineers who can strictly control the quality during production and before shipment.
We sincerely welcome guests from abroad for business negotiation and cooperation,in CZPT new levels of expertise and professionalism, and developing a brilliant future.

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Farve: Red, Yellow, Black, Orange
Certificering: CE, ISO
Type: Pto Shaft
Materiale: Forged Carbon Steel C45/AISI1045, Alloy Steel
Machinery Application: Baler, Mower, Harvester, Cotton Picker, Tiller
Tube/Pipe Shape: Triangular/Lemon/Star Steel Tube, Spline Tub Shaft
Prøver:
US$ 15/Piece
1 stk. (min. ordre)

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PTO-aksel

How do drive shafts ensure efficient power transfer while maintaining balance?

Drive shafts employ various mechanisms to ensure efficient power transfer while maintaining balance. Efficient power transfer refers to the ability of the drive shaft to transmit rotational power from the source (such as an engine) to the driven components (such as wheels or machinery) with minimal energy loss. Balancing, on the other hand, involves minimizing vibrations and eliminating any uneven distribution of mass that can cause disturbances during operation. Here’s an explanation of how drive shafts achieve both efficient power transfer and balance:

1. Material Selection:

The material selection for drive shafts is crucial for maintaining balance and ensuring efficient power transfer. Drive shafts are commonly made from materials such as steel or aluminum alloys, chosen for their strength, stiffness, and durability. These materials have excellent dimensional stability and can withstand the torque loads encountered during operation. By using high-quality materials, drive shafts can minimize deformation, flexing, and imbalances that could compromise power transmission and generate vibrations.

2. Designovervejelser:

The design of the drive shaft plays a significant role in both power transfer efficiency and balance. Drive shafts are engineered to have appropriate dimensions, including diameter and wall thickness, to handle the anticipated torque loads without excessive deflection or vibration. The design also considers factors such as the length of the drive shaft, the number and type of joints (such as universal joints or constant velocity joints), and the use of balancing weights. By carefully designing the drive shaft, manufacturers can achieve optimal power transfer efficiency while minimizing the potential for imbalance-induced vibrations.

3. Balancing Techniques:

Balance is crucial for drive shafts as any imbalance can cause vibrations, noise, and accelerated wear. To maintain balance, drive shafts undergo various balancing techniques during the manufacturing process. Static and dynamic balancing methods are employed to ensure that the mass distribution along the drive shaft is uniform. Static balancing involves adding counterweights at specific locations to offset any weight imbalances. Dynamic balancing is performed by spinning the drive shaft at high speeds and measuring any vibrations. If imbalances are detected, additional adjustments are made to achieve a balanced state. These balancing techniques help minimize vibrations and ensure smooth operation of the drive shaft.

4. Universal Joints and Constant Velocity Joints:

Drive shafts often incorporate universal joints (U-joints) or constant velocity (CV) joints to accommodate misalignment and maintain balance during operation. U-joints are flexible joints that allow for angular movement between shafts. They are typically used in applications where the drive shaft operates at varying angles. CV joints, on the other hand, are designed to maintain a constant velocity of rotation and are commonly used in front-wheel-drive vehicles. By incorporating these joints, drive shafts can compensate for misalignment, reduce stress on the shaft, and minimize vibrations that can negatively impact power transfer efficiency and balance.

5. Maintenance and Inspection:

Regular maintenance and inspection of drive shafts are essential for ensuring efficient power transfer and balance. Periodic checks for wear, damage, or misalignment can help identify any issues that may affect the drive shaft’s performance. Lubrication of the joints and proper tightening of fasteners are also critical for maintaining optimal operation. By adhering to recommended maintenance procedures, any imbalances or inefficiencies can be addressed promptly, ensuring continued efficient power transfer and balance.

In summary, drive shafts ensure efficient power transfer while maintaining balance through careful material selection, thoughtful design considerations, balancing techniques, and the incorporation of flexible joints. By optimizing these factors, drive shafts can transmit rotational power smoothly and reliably, minimizing energy losses and vibrations that can impact performance and longevity.

PTO-aksel

How do drive shafts enhance the performance of automobiles and trucks?

Drive shafts play a significant role in enhancing the performance of automobiles and trucks. They contribute to various aspects of vehicle performance, including power delivery, traction, handling, and overall efficiency. Here’s a detailed explanation of how drive shafts enhance the performance of automobiles and trucks:

1. Power Delivery:

Drive shafts are responsible for transferring power from the engine to the wheels, enabling the vehicle to move forward. By efficiently transmitting power without significant losses, drive shafts ensure that the engine’s power is effectively utilized, resulting in improved acceleration and overall performance. Well-designed drive shafts with minimal power loss contribute to the vehicle’s ability to deliver power to the wheels efficiently.

2. Torque Transfer:

Drive shafts facilitate the transfer of torque from the engine to the wheels. Torque is the rotational force that drives the vehicle forward. High-quality drive shafts with proper torque conversion capabilities ensure that the torque generated by the engine is effectively transmitted to the wheels. This enhances the vehicle’s ability to accelerate quickly, tow heavy loads, and climb steep gradients, thereby improving overall performance.

3. Traction and Stability:

Drive shafts contribute to the traction and stability of automobiles and trucks. They transmit power to the wheels, allowing them to exert force on the road surface. This enables the vehicle to maintain traction, especially during acceleration or when driving on slippery or uneven terrain. The efficient power delivery through the drive shafts enhances the vehicle’s stability by ensuring balanced power distribution to all wheels, improving control and handling.

4. Handling and Maneuverability:

Drive shafts have an impact on the handling and maneuverability of vehicles. They help establish a direct connection between the engine and the wheels, allowing for precise control and responsive handling. Well-designed drive shafts with minimal play or backlash contribute to a more direct and immediate response to driver inputs, enhancing the vehicle’s agility and maneuverability.

5. Weight Reduction:

Drive shafts can contribute to weight reduction in automobiles and trucks. Lightweight drive shafts made from materials such as aluminum or carbon fiber-reinforced composites reduce the overall weight of the vehicle. The reduced weight improves the power-to-weight ratio, resulting in better acceleration, handling, and fuel efficiency. Additionally, lightweight drive shafts reduce the rotational mass, allowing the engine to rev up more quickly, further enhancing performance.

6. Mechanical Efficiency:

Efficient drive shafts minimize energy losses during power transmission. By incorporating features such as high-quality bearings, low-friction seals, and optimized lubrication, drive shafts reduce friction and minimize power losses due to internal resistance. This enhances the mechanical efficiency of the drivetrain system, allowing more power to reach the wheels and improving overall vehicle performance.

7. Performance Upgrades:

Drive shaft upgrades can be a popular performance enhancement for enthusiasts. Upgraded drive shafts, such as those made from stronger materials or with enhanced torque capacity, can handle higher power outputs from modified engines. These upgrades allow for increased performance, such as improved acceleration, higher top speeds, and better overall driving dynamics.

8. Compatibility with Performance Modifications:

Performance modifications, such as engine upgrades, increased power output, or changes to the drivetrain system, often require compatible drive shafts. Drive shafts designed to handle higher torque loads or adapt to modified drivetrain configurations ensure optimal performance and reliability. They enable the vehicle to effectively harness the increased power and torque, resulting in improved performance and responsiveness.

9. Durability and Reliability:

Robust and well-maintained drive shafts contribute to the durability and reliability of automobiles and trucks. They are designed to withstand the stresses and loads associated with power transmission. High-quality materials, appropriate balancing, and regular maintenance help ensure that drive shafts operate smoothly, minimizing the risk of failures or performance issues. Reliable drive shafts enhance the overall performance by providing consistent power delivery and minimizing downtime.

10. Compatibility with Advanced Technologies:

Drive shafts are evolving in tandem with advancements in vehicle technologies. They are increasingly being integrated with advanced systems such as hybrid powertrains, electric motors, and regenerative braking. Drive shafts designed to work seamlessly with these technologies maximize their efficiency and performance benefits, contributing to improved overall vehicle performance.

In summary, drive shafts enhance the performance of automobiles and trucks by optimizing power delivery, facilitating torque transfer, improving traction and stability, enhancing handling and maneuverability, reducing weight, increasing mechanical efficiency,and enabling compatibility with performance upgrades and advanced technologies. They play a crucial role in ensuring efficient power transmission, responsive acceleration, precise handling, and overall improved performance of vehicles.PTO-aksel

Hvordan bidrager drivaksler til overførsel af rotationskraft i forskellige applikationer?

Drivaksler spiller en afgørende rolle i at overføre rotationskraft fra motoren eller kraftkilden til hjulene eller de drevne komponenter i forskellige applikationer. Uanset om det er i køretøjer eller maskiner, muliggør drivaksler effektiv kraftoverførsel og letter funktionen af ​​forskellige systemer. Her er en detaljeret forklaring af, hvordan drivaksler bidrager til at overføre rotationskraft:

1. Køretøjsanvendelser:

I køretøjer er drivaksler ansvarlige for at overføre rotationskraft fra motoren til hjulene, så køretøjet kan bevæge sig. Drivakslen forbinder gearkassens eller transmissionens udgangsaksel med differentialet, som yderligere fordeler kraften til hjulene. Når motoren genererer drejningsmoment, overføres det gennem drivakslen til hjulene, hvilket driver køretøjet fremad. Denne kraftoverførsel gør det muligt for køretøjet at accelerere, opretholde hastigheden og overvinde modstand, såsom friktion og stigninger.

2. Maskinapplikationer:

I maskiner bruges drivaksler til at overføre rotationskraft fra motoren til forskellige drevne komponenter. For eksempel kan drivaksler i industrimaskiner bruges til at overføre kraft til pumper, generatorer, transportbånd eller andre mekaniske systemer. I landbrugsmaskiner bruges drivaksler almindeligvis til at forbinde strømkilden til udstyr såsom høstmaskiner, ballepressere eller vandingssystemer. Drivaksler gør det muligt for disse maskiner at udføre deres tilsigtede funktioner ved at levere rotationskraft til de nødvendige komponenter.

3. Kraftoverføring:

Drivaksler er designet til at overføre rotationskraft effektivt og pålideligt. De er i stand til at overføre betydelige mængder drejningsmoment fra motoren til hjulene eller de drevne komponenter. Det drejningsmoment, der genereres af motoren, overføres gennem drivakslen uden betydelige effekttab. Ved at opretholde en stiv forbindelse mellem motoren og de drevne komponenter sikrer drivaksler, at den kraft, der produceres af motoren, effektivt udnyttes til at udføre nyttigt arbejde.

4. Fleksibel kobling:

En af drivakslernes nøglefunktioner er at skabe en fleksibel kobling mellem motor/transmission og hjulene eller de drevne komponenter. Denne fleksibilitet gør det muligt for drivakslen at imødekomme vinkelbevægelser og kompensere for skævheder mellem motoren og det drevne system. I køretøjer justerer drivakslen sin længde og vinkel for at opretholde en konstant kraftoverførsel, når affjedringssystemet bevæger sig, eller hjulene støder på ujævnt terræn. Denne fleksibilitet hjælper med at forhindre overdreven belastning på drivlinjekomponenterne og sikrer en jævn kraftoverførsel.

5. Drejningsmoment og hastighedstransmission:

Drivaksler er ansvarlige for at overføre både drejningsmoment og rotationshastighed. Drejningsmoment er den rotationskraft, der genereres af motoren eller kraftkilden, mens rotationshastighed er antallet af omdrejninger pr. minut (RPM). Drivaksler skal være i stand til at håndtere applikationens drejningsmomentkrav uden overdreven vridning eller bøjning. Derudover skal de opretholde den ønskede rotationshastighed for at sikre, at de drevne komponenter fungerer korrekt. Korrekt design, materialevalg og afbalancering af drivakslerne bidrager til effektiv drejningsmoment- og hastighedsoverførsel.

6. Længde og balance:

Drivakslernes længde og balance er afgørende faktorer for deres ydeevne. Drivakslens længde bestemmes af afstanden mellem motoren eller kraftkilden og de drevne komponenter. Den bør være passende dimensioneret for at undgå for store vibrationer eller bøjning. Drivaksler er omhyggeligt afbalanceret for at minimere vibrationer og rotationsubalancer, som kan påvirke drivlinjesystemets samlede ydeevne, komfort og levetid.

7. Sikkerhed og vedligeholdelse:

Drivaksler kræver passende sikkerhedsforanstaltninger og regelmæssig vedligeholdelse. I køretøjer er drivaksler ofte indkapslet i et beskyttende rør eller hus for at forhindre kontakt med bevægelige dele, hvilket reducerer risikoen for skader. Sikkerhedsskjolde eller -afskærmninger kan også installeres omkring udsatte drivaksler i maskiner for at beskytte operatører mod potentielle farer. Regelmæssig vedligeholdelse omfatter inspektion af drivakslen for slid, skader eller forkert justering og korrekt smøring af universalleddene. Disse foranstaltninger hjælper med at forhindre fejl, sikre optimal ydeevne og forlænge drivakslens levetid.

Kort sagt spiller drivaksler en afgørende rolle i overførslen af ​​rotationskraft i forskellige anvendelser. Uanset om det er i køretøjer eller maskiner, muliggør drivaksler effektiv kraftoverførsel fra motoren eller kraftkilden til hjulene eller de drevne komponenter. De giver en fleksibel kobling, håndterer moment- og hastighedsoverførsel, imødekommer vinkelbevægelser og bidrager til systemets sikkerhed og vedligeholdelse. Ved effektivt at overføre rotationskraft letter drivaksler funktionen og ydeevnen af ​​køretøjer og maskiner i adskillige brancher.

China factory OEM ODM CE Certificated Pto Driveshaft for Agricultural Farm Machinery  China factory OEM ODM CE Certificated Pto Driveshaft for Agricultural Farm Machinery
editor by CX 2024-05-02