Produktbeskrivning
Company Profile
Established in 2009, HangZhou CZPT Trading Co., Ltd is a professional supplier for conveyor parts, located in ZHangZhoug province. We focus on supplying a variety of conveyor parts, including conveyor tubes, conveyor frames, conveyor rollers, bearing housings and so forth.
With our professional technology R&D team, and experienced quality control department, our products have been awarded the ISO9001 Quality Management System Standard and our main markets are in America, Europe, Asia and Australia.
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Factory advantage |
Professional and experienced technology team | ||
| All products inspected before shipping with reasonable prices | |||
| Low MOQ and free sample | |||
| We are audited by SGS and passed the ISO9001:2008 certification | |||
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Industries service |
Industrial machine | ||
| Electronic and communication | |||
| Oil, gas,mining and petroleum | |||
| Construction industry | |||
| Equipment | CNC Machining Center, CNC Lathes, CNC Milling Machines, Punching and drilling machines, Stamping machines | ||
| Precision Processing | CNC machining, CNC turning and milling, laser cutting, drilling, grinding, bending, stamping, welding | ||
Roller size
| No. | Standard Diameter | Length Range (mm) |
Bearing Type Min-Max |
Shell Thickness of Roller | |
| mm | Inch | ||||
| 1 | 63.5 | 2 1/2 | 150-3500 | 203 204 | 3.0mm-4.0mm |
| 2 | 76 | 3 | 150-3500 | 204 | 3.0mm-4.5mm |
| 3 | 89 | 3 1/3 | 150-3500 | 204 205 | 3.0mm-4.5mm |
| 4 | 102 | 4 | 150-3500 | 3.2mm-4.5mm | |
| 5 | 108 | 4 1/4 | 150-3500 | 306 | 3.5mm-4.5mm |
| 6 | 114 | 4 1/2 | 150-3500 | 306 | 3.5mm-4.5mm |
| 7 | 127 | 5 | 150-3500 | 306 | 3.5mm-5.0mm |
| 8 | 133 | 5 1/4 | 150-3500 | 305 306 | 3.5mm-5.0mm |
| 9 | 140 | 5 1/2 | 150-3500 | 306 307 | 3.5mm-5.0mm |
| 10 | 152 | 6 | 150-3500 | 4.0mm-5.0mm | |
| 11 | 159 | 6 1/4 | 150-3500 | 4.0mm-5.0mm | |
| 12 | 165 | 6 1/2 | 150-3500 | 307 308 | 4.5mm-6.0mm |
| 13 | 177.8 | 7 | 150-3500 | 309 | 4.5mm-6.0mm |
| 14 | 190.7 | 7 1/2 | 150-3500 | 309 310 | 4.5mm-7.0mm |
| 15 | 194 | 7 5/8 | 150-3500 | 309 310 | 4.5mm-8.0mm |
| 16 | 219 | 8 5/8 | 150-3500 | 4.5mm-8.0mm | |
Advantage:
1.The life time: More than 50000 hours
2. TIR (Total Indicator Runout)
0.5mm (0.0197″) for Roll Length 0-600mm
0.8mm (0.571″) for Roll Length 601-1350mm
1.0mm (0. 0571 “) for Roll Length over 1350mm
3.Shaft Float≤0.8mm
4..Samples for testing are available.
5. Lower resistance
6. Small maintain work
7. High load capability
8. Dust proof & water proof
CONVRYOR ROLLER SHAFTS
| We can produce roller shafts and We do customeized |
| Product Size:φ10mm – 70mm |
| Max Length: 3000mm |
| Surface Tolerance: g6 |
| Surface Roughness:0.8mm |
| Specifikation | ASTM A108 AS1443 |
| Steel Grade | Q235B,C1571,C1045(we can also do other steel grade per your requirments) |
| Size | Φ18mm-φ62mm |
| Diameter Tolerance | ISO286-2,H7/H8 |
| Straightness | 2000:1 |
| O.D | 63.5-219.1mm |
| W .T | 0.45-20mm |
| Length | 6–12m |
| Standard | SANS 657/3,ASTM 513,AS 1163,BS6323,EN10305 |
| Material | Q235B, S355,S230,C350,E235 etc. |
| Technique | Welded,Seamless |
| Surface | oiled ,galvanized or painted with all kinds of colors according to client’s request. |
| Ends | 1.Plain ends, |
| 2.Threading at both side with plastice caps | |
| 3.Threading at both side with socket/coupling. | |
| 4.Beveled ends, and so on | |
| Förpackning | 1.Water-proof plastic cloth, |
| 2.Woven bags, | |
| 3.PVC package, | |
| 4.Steel strips in bundles | |
| 5.As your requirment | |
| Usage | 1.For low pressure liquid delivery such as water,gas and oil. |
| 2.For construction | |
| 3.Mechanical equipment | |
| 4.For Furniture | |
| Payment&Trade Terms | 1.Payment : T/T,L/C, D/P, Western union |
| 2.Trade Terms:FOB/CFR/CIF | |
| 3.Minimum quantity of order : 10 MT (10,000KGS) | |
| Delivery Time | 1.Usually,within10-20days after receiving your down payment. |
| 2.According to the order quantity |
Conveyor Roller Tube
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Conveyor Roller Tube |
Specifikation | SANS657/3,ASTM513,AS1163,BS6323,EN10305 or equivalent international standard. |
| Steel grade | S355/S230,C350,E235,Q235B | |
| Sizes | 63.5mm-219.1mm ect | |
| Ovality tolerance of body | ≤0.4mm(60.3mm-152.4mm) | |
| ≤0.5mm(159MM-168.3mm) | ||
| ≤0.6mm(178mm-219mm) | ||
| Straightness | 2000:1 |
if you are interesting in our products or want any further information, please feel free to contact us!
I am looking CZPT to your reply.
Best regards
CZPT
HangZhou CZPT TRADING CO., LTD
1801 CZPT Building, No.268 Xierhuan Road, HangZhou City, ZHangZhoug Province, China
/* 22 januari 2571 19:08:37 */!function(){function s(e,r){var a,o={};try{e&&e.split(“,”).forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/)))
| Steel Grade: | C1018 C1020 |
|---|---|
| Standard: | ASTM A108 |
| Size: | Od18mm—62mm |
| Surface Tolerance: | G6 |
| Max Length: | Max 3000mm |
| Surface Roughness: | 0.8 |
| Prover: |
US$ 0/Piece
1 styck (minsta beställning) | |
|---|
| Anpassning: |
Tillgänglig
| Anpassad förfrågan |
|---|

Are there any limitations or disadvantages associated with drive shafts?
While drive shafts are widely used and offer several advantages, they also have certain limitations and disadvantages that should be considered. Here’s a detailed explanation of the limitations and disadvantages associated with drive shafts:
1. Length and Misalignment Constraints:
Drive shafts have a maximum practical length due to factors such as material strength, weight considerations, and the need to maintain rigidity and minimize vibrations. Longer drive shafts can be prone to increased bending and torsional deflection, leading to reduced efficiency and potential driveline vibrations. Additionally, drive shafts require proper alignment between the driving and driven components. Misalignment can cause increased wear, vibrations, and premature failure of the drive shaft or its associated components.
2. Limited Operating Angles:
Drive shafts, especially those using U-joints, have limitations on operating angles. U-joints are typically designed to operate within specific angular ranges, and operating beyond these limits can result in reduced efficiency, increased vibrations, and accelerated wear. In applications requiring large operating angles, constant velocity (CV) joints are often used to maintain a constant speed and accommodate greater angles. However, CV joints may introduce higher complexity and cost compared to U-joints.
3. Maintenance Requirements:
Drive shafts require regular maintenance to ensure optimal performance and reliability. This includes periodic inspection, lubrication of joints, and balancing if necessary. Failure to perform routine maintenance can lead to increased wear, vibrations, and potential driveline issues. Maintenance requirements should be considered in terms of time and resources when using drive shafts in various applications.
4. Noise and Vibration:
Drive shafts can generate noise and vibrations, especially at high speeds or when operating at certain resonant frequencies. Imbalances, misalignment, worn joints, or other factors can contribute to increased noise and vibrations. These vibrations may affect the comfort of vehicle occupants, contribute to component fatigue, and require additional measures such as dampers or vibration isolation systems to mitigate their effects.
5. Weight and Space Constraints:
Drive shafts add weight to the overall system, which can be a consideration in weight-sensitive applications, such as automotive or aerospace industries. Additionally, drive shafts require physical space for installation. In compact or tightly packaged equipment or vehicles, accommodating the necessary drive shaft length and clearances can be challenging, requiring careful design and integration considerations.
6. Cost Considerations:
Drive shafts, depending on their design, materials, and manufacturing processes, can involve significant costs. Customized or specialized drive shafts tailored to specific equipment requirements may incur higher expenses. Additionally, incorporating advanced joint configurations, such as CV joints, can add complexity and cost to the drive shaft system.
7. Inherent Power Loss:
Drive shafts transmit power from the driving source to the driven components, but they also introduce some inherent power loss due to friction, bending, and other factors. This power loss can reduce overall system efficiency, particularly in long drive shafts or applications with high torque requirements. It is important to consider power loss when determining the appropriate drive shaft design and specifications.
8. Limited Torque Capacity:
While drive shafts can handle a wide range of torque loads, there are limits to their torque capacity. Exceeding the maximum torque capacity of a drive shaft can lead to premature failure, resulting in downtime and potential damage to other driveline components. It is crucial to select a drive shaft with sufficient torque capacity for the intended application.
Despite these limitations and disadvantages, drive shafts remain a widely used and effective means of power transmission in various industries. Manufacturers continuously work to address these limitations through advancements in materials, design techniques, joint configurations, and balancing processes. By carefully considering the specific application requirements and potential drawbacks, engineers and designers can mitigate the limitations and maximize the benefits of drive shafts in their respective systems.

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 transmitting power from the engine to the wheels, enabling the vehicle to move forward. By efficiently transferring 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 popular performance enhancements 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, enabling compatibility with performance upgrades and advanced technologies, and ensuring durability and reliability. They play a crucial role in ensuring efficient power transmission, responsive acceleration, precise handling, and overall improved performance of vehicles.

Finns det variationer i drivaxelkonstruktioner för olika typer av maskiner?
Ja, det finns variationer i drivaxelkonstruktioner för att tillgodose de specifika kraven hos olika typer av maskiner. Utformningen av en drivaxel påverkas av faktorer som tillämpning, kraftöverföringsbehov, utrymmesbegränsningar, driftsförhållanden och typen av drivna komponenter. Här är en förklaring av hur drivaxelkonstruktioner kan variera för olika typer av maskiner:
1. Tillämpningar inom fordonsindustrin:
Inom bilindustrin kan drivaxlars konstruktioner variera beroende på fordonets konfiguration. Bakhjulsdrivna fordon använder vanligtvis en drivaxel i ett eller två delar, som förbinder växellådan eller fördelningslådan med den bakre differentialen. Framhjulsdrivna fordon använder ofta en annan design, där de använder en drivaxel som kombineras med konstanthastighetslederna (CV) för att överföra kraft till framhjulen. Fyrhjulsdrivna fordon kan ha flera drivaxlar för att fördela kraften till alla hjul. Längd, diameter, material och kopplingstyper kan variera beroende på fordonets layout och vridmomentkrav.
2. Industrimaskiner:
Drivaxelkonstruktioner för industrimaskiner beror på den specifika tillämpningen och kraven på kraftöverföring. I tillverkningsmaskiner, såsom transportörer, pressar och roterande utrustning, är drivaxlar konstruerade för att överföra kraft effektivt inom maskinen. De kan ha flexibla leder eller använda en splines- eller kilförbindning för att hantera feljustering eller möjliggöra enkel demontering. Dimensionerna, materialen och förstärkningen av drivaxeln väljs baserat på maskinens vridmoment, hastighet och driftsförhållanden.
3. Jordbruk och jordbruk:
Jordbruksmaskiner, såsom traktorer, skördetröskor och skördetröskor, kräver ofta kardanaxlar som kan hantera höga vridmomentbelastningar och varierande arbetsvinklar. Dessa kardanaxlar är konstruerade för att överföra kraft från motorn till redskap och redskap, såsom gräsklippare, balpressar, jordfräsar och skördetröskor. De kan ha teleskopsektioner för att anpassa sig till justerbara längder, flexibla leder för att kompensera för feljustering under drift och skyddande avskärmning för att förhindra intrassling med grödor eller skräp.
4. Bygg och tung utrustning:
Bygg- och tung utrustning, inklusive grävmaskiner, lastare, bulldozrar och kranar, kräver robusta kardanaxlar som kan överföra kraft under krävande förhållanden. Dessa kardanaxlar har ofta större diametrar och tjockare väggar för att hantera höga vridmomentbelastningar. De kan ha universalkopplingar eller CV-kopplingar för att anpassa sig till arbetsvinklar och absorbera stötar och vibrationer. Kardanaxlar i denna kategori kan också ha ytterligare förstärkningar för att motstå de hårda miljöer och krävande tillämpningar som är förknippade med bygg och grävning.
5. Marina och sjöfartsrelaterade tillämpningar:
Drivaxlar för marina tillämpningar är specifikt konstruerade för att motstå havsvattens korrosiva effekter och de höga vridmomentbelastningar som förekommer i marina framdrivningssystem. Marina drivaxlar är vanligtvis tillverkade av rostfritt stål eller andra korrosionsbeständiga material. De kan innehålla flexibla kopplingar eller dämpningsanordningar för att minska vibrationer och mildra effekterna av feljustering. Konstruktionen av marina drivaxlar tar också hänsyn till faktorer som axellängd, diameter och stödlager för att säkerställa tillförlitlig kraftöverföring i marina fartyg.
6. Gruv- och utvinningsutrustning:
Inom gruvindustrin används drivaxlar i tunga maskiner och utrustning såsom gruvlastbilar, grävmaskiner och borriggar. Dessa drivaxlar måste klara extremt höga vridmomentbelastningar och tuffa driftsförhållanden. Drivaxelkonstruktioner för gruvapplikationer har ofta större diametrar, tjockare väggar och specialmaterial såsom legerat stål eller kompositmaterial. De kan innehålla universalkopplingar eller CV-kopplingar för att hantera arbetsvinklar, och de är konstruerade för att vara motståndskraftiga mot nötning och slitage.
Dessa exempel belyser variationerna i drivaxelkonstruktioner för olika typer av maskiner. Konstruktionsövervägandena tar hänsyn till faktorer som effektbehov, driftsförhållanden, utrymmesbegränsningar, uppriktningsbehov och maskineriets eller industrins specifika krav. Genom att skräddarsy drivaxelkonstruktionen till de unika kraven för varje applikation kan optimal kraftöverföringseffektivitet och tillförlitlighet uppnås.


editor by CX 2024-04-15