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China Hot selling Customized Forging Steel Large Drive Support Roller Shaft

Product Description

Product Description

structural carbon steel :45# with details in under sheet :

Standard No. Alloy No. Chemical compositions(%)
C Cr Mn Ni P Si
GB/T699-1999 45# 0.42~0.50 ≤0.25 0.50~0.80 ≤0.25 ≤0.035 ≤0.035 0.17~0.37
Mechanical
Property
Tensile Strength(Mpa) Yeild Strength(Mpa) Elongation(%) Contraction of area Z(%)
≥600 ≥355 ≥16 ≥40

The correlation between properties and parameters-S45C (JIS)-SAE1045(Aisi)-SM45 of No. 45 steel(45 steel) was studied:
No. 45 steel is a carbon structural steel with 0.45% carboncontent. It is characterized by low price, good cutting performance, high hardness after quenching, good strength, toughness and wear resistance after quenching and temperingtreatment, is widely used in manufacturing structural partsand low-grade plastic mold. “45 steel” is a popular name, thesymbol is generally recorded as”45 #”. In fact GB standardsteel number is”45″, it is not a sequential number, read as”45steel” is not very accurate. Ingredient code 45 steels of similar designation are S45C (JIS) and 1045(Aisi) . In addition, ourcountry metallurgical technology standard has SM45 brandnumber to express the plastic mold use specially. Comparedwith 45 steel, SM45 has lower phosphorus and sulfur contentand better steel purity.

Standards YB/T 094 AISI JIS G4051
Alloy No. SM45 1045 S45C
C 0.42-0.48 0.43-0.50 0.42-0.48
Si 0.17-0.37   0.15-0.35
Mn 0.50-0.80 0.60-0.90 0.60-0.90
P <0.030 <0.030 <0.030
S <0.035 <0.035 <0.035

Recommended process specification for heat treatment andhardness: quenching temperature 820 – 860″ C, water-oroil-cooled, hardness 250 HRC. Recommended tempering pro-cess specifcation: tempering temperature is 500 – 560″ C, aircooling, hardness is 25 – 33HRC. Tempering in this temperature range is the tempering treatment, Quenching and tempering make the strength, plasticity and toughness of 45 steelget a good balance, the comprehensive performance is good,can adapt to the alternating load environment. After quench-ing and tempering, the surface hardness of 45 steel is low anddoes not wear well. So commonly used quenching and tempering + surface quenching to improve the surface hardnessof parts.

Tempering temperature After quenching Unit centigrade
200 300 400 500 550 600
Hardness
HRC
57 55 50 41 33 26 22

 

Mechanical properties (GB/T 699-1999)
Sample size mm 25
Heat treatments recommended Normalizing ºC 850
Quenching ºC 840
Tempering ºC 600
Mechanical properties Tensile strongth Mpa ≥600
Strong yield Mpa ≥355
Elongation Mpa ≥16
Section shrinkago Mpa ≥40
Impact Mpa ≥39
Hardness of delivery   HB ≤229
  HB ≤197

 

Main Products

 

 

 

Company Profile

ZheJiang Xihu (West Lake) Dis. Equipment Manufacturing Co, Ltd., located in HangZhou City, ZheJiang Province, is a steel forging manufacturing enterprise specializing in the production of forged round steel, square steel, shaft forgings, ring forgings, cylinder forgings, and forging processing, heat treatment, mechanical processing, and finished parts processing. 0.75 tons to 30 tons of ingot steel can also be supplied. The company has a strong special steel supply channel as support, especially in the special steel forgings more resource advantages, products include “chromium-nick- el-molybdenum steel, bonded steel, carbon steel, stainless steel, spring steel, bearing steel, rolls and other series.”Our company can also ensure flaw detection at all levels according to customer requirements and provide quality certification documents.

Forging Equipment
The main equipment is 2000 tons of hydraulic press, ring rolling machine, 3 tons of forging hammer, 2 tons of forging hammer, 1 ton forging hammer, 750KG forging hammer, 30T heat treatment and temper- ing furnace, lathe, sawing machine and other more than 30 sets of equipment, which can produce

forgings weighing 20Kg-20000Kg. Products are not only widely used in domestic large locomotives, coal machines, petroleum machinery, shipbuilding and other industries, but also exported to Europe, South- east Asia, and other countries and regions, forging products using advanced production technology

“high-power electric CZPT (EF)furnace external refining (LF) vacuum degassing (VD) fast forging annealing (or normalizing) turning, Ensure chemical composition and mechanical property require-ments.

 

FAQ

 

  • What is the difference between forging and casting?

    Forging: It is the process of transforming a CZPT from 1 shape to another. Casting: It is the process of transforming a shapeless liquid metal into a CZPT with a shape. The so-called casting is the process of casting molten metal into a model to obtain a casting. The casting profession focuses on the metal melting process and the control of processes during the casting process. Forging is a plastic forming process in the CZPT state, which can be divided into hot processing and cold processing. Forgings include extrusion, drawing, roughening, punching, and so on. Casting is a CZPT liquid CZPT process, while forging is a CZPT to CZPT process where a CZPT can change its shape into another shape at high temperatures. There are still differences in the shape process and process of the two.

  • How to choose high-quality forgings?

    In the quality inspection of forgings, there are mainly external observation methods and internal inspection methods. The appearance method, as the name suggests, is to observe the appearance of the product, such as the shape, geometric dimensions, surface condition, etc. of the forging, in order to understand whether it meets the standards and whether there are external defects. Specifically, it is to check whether the external dimensions of the forging meet the specifications and whether there are defects on the surface, such as cracks, wrinkles, bubbles, indentations, pits, impurities, scratches, etc. on the surface of the forging. Internal testing mainly involves analyzing the chemical composition, macroscopic and microscopic structures, and mechanical properties of forgings. This inspection process requires the use of specialized instruments for high magnification inspection, with the aim of checking for any phenomena such as fractures and shrinkage within the forging, as well as defects such as dendrites and white spots, disordered flow lines, and throughflow. It also includes the tensile strength, ductility, hardness, plasticity, and heat resistance temperature of the forging.

  • What are the characteristics of the forging process for blank forgings?

    The forging process of circular forgings mainly consists of the following processes: pier roughening, elongation, punching, and expanding. The difference between free forging and ring rolling processes is mainly in the process of expanding holes. In the production of ring forgings, free forging is usually used to expand the hole with a horse screw, while ring rolling is mainly used to expand the hole with rolling.

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Processing Object: Metal
Molding Style: Forging
Molding Technics: Hot Forging
Application: Machinery Parts
Material: Steel
Heat Treatment: Tempering
Samples:
US$ 1100/Ton
1 Ton(Min.Order)

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Request Sample

Customization:
Available

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Customized Request

pto shaft

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.

pto shaft

How do drive shafts contribute to the efficiency of vehicle propulsion and power transmission?

Drive shafts play a crucial role in the efficiency of vehicle propulsion and power transmission systems. They are responsible for transferring power from the engine or power source to the wheels or driven components. Here’s a detailed explanation of how drive shafts contribute to the efficiency of vehicle propulsion and power transmission:

1. Power Transfer:

Drive shafts transmit power from the engine or power source to the wheels or driven components. By efficiently transferring rotational energy, drive shafts enable the vehicle to move forward or drive the machinery. The design and construction of drive shafts ensure minimal power loss during the transfer process, maximizing the efficiency of power transmission.

2. Torque Conversion:

Drive shafts can convert torque from the engine or power source to the wheels or driven components. Torque conversion is necessary to match the power characteristics of the engine with the requirements of the vehicle or machinery. Drive shafts with appropriate torque conversion capabilities ensure that the power delivered to the wheels is optimized for efficient propulsion and performance.

3. Constant Velocity (CV) Joints:

Many drive shafts incorporate Constant Velocity (CV) joints, which help maintain a constant speed and efficient power transmission, even when the driving and driven components are at different angles. CV joints allow for smooth power transfer and minimize vibration or power losses that may occur due to changing operating angles. By maintaining constant velocity, drive shafts contribute to efficient power transmission and improved overall vehicle performance.

4. Lightweight Construction:

Efficient drive shafts are often designed with lightweight materials, such as aluminum or composite materials. Lightweight construction reduces the rotational mass of the drive shaft, which results in lower inertia and improved efficiency. Reduced rotational mass enables the engine to accelerate and decelerate more quickly, allowing for better fuel efficiency and overall vehicle performance.

5. Minimized Friction:

Efficient drive shafts are engineered to minimize frictional losses during power transmission. They incorporate features such as high-quality bearings, low-friction seals, and proper lubrication to reduce energy losses caused by friction. By minimizing friction, drive shafts enhance power transmission efficiency and maximize the available power for propulsion or operating other machinery.

6. Balanced and Vibration-Free Operation:

Drive shafts undergo dynamic balancing during the manufacturing process to ensure smooth and vibration-free operation. Imbalances in the drive shaft can lead to power losses, increased wear, and vibrations that reduce overall efficiency. By balancing the drive shaft, it can spin evenly, minimizing vibrations and optimizing power transmission efficiency.

7. Maintenance and Regular Inspection:

Proper maintenance and regular inspection of drive shafts are essential for maintaining their efficiency. Regular lubrication, inspection of joints and components, and prompt repair or replacement of worn or damaged parts help ensure optimal power transmission efficiency. Well-maintained drive shafts operate with minimal friction, reduced power losses, and improved overall efficiency.

8. Integration with Efficient Transmission Systems:

Drive shafts work in conjunction with efficient transmission systems, such as manual, automatic, or continuously variable transmissions. These transmissions help optimize power delivery and gear ratios based on driving conditions and vehicle speed. By integrating with efficient transmission systems, drive shafts contribute to the overall efficiency of the vehicle propulsion and power transmission system.

9. Aerodynamic Considerations:

In some cases, drive shafts are designed with aerodynamic considerations in mind. Streamlined drive shafts, often used in high-performance or electric vehicles, minimize drag and air resistance to improve overall vehicle efficiency. By reducing aerodynamic drag, drive shafts contribute to the efficient propulsion and power transmission of the vehicle.

10. Optimized Length and Design:

Drive shafts are designed to have optimal lengths and designs to minimize energy losses. Excessive drive shaft length or improper design can introduce additional rotational mass, increase bending stresses, and result in energy losses. By optimizing the length and design, drive shafts maximize power transmission efficiency and contribute to improved overall vehicle efficiency.

Overall, drive shafts contribute to the efficiency of vehicle propulsion and power transmission through effective power transfer, torque conversion, utilization of CV joints, lightweight construction, minimized friction, balanced operation, regular maintenance, integration with efficient transmission systems, aerodynamic considerations, and optimized length and design. By ensuring efficient power delivery and minimizing energy losses, drive shafts play a significant role in enhancing the overall efficiency and performance of vehicles and machinery.

pto shaft

What benefits do drive shafts offer for different types of vehicles and equipment?

Drive shafts offer several benefits for different types of vehicles and equipment. They play a crucial role in power transmission and contribute to the overall performance, efficiency, and functionality of various systems. Here’s a detailed explanation of the benefits that drive shafts provide:

1. Efficient Power Transmission:

Drive shafts enable efficient power transmission from the engine or power source to the wheels or driven components. By connecting the engine or motor to the driven system, drive shafts efficiently transfer rotational power, allowing vehicles and equipment to perform their intended functions. This efficient power transmission ensures that the power generated by the engine is effectively utilized, optimizing the overall performance and productivity of the system.

2. Versatility:

Drive shafts offer versatility in their applications. They are used in various types of vehicles, including cars, trucks, motorcycles, and off-road vehicles. Additionally, drive shafts are employed in a wide range of equipment and machinery, such as agricultural machinery, construction equipment, industrial machinery, and marine vessels. The ability to adapt to different types of vehicles and equipment makes drive shafts a versatile component for power transmission.

3. Torque Handling:

Drive shafts are designed to handle high levels of torque. Torque is the rotational force generated by the engine or power source. Drive shafts are engineered to efficiently transmit this torque without excessive twisting or bending. By effectively handling torque, drive shafts ensure that the power generated by the engine is reliably transferred to the wheels or driven components, enabling vehicles and equipment to overcome resistance, such as heavy loads or challenging terrains.

4. Flexibility and Compensation:

Drive shafts provide flexibility and compensation for angular movement and misalignment. In vehicles, drive shafts accommodate the movement of the suspension system, allowing the wheels to move up and down independently. This flexibility ensures a constant power transfer even when the vehicle encounters uneven terrain. Similarly, in machinery, drive shafts compensate for misalignment between the engine or motor and the driven components, ensuring smooth power transmission and preventing excessive stress on the drivetrain.

5. Weight Reduction:

Drive shafts contribute to weight reduction in vehicles and equipment. Compared to other forms of power transmission, such as belt drives or chain drives, drive shafts are typically lighter in weight. This reduction in weight helps improve fuel efficiency in vehicles and reduces the overall weight of equipment, leading to enhanced maneuverability and increased payload capacity. Additionally, lighter drive shafts contribute to a better power-to-weight ratio, resulting in improved performance and acceleration.

6. Durability and Longevity:

Drive shafts are designed to be durable and long-lasting. They are constructed using materials such as steel or aluminum, which offer high strength and resistance to wear and fatigue. Drive shafts undergo rigorous testing and quality control measures to ensure their reliability and longevity. Proper maintenance, including lubrication and regular inspections, further enhances their durability. The robust construction and long lifespan of drive shafts contribute to the overall reliability and cost-effectiveness of vehicles and equipment.

7. Safety:

Drive shafts incorporate safety features to protect operators and bystanders. In vehicles, drive shafts are often enclosed within a protective tube or housing, preventing contact with moving parts and reducing the risk of injury in the event of a failure. Similarly, in machinery, safety shields or guards are commonly installed around exposed drive shafts to minimize the potential hazards associated with rotating components. These safety measures ensure the well-being of individuals operating or working in proximity to vehicles and equipment.

In summary, drive shafts offer several benefits for different types of vehicles and equipment. They enable efficient power transmission, provide versatility in various applications, handle torque effectively, offer flexibility and compensation, contribute to weight reduction, ensure durability and longevity, and incorporate safety features. By providing these advantages, drive shafts enhance the performance, efficiency, reliability, and safety of vehicles and equipment across a wide range of industries.

China Hot selling Customized Forging Steel Large Drive Support Roller Shaft  China Hot selling Customized Forging Steel Large Drive Support Roller Shaft
editor by CX 2024-03-11

China Standard 64706 Creeper bearing Reserve Shaft Front bearing needle roller bearing for DT-75 tractors pto shaft at tractor supply

Bore Size: 29 – 42 mm
Applicable Industries: Hotels, Garment Shops, Building Material Shops, Manufacturing Plant, Machinery Repair Shops, Food & Beverage Factory, Farms, Restaurant, Home Use, Retail, Food Shop, Printing Shops, Construction works , Energy & Mining, Food & Beverage Shops, Advertising Company, Other
Type: Needle
Model Number: 64706
Precision Rating: P6 P0 P5 P4 P2
Product Name: needle roller bearings
Row: single row
Cage: Steel Cage.nylon Cage
Row Number: Single row
Application: Machinery parts
Certificate: ISO9Dimensions, mm: 29.96×43.98x33d – inner diameter, mm: 29.96D – outer diameter, mm: 43.98B/c – height, mm: 33Weight, kg: 0.144Roller dimensions: 7×28.5 mm;Number of rollers: 12 pieces;Load capacity dynamic: 53 kN;Load capacity static: 20 kN;Maximum rotational speed: 14,000 rpm Needle roller bearingsApplicability:Bearing Gearbox GAZ (truck models 3301, 3306, 3309, 4301, 4509);Bearing Gearbox, k.amaz (drive shaft, 2 grooves A belt H bushing electric motor pulley system front support) models 5320, 53211, 53212, 53213, 53222, 5325, 5410, 54112, 54122, 5425,55102, 5511, 55111.Gearbox bearing ZIL, Drive shaft, Front support (models 130, 131, 133, 137, 157, 4331 and derivatives, 5301 Bull and others);Gearbox bearing of LAZ buses, DC 12V Gear Motor High Torsion Speed Reduce Electric Gearbox Motor Reversible Worm Gear Motor Ural trucks and other equipment of domestic and foreign production FAQQ.Are you trading company or manufacturer ? Yes we are factory.Q.How long is your delivery time?Generally it is 5-10 days if the goods are in stock. Q.Do you provide samples ? is it free or extra ?Yes, we could offer the sample for free charge but do not pay the cost of freight.Q.What is your terms of payment ?We can accept any way payment.

drive shaft axle
China Standard 64706 Creeper bearing Reserve Shaft Front bearing needle roller bearing for DT-75 tractors     pto shaft at tractor supplyChina Standard 64706 Creeper bearing Reserve Shaft Front bearing needle roller bearing for DT-75 tractors     pto shaft at tractor supply
editor by Cx 2023-07-11