Product Description
Model Number: ISO219-40-150
valve:QF-2C
Material: Steel 37Mn
new seamless steel gas cylinder for N2,O2
Industrial nitrogen Gas
Pressure: High
Place of Origin: China (Mainland)
Brand Name: DSW
Thickness of seamless:5.7mm
weight of seamless: 47to 50kg
working pressure:150bar
test pressure: 250bar
TP:250KG/CM2
PW:150KG/CM2
40L and 50L medical oxygen cylinders |
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Type | (mm) Outside Diameter |
(L) Water Capacity |
(mm)
Height |
(Kg) Weight(Without valve,cap) |
(Mpa) Working Pressure |
(mm) Design Wall Thickness |
Material Grades |
ISO232-40-150 | 219 | 40 | 1167 | 43 | 200 | 5.2 | 37Mn |
ISO232-47-150 | 47 | 1351 | 49 | ||||
ISO232-50-150 | 50 | 1430 | 51.6 | ||||
ISO232-40-200 | 232 | 40 | 1156 | 44.9 | 200 | 5.2 | 34CrMo4 |
ISO232-46.7-200 | 46.7 | 1333 | 51 | ||||
ISO232-47-200 | 47 | 1341 | 51.3 | ||||
ISO232-50-200 | 50 | 1420 | 54 | ||||
EN232-40-210 | 232(TPED) | 40 | 1156 | 44.9 | 230 | 5.8 | 34CrMo4 |
EN232-46.7-210 | 46.7 | 1333 | 51 | ||||
EN232-47-210 | 47 | 1341 | 51.3 | ||||
EN232-50-210 | 50 | 1420 | 54 | ||||
EN232-40-230 | 40 | 1156 | 44.9 | 230 | 5.8 | 34CrMo4 | |
EN232-46.7-230 | 46.7 | 1333 | 51 | ||||
ISO232-47-230 | 47 | 1341 | 51.3 | ||||
ISO232-50-230 | 50 | 1420 | 54 | ||||
ISO267-40-150 | 267 | 40 | 922 | 43.3 | 150 | 5.8 | 37Mn |
ISO267-50-150 | 50 | 1119 | 51.3 |
100% new high quality seamless steel pipe from Bao Shan Iron co.,ltd (Baosteel).
Total 5 working line make 3000pcs per day for oxygen gas cylinder, argon gas cylinder, helium gas cylinder, Nitrogen gas cylinder , Co2 gas cylinder, N2O gas cylinder..etc
China top 1 advanced heat treatment machine. And China top 1 internal polishing machine to make high purity gas cylinder with 99.999% oxygen gas, helium gas, N2O gas and argon gas.
100% Hydrostatic prssure test and leakage test to keep the quality
Advanced automatic spraying working line make the spraying at high top quality , no any bubble , without shrinkage and distoration .
Japan imported shoulder marking machine make it the most qualified ones .
DSW seamless gas cylinder have nice appearance shoulders because we use shape-correction machine treatment make the cylinder shoulder most beautiful shape which other supplier can’t be compared.
Laboratory test standard ISO9809-3 and ISO9809-1, DOT-3AA, EN1964,GB5099 ..etc
Specification
RECORD OF HYDROSTATIC TESTS ON CYLINDERS TIME ≥ 60S |
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S.N | Serial No. | The weight without valve&cap(kg) | Volumetric Capacity(L) | Total expansion(ml) | Permanent expansion(ml) | Percent of Permanent to totalexpanison(%) | Test Pressure 250Bar | Lot and Batch No. |
401 | 2070968 057 | 48.6 | 40.0 | 200.3 | 2.6 | 1.3 | 250 | 2070968 |
402 | 2070968 058 | 48.3 | 40.0 | 204.2 | 2.3 | 1.1 | 250 | 2070968 |
403 | 2070968 059 | 48.2 | 40.1 | 205.1 | 2.6 | 1.3 | 250 | 2070968 |
404 | 2070968 060 | 48.5 | 40.1 | 195.2 | 2.6 | 1.3 | 250 | 2070968 |
405 | 2070968 061 | 48.2 | 40.1 | 205.1 | 2.7 | 1.3 | 250 | 2070968 |
406 | 2070968 062 | 48.6 | 40.0 | 206.2 | 2.2 | 1.1 | 250 | 2070968 |
407 | 2070968 063 | 48.3 | 40.3 | 193.9 | 2.2 | 1.1 | 250 | 2070968 |
408 | 2070968 064 | 48.0 | 40.1 | 200.1 | 2.9 | 1.4 | 250 | 2070968 |
409 | 2070968 065 | 48.4 | 40.0 | 205.2 | 2.9 | 1.4 | 250 | 2070968 |
410 | 2070968 066 | 47.9 | 40.1 | 200.1 | 2.6 | 1.3 | 250 | 2070968 |
411 | 2070968 067 | 47.9 | 40.2 | 201.0 | 2.2 | 1.1 | 250 | 2070968 |
412 | 2070968 068 | 48.7 | 40.0 | 200.3 | 3.0 | 1.5 | 250 | 2070968 |
413 | 2070968 069 | 48.3 | 40.2 | 201.0 | 2.8 | 1.4 | 250 | 2070968 |
414 | 2070968 070 | 48.2 | 40.1 | 197.2 | 2.5 | 1.3 | 250 | 2070968 |
415 | 2070968 071 | 47.9 | 40.0 | 206.2 | 2.6 | 1.3 | 250 | 2070968 |
416 | 2070968 072 | 48.5 | 40.4 | 193.8 | 3.0 | 1.5 | 250 | 2070968 |
417 | 2070968 073 | 49.0 | 40.0 | 201.3 | 3.0 | 1.5 | 250 | 2070968 |
418 | 2070968 074 | 49.2 | 40.1 | 201.1 | 2.3 | 1.1 | 250 | 2070968 |
419 | 2070968 075 | 48.3 | 40.2 | 196.0 | 2.3 | 1.2 | 250 | 2070968 |
420 | 2070968 076 | 47.7 | 40.2 | 198.0 | 2.3 | 1.2 | 250 | 2070968 |
421 | 2070968 077 | 48.2 | 40.2 | 198.0 | 2.3 | 1.2 | 250 | 2070968 |
422 | 2070968 078 | 48.5 | 40.3 | 201.8 | 2.3 | 1.1 | 250 | 2070968 |
423 | 2070968 079 | 49.2 | 40.1 | 194.2 | 2.7 | 1.4 | 250 | 2070968 |
424 | 2070968 080 | 48.5 | 40.4 | 200.7 | 3.0 | 1.5 | 250 | 2070968 |
425 | 2070968 081 | 48.2 | 40.1 | 197.2 | 2.3 | 1.2 | 250 | 2070968 |
426 | 2070968 082 | 48.3 | 40.0 | 200.3 | 2.7 | 1.3 | 250 | 2070968 |
427 | 2070968 083 | 48.5 | 40.3 | 197.9 | 3.0 | 1.5 | 250 | 2070968 |
428 | 2070968 084 | 48.3 | 40.1 | 200.1 | 2.3 | 1.1 | 250 | 2070968 |
429 | 2070968 085 | 48.6 | 40.1 | 194.2 | 2.3 | 1.2 | 250 | 2070968 |
430 | 2070968 086 | 48.5 | 40.1 | 199.1 | 2.6 | 1.3 | 250 | 2070968 |
431 | 2070968 087 | 48.4 | 40.1 | 199.1 | 2.9 | 1.5 | 250 | 2070968 |
432 | 2070968 088 | 48.1 | 40.2 | 203.9 | 2.3 | 1.1 | 250 | 2070968 |
433 | 2070968 089 | 48.6 | 40.2 | 198.0 | 3.0 | 1.5 | 250 | 2070968 |
434 | 2070968 090 | 48.0 | 40.2 | 201.0 | 2.5 | 1.2 | 250 | 2070968 |
435 | 2070968 091 | 49.6 | 40.0 | 206.2 | 3.0 | 1.5 | 250 | 2070968 |
436 | 2070968 092 | 48.5 | 40.1 | 197.2 | 2.3 | 1.2 | 250 | 2070968 |
437 | 2070968 093 | 48.1 | 40.1 | 197.2 | 2.3 | 1.2 | 250 | 2070968 |
438 | 2070968 094 | 48.0 | 40.1 | 197.2 | 2.2 | 1.1 | 250 | 2070968 |
439 | 2070968 095 | 48.1 | 40.1 | 197.2 | 2.9 | 1.5 | 250 | 2070968 |
440 | 2070968 096 | 48.3 | 40.1 | 199.1 | 2.3 | 1.2 | 250 | 2070968 |
441 | 2070968 097 | 48.1 | 40.2 | 203.0 | 2.4 | 1.2 | 250 | 2070968 |
442 | 2070968 098 | 48.6 | 40.1 | 199.1 | 2.6 | 1.3 | 250 | 2070968 |
443 | 2070968 099 | 48.5 | 40.2 | 198.0 | 2.3 | 1.2 | 250 | 2070968 |
444 | 2070968 100 | 48.4 | 40.1 | 202.1 | 2.4 | 1.2 | 250 | 2070968 |
445 | 2070968 101 | 48.7 | 40.0 | 204.2 | 2.3 | 1.1 | 250 | 2070968 |
446 | 2070968 102 | 49.2 | 40.0 | 204.2 | 3.0 | 1.5 | 250 | 2070968 |
447 | 2070968 103 | 48.1 | 40.2 | 200.0 | 2.6 | 1.3 | 250 | 2070968 |
448 | 2070968 104 | 48.0 | 40.1 | 202.1 | 3.0 | 1.5 | 250 | 2070968 |
449 | 2070968 105 | 48.3 | 40.1 | 196.2 | 2.4 | 1.2 | 250 | 2070968 |
450 | 2070968 106 | 48.8 | 40.0 | 206.2 | 2.2 | 1.1 | 250 | 2070968 |
Material: | Steel |
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Usage: | Oxygen Gas and Nitrogen Cylinder |
Structure: | Gas – Liquid Damping Cylinder |
Power: | Hydraulic |
Standard: | Standard |
Pressure Direction: | Single-acting Cylinder |
Customization: |
Available
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Can hydraulic cylinders be used for precise operations like CNC machining or molding?
Yes, hydraulic cylinders can be used for precise operations like CNC machining or molding. While hydraulic systems are commonly associated with heavy-duty applications, they can also provide the necessary precision and control required for precise operations in CNC machining and molding processes. Here’s a detailed explanation of how hydraulic cylinders can be utilized for such precise operations:
1. Force and Control:
– Hydraulic cylinders are capable of generating substantial force, which is essential for precise operations in CNC machining and molding. By using hydraulic pressure, the cylinders can deliver the required force to cut or shape materials accurately or exert pressure for molding operations. The hydraulic system allows precise control over the force applied, ensuring consistent and reliable performance.
2. Adjustable Speed and Positioning:
– Hydraulic cylinders offer adjustable speed and precise positioning capabilities, making them suitable for precise operations. By controlling the flow of hydraulic fluid, the speed of the cylinder’s movement can be adjusted according to specific requirements. This adaptability allows for fine-tuning the machining or molding process, achieving the desired precision in material removal or shaping. Hydraulic systems also enable accurate positioning of tools or molds, ensuring precise operations.
3. Integrated Feedback Systems:
– Advanced hydraulic systems can incorporate feedback sensors and control mechanisms to enhance precision in CNC machining and molding. These sensors provide real-time information about the position, speed, and force exerted by the hydraulic cylinders. The control system processes this data and adjusts the flow of hydraulic fluid accordingly, allowing for precise and accurate control over the operations. The feedback systems help maintain consistent performance and compensate for any deviations, ensuring high precision.
4. Damping and Vibration Control:
– Hydraulic cylinders can be equipped with damping mechanisms to minimize vibrations and ensure stability during CNC machining or molding operations. Vibrations can negatively impact precision by causing tool chatter or material deformation. By incorporating cushioning or damping features, hydraulic cylinders help absorb shocks and suppress vibrations, resulting in smoother and more accurate operations.
5. Customization and Adaptability:
– Hydraulic cylinders can be customized and adapted to meet the specific requirements of CNC machining or molding processes. Engineers can design cylinders with unique dimensions, stroke lengths, mounting options, and sealing arrangements to fit into equipment or systems with precise specifications. Customized hydraulic cylinders ensure optimal performance and compatibility for precise operations, enabling seamless integration into CNC machines or molding equipment.
6. Energy Efficiency:
– Hydraulic systems can be designed to be energy-efficient, contributing to cost savings in CNC machining or molding operations. By utilizing variable speed pumps, efficient control valves, and well-designed hydraulic circuits, energy consumption can be optimized. This efficiency reduces heat generation, leading to improved stability and precision in operations while minimizing energy costs.
7. Maintenance and Calibration:
– Regular maintenance and calibration of hydraulic systems are essential to maintain their precision in CNC machining or molding applications. Proper lubrication, inspection of seals, and replacement of worn-out components help ensure optimal performance. Regular calibration of control systems and feedback sensors ensures accurate readings and reliable operation, contributing to precision in machining or molding processes.
In summary, hydraulic cylinders can be effectively used for precise operations like CNC machining or molding. Their ability to generate substantial force, adjustable speed and positioning, integration with feedback systems, damping and vibration control, customization and adaptability, energy efficiency, and proper maintenance contribute to achieving the required precision in these operations. By leveraging the strengths of hydraulic systems, manufacturers can enhance the accuracy and reliability of CNC machining or molding processes, resulting in high-quality products and improved productivity.
Integration of Hydraulic Cylinders with Equipment Requiring Rapid and Dynamic Movements
Hydraulic cylinders can indeed be integrated with equipment that requires rapid and dynamic movements. While hydraulic systems are generally known for their ability to provide high force and precise control, they can also be designed and optimized for applications that demand fast and dynamic motion. Let’s explore how hydraulic cylinders can be integrated with such equipment:
- High-Speed Hydraulic Systems: Hydraulic cylinders can be part of high-speed hydraulic systems designed specifically for rapid and dynamic movements. These systems incorporate features such as high-flow valves, optimized hydraulic circuitry, and responsive control systems. By carefully engineering the system components and hydraulic parameters, it is possible to achieve the desired speed and responsiveness, enabling the equipment to perform rapid movements.
- Valve Control: The control of hydraulic cylinders plays a crucial role in achieving rapid and dynamic movements. Proportional or servo valves can be used to precisely control the flow of hydraulic fluid into and out of the cylinder. These valves offer fast response times and precise flow control, allowing for rapid acceleration and deceleration of the cylinder’s piston. By adjusting the valve settings and optimizing the control algorithms, equipment can be designed to execute dynamic movements with high speed and accuracy.
- Optimized Cylinder Design: The design of hydraulic cylinders can be optimized to facilitate rapid and dynamic movements. Lightweight materials, such as aluminum alloys or composite materials, can be used to reduce the moving mass of the cylinder, enabling faster acceleration and deceleration. Additionally, the cylinder’s internal components, such as the piston and seals, can be designed for low friction to minimize energy losses and enhance responsiveness. These design optimizations contribute to the overall speed and dynamic performance of the equipment.
- Accumulator Integration: Hydraulic accumulators can be integrated into the system to enhance the dynamic capabilities of hydraulic cylinders. Accumulators store pressurized hydraulic fluid, which can be rapidly released to supplement the flow from the pump during high-demand situations. This stored energy can provide an extra boost of power, allowing for faster and more dynamic movements. By strategically sizing and configuring the accumulator, the system can be optimized for the specific rapid and dynamic requirements of the equipment.
- System Feedback and Control: To achieve precise and dynamic movements, hydraulic systems can incorporate feedback sensors and advanced control algorithms. Position sensors, such as linear potentiometers or magnetostrictive sensors, provide real-time position feedback of the hydraulic cylinder. This information can be used in closed-loop control systems to maintain precise positioning and execute rapid movements. Advanced control algorithms can optimize the control signals sent to the valves, ensuring smooth and dynamic motion while minimizing overshooting or oscillations.
In summary, hydraulic cylinders can be integrated with equipment that requires rapid and dynamic movements by utilizing high-speed hydraulic systems, employing responsive valve control, optimizing cylinder design, integrating accumulators, and incorporating feedback sensors and advanced control algorithms. These measures enable hydraulic systems to deliver the speed, responsiveness, and precision necessary for equipment operating in dynamic environments. By leveraging the capabilities of hydraulic cylinders, manufacturers can design and integrate systems that meet the requirements of applications demanding rapid and dynamic movements.
How do hydraulic cylinders ensure precise and controlled movement in equipment?
Hydraulic cylinders are widely used in various equipment and machinery to provide precise and controlled movement. They utilize hydraulic fluid and mechanical components to achieve accurate positioning, smooth operation, and reliable control. Here’s a detailed explanation of how hydraulic cylinders ensure precise and controlled movement in equipment:
1. Hydraulic Principle:
– Hydraulic cylinders operate based on Pascal’s law, which states that pressure exerted on a fluid is transmitted equally in all directions. The hydraulic fluid is contained within the cylinder, and when pressure is applied, it acts on the piston, generating force. By controlling the pressure and flow of hydraulic fluid, the movement of the cylinder can be precisely regulated, allowing for accurate and controlled motion.
2. Force and Load Management:
– Hydraulic cylinders are designed to handle specific loads and forces. The force generated by the hydraulic cylinder depends on the hydraulic pressure and the surface area of the piston. By adjusting the pressure, the force output can be controlled. This allows for precise management of the load and ensures that the cylinder can handle the required force without exerting excessive or insufficient force. Proper load management contributes to the precise and controlled movement of the equipment.
3. Control Valves:
– Control valves play a crucial role in regulating the flow and direction of hydraulic fluid within the cylinder. These valves allow operators to control the extension and retraction of the cylinder, adjust the speed of movement, and stop or hold the cylinder at any desired position. By manipulating the control valves, precise and controlled movement can be achieved, enabling operators to position equipment accurately and perform specific tasks with precision.
4. Flow Control:
– Hydraulic cylinders incorporate flow control valves to manage the rate of hydraulic fluid flow. These valves control the speed of the cylinder’s extension and retraction, allowing for smooth and controlled movement. By adjusting the flow rate, operators can precisely control the speed of the cylinder, ensuring that it moves at the desired rate without sudden or erratic movements. Flow control contributes to the overall precision and control of the equipment’s movement.
5. Position Sensing:
– To ensure precise movement, hydraulic cylinders can be equipped with position sensing devices such as linear transducers or proximity sensors. These sensors provide feedback on the position of the cylinder, allowing for accurate position control and closed-loop control systems. By continuously monitoring the position, the equipment’s movement can be controlled with high accuracy, enabling precise positioning and operation.
6. Proportional Control:
– Advanced hydraulic systems utilize proportional control technology, which allows for precise and fine-tuned control of the hydraulic cylinder’s movement. Proportional valves, often operated by electronic control systems, provide variable flow rates and pressure adjustments. This technology enables precise control of speed, force, and position, resulting in highly accurate and controlled movement of the equipment.
7. Cushioning and Damping:
– Hydraulic cylinders can incorporate cushioning and damping mechanisms to ensure smooth and controlled movement at the end of the stroke. Cushioning features, such as adjustable cushions or shock absorbers, reduce the impact and decelerate the cylinder before reaching the end of the stroke. This prevents abrupt stops and minimizes vibrations, contributing to precise and controlled movement.
8. Load Compensation:
– Some hydraulic systems utilize load compensation mechanisms to maintain precise movement even when the load varies. Load-sensing systems monitor the load demand and adjust the hydraulic pressure and flow accordingly to meet that demand. This compensation ensures that the equipment’s movement remains accurate and controlled, regardless of changes in the applied load.
In summary, hydraulic cylinders ensure precise and controlled movement in equipment through the application of hydraulic principles, force and load management, control valves, flow control, position sensing, proportional control, cushioning and damping mechanisms, and load compensation. These features and technologies allow operators to achieve accurate positioning, smooth operation, and reliable control, enabling equipment to perform tasks with precision and efficiency. The combination of hydraulic power and careful design considerations ensures that hydraulic cylinders deliver precise and controlled movement in a wide range of industrial applications.
editor by CX 2023-12-06