Descrição do produto

 

Descrição do produto

Capacity  AVC  Model Min Height Outside Diameter Effective Area Oil Capacity Plunger Diameter Weight 
(Ton) (mm)  (mm)  (mm) (cm²) (cm³) (mm) (Kg)
Push Pull         Push Pull Push Pull    
10 4. 1 254 CLRG1571 409 76 14.5 5.9 368 149 33 12
10 4. 1 305 CLRG1012 457 76 14.5 5.9 442 180 33 14
50 22.6 150 CLRG506 325 127 70.8 32.3 1062 484 70 30
50 22.6 300 CLRG5012 475 127 70.8 32.3 2124 969 70 52
100 44 50 CLRG 1002 182 188 132. 7 61.9 664 310 95 27
100 44 100 CLRG 1004 232 188 132.7 61.9 1327 619 95 33
100 44 150 CLRG 1006 282 188 132.7 61.9 1991 929 95 37
100 44 200 CLRG 1008 332 188 132.7 61.9 2654 1238 95 44
100 44 250 CLRG1571 382 188 132.7 61.9 3318 1548 95 50
100 44 300 CLRG10012 432 188 132.7 61.9 3981 1857 95 57
150 67.9 50 CLRG 1502 196 216 201 97 1005 485 115 47
150 67.9 100 CLRG 1504 246 216 201 97 2571 970 115 57
150 67.9 150 CLRG1506 296 216 201 97 3015 1455 115 67
150 67.9 200 CLRG 1508 346 216 201 97 4571 1940 115 77
150 67.9 250 CLRG15571 396 216 201 97 5571 2425 115 87
150 67.9 300 CLRG15012 446 216 201 97 6030 2910 115 97
200 93 50 CLRG2002 235 242 265.9 133. 1 1329 665 130 67
200 93 150 CLRG2006 335 242 265.9 133. 1 3988 1996 130 92
200 93 250 CLRG2571 435 242 265.9 133. 1 6647 3327 130 117
250 107 50 CLRG2502 236 288 366.4 152.6 1832 763 165 105
250 107 150 CLRG2506 336 288 366.4 152. 6 5496 2289 165 141
250 107 250 CLRG25571 436 288 366.4 152. 6 9160 3815 165 176
300 121 50 CLRG3002 350 325 456.2 172. 6 2281 863 190 204
300 121 150 CLRG3006 412 325 456.2 172. 6 6843 2589 190 252
300 121 250 CLRG3571 512 325 456.2 172. 6 11405 4315 190 299
400 138 50 CLRG4002 370 367 559.9 196.8 2799 984 215 281
400 138 150 CLRG4006 470 367 559.9 196.8 8399 2952 215 342
400 138 250 CLRG4571 570 367 559.9 196.8 13998 4920 215 405
500 168 50 CLRG5002 400 405 730. 6 239. 7 3653 1198 250 411
500 168 150 CLRG5006 500 405 730. 6 239. 7 10959 3595 250 493
500 168 250 CLRG5571 600 405 730. 6 239. 7 18265 5992 250 575
600 207 50 CLRG6002 445 450 855.3 295.4 4277 1477 267 494
600 207 150 CLRG6006 545 450 855.3 295.4 12830 4431 267 586
600 207 250 CLRG6571 645 450 855.3 295.4 21383 7385 267 678
800 252 50 CLRG8002 695 515 1164 360 5820 1800 320 759
800 252 150 CLRG8006 595 515 1164 360 17460 5400 320 885
800 252 250 CLRG8571 695 515 1164 360 29100 9000 320 1019
1000 380 50 CLRG 10002 535 580 1465. 7 541.7 7328 2708 342 1012
1000 380 150 CLRG 10006 635 580 1465. 7 541.7 21985 8125 342 1168
1000 380 250 CLRG10571 735 580 1465. 7 541.7 36418 13543 342 1325

Company Profile

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FAQ

Q: How to order?
A: Inquire with us→ sample customization→ use scenario inform→ receive our product design recommendation→ negotiate details→ confirm the sample→ CHINAMFG the contract/deposit→mass production→ the goods are ready→ balance/delivery→ further cooperation.

Q: How about the sample order?
A: We can provide the sample price, please contact us for details.

Q: Which shipping method is available?
A: By sea, by air, or by express (DHL, UPS, FedEx). Other shipping methods are also available, please contact us for details.

Q: How long is the delivery [production] and shipment?
A: The delivery time depends on the quantity you ordered. Shipped from the factory, within 3 days for standard parts and within 10 days for non-standard parts.

Q: My package is missing some products, what can I do?
A: Please contact our support team, we will confirm the contents of your order with the packaging, and compensate for the shipment. We apologize for the inconvenience.

Q: How to confirm the payment?
A: We accept T/T payment method. The first type is 30% deposit order confirmed, and the remaining 70% is paid before shipment, and the second type is 100% paid before shipment. Other payment methods are also acceptable, please contact us before you pay by other payment methods.

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cilindro hidráulico

What advancements in hydraulic cylinder technology have improved sealing and reliability?

Advancements in hydraulic cylinder technology have continuously contributed to improving sealing and reliability in hydraulic systems. These advancements aim to address common challenges such as leakage, wear, and failure of seals, ensuring optimal performance and longevity. Here are several key advancements that have significantly improved sealing and reliability in hydraulic cylinders:

1. High-Performance Sealing Materials:

– The development of advanced sealing materials has greatly improved the sealing capabilities of hydraulic cylinders. Traditional sealing materials like rubber have been replaced or enhanced with high-performance materials such as polyurethane, PTFE (polytetrafluoroethylene), and various composite materials. These materials offer superior resistance to wear, temperature, and chemical degradation, resulting in improved sealing performance and extended seal life.

2. Enhanced Seal Designs:

– Advancements in seal designs have focused on improving sealing efficiency and reliability. Innovative seal profiles, such as lip seals, wipers, and scrapers, have been developed to optimize fluid retention and prevent contamination. These designs provide better sealing performance, minimizing the risk of fluid leakage and maintaining system integrity. Additionally, improved seal geometries and manufacturing techniques ensure tighter tolerances, reducing the potential for seal failure due to misalignment or extrusion.

3. Integrated Seal and Bearing Systems:

– Hydraulic cylinders now incorporate integrated seal and bearing systems, where the sealing elements also serve as bearing surfaces. This design approach reduces the number of components and potential failure points, improving overall reliability. By integrating seals and bearings, the risk of seal damage or displacement due to excessive loads or misalignment is minimized, resulting in enhanced sealing performance and increased reliability.

4. Advanced Coatings and Surface Treatments:

– The application of advanced coatings and surface treatments to hydraulic cylinder components has significantly improved sealing and reliability. Coatings such as chrome plating or ceramic coatings enhance surface hardness, wear resistance, and corrosion resistance. These surface treatments provide a smoother and more durable surface for seals to operate against, reducing friction and improving sealing performance. Moreover, specialized coatings can also provide self-lubricating properties, reducing the need for additional lubrication and enhancing reliability.

5. Sealing System Monitoring and Diagnostic Technologies:

– The integration of monitoring and diagnostic technologies in hydraulic systems has revolutionized seal performance and reliability. Sensors and monitoring systems can detect and alert operators to potential seal failures or leaks before they escalate. Real-time monitoring of pressure, temperature, and seal performance parameters allows for proactive maintenance and early intervention, preventing costly downtime and ensuring optimal sealing and reliability.

6. Computational Modeling and Simulation:

– Computational modeling and simulation techniques have played a significant role in advancing hydraulic cylinder sealing and reliability. These tools enable engineers to analyze and optimize seal designs, fluid flow dynamics, and contact stresses. By simulating various operating conditions, potential issues such as seal extrusion, wear, or leakage can be identified and mitigated early in the design phase, resulting in improved sealing performance and enhanced reliability.

7. Systematic Maintenance Practices:

– Advances in hydraulic cylinder technology have also emphasized the importance of systematic maintenance practices to ensure sealing and overall system reliability. Regular inspection, lubrication, and replacement of seals, as well as routine system flushing and filtration, help prevent premature seal failure and optimize sealing performance. Implementing preventive maintenance schedules and adhering to recommended service intervals contribute to extended seal life and enhanced reliability.

In summary, advancements in hydraulic cylinder technology have led to significant improvements in sealing and reliability. High-performance sealing materials, enhanced seal designs, integrated seal and bearing systems, advanced coatings and surface treatments, sealing system monitoring and diagnostics, computational modeling and simulation, and systematic maintenance practices have all played key roles in achieving optimal sealing performance and increased reliability. These advancements have resulted in more efficient and dependable hydraulic systems, minimizing leakage, wear, and failure of seals, and ultimately improving the overall performance and longevity of hydraulic cylinders in diverse applications.

cilindro hidráulico

How do hydraulic cylinders contribute to the efficiency of agricultural tasks like plowing?

Hydraulic cylinders play a crucial role in improving the efficiency of agricultural tasks, including plowing. These cylinders provide several benefits that enhance the performance and productivity of agricultural machinery. Let’s explore how hydraulic cylinders contribute to the efficiency of plowing and other agricultural tasks:

  1. Powerful Force Generation: Hydraulic cylinders are capable of generating high forces, which is essential for tasks like plowing. The hydraulic system supplies pressurized fluid to the cylinders, converting hydraulic energy into mechanical force. This force is then utilized to drive plow blades through the soil, overcoming resistance and facilitating efficient soil penetration. The power generated by hydraulic cylinders ensures effective plowing, even in tough or compacted soil conditions.
  2. Adjustable Working Depth: Hydraulic cylinders allow for easy and precise adjustment of the plow’s working depth. By controlling the extension or retraction of the hydraulic cylinder, farmers can adjust the depth of the plow blades according to soil conditions, crop requirements, or their specific preferences. This adjustability enhances efficiency by ensuring optimal soil tillage and minimizing unnecessary energy expenditure. Farmers can adapt the plowing depth to different field areas, optimizing the use of resources and promoting uniform crop growth.
  3. Responsive Control: Hydraulic systems offer highly responsive control, enabling farmers to make quick adjustments during plowing operations. Hydraulic cylinders respond rapidly to changes in hydraulic pressure and valve settings, allowing for immediate modifications in the plow’s position, depth, or angle. This responsiveness enhances efficiency by facilitating on-the-go adjustments based on soil variations, obstacles, or changing field conditions. Farmers can maintain precise control over the plow’s performance, ensuring effective soil tillage and minimizing the risk of crop damage.
  4. Implement Versatility: Hydraulic cylinders enable the attachment of various implements to agricultural machinery, expanding their functionality and versatility. In the context of plowing, hydraulic cylinders allow for the attachment and detachment of plow blades or other tillage implements. This versatility enables farmers to adapt their equipment to different soil types, field sizes, or specific plowing requirements. By using hydraulic cylinders, farmers can easily switch between different implements, optimizing their equipment for specific tasks and maximizing efficiency.
  5. Efficient Time Management: Hydraulic cylinders contribute to time efficiency in agricultural tasks like plowing. With hydraulic systems, farmers can operate plows at higher speeds while maintaining control and precision. The responsive nature of hydraulic cylinders allows for efficient turning, maneuvering, and repositioning of plows, minimizing downtime and optimizing field coverage. This time efficiency translates into increased productivity and reduced overall operational costs. Farmers can accomplish plowing tasks more quickly, allowing them to cover larger field areas in less time.

In summary, hydraulic cylinders significantly contribute to the efficiency of agricultural tasks like plowing. Through powerful force generation, adjustable working depth, responsive control, implement versatility, and efficient time management, hydraulic systems equipped with cylinders enhance the performance and productivity of agricultural machinery. These contributions allow farmers to accomplish plowing tasks more effectively, optimize field operations, and achieve improved overall efficiency in their agricultural practices.

cilindro hidráulico

Como os cilindros hidráulicos se adaptam às variações no comprimento do curso e nos requisitos de força?

Os cilindros hidráulicos são projetados para acomodar variações no comprimento do curso e na força necessária, proporcionando flexibilidade e adaptabilidade para diferentes aplicações. Eles podem ser personalizados para atender a necessidades específicas, considerando fatores como diâmetro do pistão, diâmetro da haste, pressão hidráulica e projeto do cilindro. Aqui está uma explicação detalhada de como os cilindros hidráulicos acomodam variações no comprimento do curso e na força necessária:

1. Dimensões e design do cilindro:

Os cilindros hidráulicos estão disponíveis em diversos tamanhos e modelos para atender a diferentes comprimentos de curso e requisitos de força. O diâmetro do cilindro, a área do pistão e o diâmetro da haste são fatores essenciais que determinam a força gerada. Cilindros com diâmetros e áreas de pistão maiores podem gerar maior força, enquanto diâmetros menores são adequados para aplicações que exigem menor força. Ao selecionar o tamanho e o modelo de cilindro apropriados, os comprimentos de curso e os requisitos de força podem ser atendidos de forma eficaz.

2. Configurações de pistão e biela:

Os cilindros hidráulicos podem ser projetados com diferentes configurações de pistão e haste para acomodar variações no comprimento do curso. Cilindros de ação simples possuem um único pistão e podem fornecer um curso em uma única direção. Cilindros de ação dupla possuem um pistão em cada extremidade, permitindo cursos em ambas as direções. Cilindros telescópicos consistem em múltiplos estágios que podem se estender e retrair, proporcionando um comprimento de curso maior em comparação com cilindros padrão. Selecionando a configuração apropriada de pistão e haste, o comprimento de curso desejado pode ser alcançado.

3. Pressão e Vazão Hidráulicas:

A pressão hidráulica e a vazão fornecidas ao cilindro desempenham um papel crucial na adaptação às variações na força necessária. O aumento da pressão hidráulica aumenta a força produzida pelo cilindro, permitindo que ele suporte demandas de força maiores. Ajustando a pressão e a vazão por meio de válvulas e bombas hidráulicas, a força produzida pode ser controlada e adequada às necessidades específicas da aplicação.

4. Personalização e Ajustes:

Os cilindros hidráulicos podem ser personalizados e adaptados para atender a requisitos específicos de comprimento de curso e força. Os fabricantes oferecem uma ampla gama de tamanhos de cilindros, comprimentos de curso e capacidades de força para escolha. Além disso, cilindros projetados sob medida podem ser fabricados para atender a aplicações exclusivas com demandas específicas de comprimento de curso e força. Trabalhando em estreita colaboração com os fabricantes de cilindros hidráulicos, é possível obter cilindros que correspondam precisamente aos requisitos de comprimento de curso e força necessários.

5. Cilindros Múltiplos e Sincronização:

Em aplicações que exigem alta força ou cursos mais longos, vários cilindros hidráulicos podem ser usados ​​em conjunto. Ao sincronizar o movimento de múltiplos cilindros através do sistema hidráulico, o comprimento do curso e a força de saída podem ser efetivamente aumentados. A sincronização pode ser alcançada por meio de ligações mecânicas, controles eletrônicos ou circuitos hidráulicos, garantindo movimento coordenado e distribuição de força entre os cilindros.

6. Detecção de carga e controle de pressão:

– Os sistemas hidráulicos podem incorporar mecanismos de detecção de carga e controle de pressão para acomodar variações na necessidade de força. Os sistemas de detecção de carga monitoram a demanda de carga e ajustam a pressão hidráulica de acordo, garantindo que o cilindro forneça a força necessária sem exercer força excessiva. As válvulas de controle de pressão regulam a pressão dentro do sistema hidráulico, permitindo o controle e ajuste precisos da força de saída com base nas necessidades da aplicação.

7. Considerações de segurança:

Ao lidar com variações no comprimento do curso e na força necessária, é essencial considerar os fatores de segurança. Os cilindros hidráulicos devem ser selecionados e projetados com uma margem de segurança adequada para suportar cargas inesperadas ou variações nas condições de operação. Mecanismos de segurança, como válvulas de proteção contra sobrecarga e válvulas de alívio de pressão, podem ser incorporados para evitar danos ou falhas em situações onde os limites de força são excedidos.

Ao considerar fatores como tamanho e projeto do cilindro, configurações do pistão e da haste, pressão e vazão hidráulicas, opções de personalização, sincronização, detecção de carga, controle de pressão e considerações de segurança, os cilindros hidráulicos podem acomodar com eficácia variações no comprimento do curso e nos requisitos de força. Essa flexibilidade permite que os cilindros hidráulicos sejam adaptados para atender às demandas específicas de uma ampla gama de aplicações, garantindo desempenho e eficiência ideais.

<img src="https://img.jiansujichilun.com/img/hydrauliccylinders/hydrauliccylinders-l1.webp" alt="China supplier WREN Hydraulic Cylinder Series CLRG1502 Double-Acting High Tonnage Cylinder (150 ton factory price$1000) manufacturer “><img src="https://img.jiansujichilun.com/img/hydrauliccylinders/hydrauliccylinders-l2.webp" alt="China supplier WREN Hydraulic Cylinder Series CLRG1502 Double-Acting High Tonnage Cylinder (150 ton factory price$1000) manufacturer “>
editor by Dream 2024-10-10

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