Penerangan Produk
Specifications:
| Product Name | HSG Series Hydraulic Cylinder |
| Work Press | 7/14/16/21/31.5MPa 37.5/63MPa Can be Customized |
| Bahan | Aluminum, Cast Iron,45mnb Steel, Stainless Steel |
| Bore Size | 40mm–320mm, Customizable |
| Shaft Diameter | 20mm–220mm, Customizable |
| Stroke Length | 30mm–14100mm, Customizable |
| Rod Surface Hardness | HRC48-54 |
| Operating Temperature | -40°C to +120 °C |
| Paint Color | Black, Yellow, Blue, Brown, Customizable |
| Perkhidmatan | OEM&ODM |
| Warranty | 1 Year |
| MOQ | 1 Piece |
| Delivery Time | 7-15 Days, Also depending on specific demands |
| Pensijilan | ISO9001,CE |
| Capacity | 50,000Pcs per year |
Paparan Produk:
Mounting:
Working Flow: About Us
Tongte designs and manufactures durable, heavy-duty hydraulic products and accessories and offers lifecycle services to them. We constantly develop our machine base and operations to meet customer-specific needs and remain leaders in the industry. Beyond all else, we want to be the trusted, groundbreaking partner our customers truly need.
In addition to the customized cylinders, CHINAMFG offers hydraulic power units, Electric-Hydraulic linear actuators, piston accumulators, system configurations, and versatile services such as repair and manufacturing services. The modern production facilities are located in HangZhou, ZheJiang (China) where production started in 2001. The core values of Tongke guiding its business strongly are commitment, sustainability, interaction, and customer-first.
We possess over 20 years of experience in the industry and extensive global market experience, our customers are located all over the world, and we truly commit to the customers’ needs – these are the success factors of our family-owned company. Our vision is to grow and expand the business further into global markets.
Soalan Lazim:
Q1: What does your company do?
A: we are a supplier of high-quality hydraulic products including Hydraulic Cylinders, Hydraulic Power packs, Hydraulic Linear, and other Hydraulic components.
Q2:Are you a manufacturer or trading company?
A: We are a manufacturer.
Q3:Are you able to make Non-standard or customized products?
A: Yes, we can.
Q3: How long is your delivery time?
A: Normally, the delivery time is 7 days if we have stock, and 15-30 working days if we don’t. but it
also depends on the product
requirements and quantity.
Q4: Do you provide samples? are the samples free or not?
A: Yes, we can provide samples, but they are not free of charge.
Q5: What are your payment terms?
A: 30% deposit T/T or Irrevocable L/C at sight, If you have any questions, please feel free to
contact us.
Q6: What is your warranty policy?
A: All our products are warranted for 1 full year from the date of delivery against defects in materials and workmanship. Each individual product will be strictly inspected on our factory QC Process
System before shipment. We also have a Customer Service team to respond to customers’ questions within 12 hours.
| Certification: | ISO9001 |
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| Pressure: | High Pressure |
| Work Temperature: | Normal Temperature |
| Customization: | Available |
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| Shipping Cost: Estimated freight per unit. | about shipping cost and estimated delivery time. |
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| Payment Method: |
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| Initial Payment Full Payment |
| Currency: | US$ |
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| Return&refunds: | You can apply for a refund up to 30 days after receipt of the products. |
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Can hydraulic cylinders be integrated with advanced control systems and automation?
Yes, hydraulic cylinders can be integrated with advanced control systems and automation technologies to enhance their functionality, precision, and overall performance. The integration of hydraulic cylinders with advanced control systems allows for more sophisticated and precise control over their operation, enabling automation and intelligent control. Here’s a detailed explanation of how hydraulic cylinders can be integrated with advanced control systems and automation:
1. Electronic Control:
– Hydraulic cylinders can be equipped with electronic sensors and transducers to provide real-time feedback on their position, force, pressure, or velocity. These sensors can be integrated with advanced control systems, such as programmable logic controllers (PLCs) or distributed control systems (DCS), to monitor and control the operation of hydraulic cylinders. By integrating electronic control, the position, speed, and force of hydraulic cylinders can be precisely monitored and adjusted, allowing for more accurate and automated control.
2. Closed-Loop Control:
– Closed-loop control systems use feedback from sensors to continuously monitor and adjust the operation of hydraulic cylinders. By integrating hydraulic cylinders with closed-loop control systems, precise control over position, velocity, and force can be achieved. Closed-loop control enables the system to automatically compensate for variations, external disturbances, or changes in operating conditions, ensuring accurate and consistent performance. This integration is particularly beneficial in applications that require precise positioning, synchronization, or force control.
3. Proportional and Servo Control:
– Hydraulic cylinders can be integrated with proportional and servo control systems to achieve finer control over their operation. Proportional control systems use proportional valves to regulate the flow and pressure of hydraulic fluid, allowing for precise adjustment of cylinder speed and force. Servo control systems, on the other hand, combine feedback sensors, high-performance valves, and advanced control algorithms to achieve extremely precise control over hydraulic cylinders. Proportional and servo control integration enhances the responsiveness, accuracy, and dynamic performance of hydraulic cylinders.
4. Human-Machine Interface (HMI):
– Hydraulic cylinders integrated with advanced control systems can be operated and monitored through human-machine interface (HMI) devices. HMIs provide a graphical user interface that allows operators to interact with the control system, monitor cylinder performance, and adjust parameters. HMIs enable operators to set desired positions, forces, or velocities, and visualize the real-time feedback from sensors. This integration simplifies the operation and monitoring of hydraulic cylinders, making them more user-friendly and facilitating seamless integration into automated systems.
5. Communication and Networking:
– Hydraulic cylinders can be integrated into communication and networking systems, enabling them to be part of a larger automated system. Integration with industrial communication protocols, such as Ethernet/IP, Profibus, or Modbus, allows for seamless information exchange between the hydraulic cylinders and other system components. This integration enables centralized control, data logging, remote monitoring, and coordination with other automated processes. Communication and networking integration enhance the overall efficiency, coordination, and integration of hydraulic cylinders within complex automation systems.
6. Automation and Sequential Control:
– By integrating hydraulic cylinders with advanced control systems, they can be seamlessly incorporated into automated processes and sequential control operations. The control system can execute predefined sequences or programmed logic to control the operation of hydraulic cylinders based on specific conditions, inputs, or timing. This integration enables the automation of complex tasks, such as material handling, assembly operations, or repetitive motions. Hydraulic cylinders can be synchronized with other actuators, sensors, or devices, allowing for coordinated and automated operation in various industrial applications.
7. Predictive Maintenance and Condition Monitoring:
– Advanced control systems can also enable predictive maintenance and condition monitoring for hydraulic cylinders. By integrating sensors and monitoring capabilities, the control system can continuously monitor the performance, health, and condition of hydraulic cylinders. This integration allows for the detection of abnormalities, wear, or potential failures in real-time. Predictive maintenance strategies can be implemented based on the collected data, optimizing maintenance schedules, reducing downtime, and enhancing the overall reliability of hydraulic systems.
In summary, hydraulic cylinders can be integrated with advanced control systems and automation technologies to enhance their functionality, precision, and performance. The integration allows for electronic control, closed-loop control, proportional and servo control, human-machine interface (HMI) interaction, communication and networking, automation and sequential control, as well as predictive maintenance and condition monitoring. These integrations enable more precise control, automation, improved efficiency, and optimized performance of hydraulic cylinders in various industrial applications.

Handling Challenges of Different Fluid Viscosities in Hydraulic Cylinders
Hydraulic cylinders are designed to handle the challenges associated with different fluid viscosities. The viscosity of hydraulic fluid can vary based on temperature, type of fluid used, and other factors. Hydraulic systems need to accommodate these variations to ensure optimal performance and efficiency. Let’s explore how hydraulic cylinders handle the challenges of different fluid viscosities:
- Fluid Selection: Hydraulic cylinders are designed to work with a range of hydraulic fluids, each with its specific viscosity characteristics. The selection of an appropriate fluid with the desired viscosity is crucial to ensure optimal performance. Manufacturers provide guidelines regarding the recommended viscosity range for specific hydraulic systems and cylinders. By choosing the right fluid, hydraulic cylinders can effectively handle the challenges posed by different fluid viscosities.
- Viscosity Compensation: Hydraulic systems often incorporate features to compensate for variations in fluid viscosity. For example, some hydraulic systems utilize pressure compensating valves that adjust the flow rate based on the viscosity of the fluid. This compensation ensures consistent performance across different operating conditions and fluid viscosities. Hydraulic cylinders work in conjunction with these compensation mechanisms to maintain precision and control, regardless of the fluid viscosity.
- Temperature Control: Fluid viscosity is highly dependent on temperature. Hydraulic cylinders employ various temperature control mechanisms to address the challenges posed by temperature-induced viscosity changes. Heat exchangers, coolers, and thermostatic valves are commonly used to regulate the temperature of the hydraulic fluid within the system. By controlling the fluid temperature, hydraulic cylinders can maintain the desired viscosity range, ensuring reliable and efficient operation.
- Efficient Filtration: Contaminants in hydraulic fluid can affect its viscosity and overall performance. Hydraulic systems incorporate efficient filtration systems to remove particles and impurities from the fluid. Clean fluid with the appropriate viscosity ensures optimal functioning of hydraulic cylinders. Regular maintenance and filter replacements are essential to uphold the desired fluid viscosity and prevent issues related to fluid contamination.
- Proper Lubrication: Different fluid viscosities can impact the lubrication properties within hydraulic cylinders. Lubrication is essential for minimizing friction and wear between moving parts. Hydraulic systems employ lubricants specifically formulated for the anticipated fluid viscosity range. Adequate lubrication ensures smooth operation and extends the lifespan of hydraulic cylinders, even in the presence of varying fluid viscosities.
In summary, hydraulic cylinders employ various strategies to handle the challenges associated with different fluid viscosities. By selecting appropriate fluids, incorporating viscosity compensation mechanisms, controlling temperature, implementing efficient filtration, and ensuring proper lubrication, hydraulic cylinders can accommodate variations in fluid viscosity. These measures enable hydraulic systems to deliver consistent performance, precise control, and efficient operation across different fluid viscosity ranges.

Bagaimanakah silinder hidraulik dapat menampung variasi dalam panjang lejang dan keperluan daya?
Silinder hidraulik direka bentuk untuk menampung variasi dalam panjang lejang dan keperluan daya, memberikan fleksibiliti dan kebolehsuaian untuk aplikasi yang berbeza. Ia boleh disesuaikan untuk memenuhi keperluan khusus dengan mempertimbangkan faktor seperti diameter omboh, diameter rod, tekanan hidraulik dan reka bentuk silinder. Berikut ialah penjelasan terperinci tentang bagaimana silinder hidraulik menampung variasi dalam panjang lejang dan keperluan daya:
1. Saiz dan Reka Bentuk Silinder:
– Silinder hidraulik didatangkan dalam pelbagai saiz dan reka bentuk untuk menampung panjang lejang dan keperluan daya yang berbeza. Diameter silinder, luas omboh dan diameter rod adalah faktor utama yang menentukan output daya. Diameter silinder dan luas omboh yang lebih besar boleh menghasilkan daya yang lebih besar, manakala diameter yang lebih kecil sesuai untuk aplikasi yang memerlukan daya yang lebih rendah. Dengan memilih saiz dan reka bentuk silinder yang sesuai, panjang lejang dan keperluan daya boleh ditampung dengan berkesan.
2. Konfigurasi Omboh dan Rod:
– Silinder hidraulik boleh direka bentuk dengan konfigurasi omboh dan rod yang berbeza untuk menampung variasi panjang lejang. Silinder tindakan tunggal mempunyai omboh tunggal dan boleh memberikan lejang dalam satu arah. Silinder tindakan berganda mempunyai omboh di kedua-dua belah pihak, yang membolehkan lejang dalam kedua-dua arah. Silinder teleskopik terdiri daripada berbilang peringkat yang boleh memanjang dan menarik balik, memberikan panjang lejang yang lebih panjang berbanding silinder standard. Dengan memilih konfigurasi omboh dan rod yang sesuai, panjang lejang yang diingini dapat dicapai.
3. Tekanan dan Aliran Hidraulik:
– Tekanan dan kadar aliran hidraulik yang dibekalkan kepada silinder memainkan peranan penting dalam menampung variasi keperluan daya. Meningkatkan tekanan hidraulik meningkatkan output daya silinder, membolehkannya mengendalikan keperluan daya yang lebih tinggi. Dengan melaraskan tekanan dan kadar aliran melalui injap dan pam hidraulik, output daya boleh dikawal dan dipadankan dengan keperluan khusus aplikasi.
4. Pengubahsuaian dan Jahitan:
– Silinder hidraulik boleh disesuaikan dan dijahit untuk memenuhi keperluan panjang lejang dan daya tertentu. Pengilang menawarkan pelbagai saiz silinder, panjang lejang dan kapasiti daya untuk dipilih. Di samping itu, silinder yang direka khas boleh dikeluarkan untuk disesuaikan dengan aplikasi unik dengan panjang lejang dan permintaan daya tertentu. Dengan bekerjasama rapat dengan pengeluar silinder hidraulik, adalah mungkin untuk mendapatkan silinder yang sepadan dengan keperluan panjang lejang dan daya yang diperlukan.
5. Berbilang Silinder dan Penyegerakan:
– Dalam aplikasi yang memerlukan daya yang tinggi atau panjang lejang yang lebih panjang, berbilang silinder hidraulik boleh digunakan secara gabungan. Dengan menyegerakkan pergerakan berbilang silinder melalui sistem hidraulik, panjang lejang dan output daya boleh ditingkatkan dengan berkesan. Penyegerakan boleh dicapai menggunakan penghubung mekanikal, kawalan elektronik atau litar hidraulik, memastikan pergerakan yang diselaraskan dan pengagihan daya merentasi silinder.
6. Pengesanan Beban dan Kawalan Tekanan:
– Sistem hidraulik boleh menggabungkan mekanisme pengesanan beban dan kawalan tekanan untuk menampung variasi keperluan daya. Sistem pengesanan beban memantau permintaan beban dan melaraskan tekanan hidraulik dengan sewajarnya, memastikan silinder memberikan daya yang diperlukan tanpa mengenakan daya yang berlebihan. Injap kawalan tekanan mengawal tekanan dalam sistem hidraulik, membolehkan kawalan dan pelarasan output daya yang tepat berdasarkan keperluan aplikasi.
7. Pertimbangan Keselamatan:
– Apabila menampung variasi dalam panjang lejang dan keperluan daya, adalah penting untuk mempertimbangkan faktor keselamatan. Silinder hidraulik hendaklah dipilih dan direka bentuk dengan margin keselamatan yang sesuai untuk mengendalikan beban yang tidak dijangka atau variasi dalam keadaan operasi. Mekanisme keselamatan seperti injap perlindungan beban lampau dan injap pelega tekanan boleh digabungkan untuk mencegah kerosakan atau kegagalan dalam situasi di mana had daya dilampaui.
Dengan mempertimbangkan faktor-faktor seperti saiz dan reka bentuk silinder, konfigurasi omboh dan rod, tekanan dan aliran hidraulik, pilihan penyesuaian, penyegerakan, pengesanan beban, kawalan tekanan dan pertimbangan keselamatan, silinder hidraulik dapat menampung variasi panjang lejang dan keperluan daya dengan berkesan. Fleksibiliti ini membolehkan silinder hidraulik disesuaikan untuk memenuhi permintaan khusus pelbagai aplikasi, memastikan prestasi dan kecekapan yang optimum.


editor by CX 2023-10-17