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Variable Gap Sealing Technology of a Hydraulic Cylinder Based on Magnetic Shape Memory Alloy

机译:基于磁形记忆合金的液压缸的可变间隙密封技术

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The synergistic control of resistance reduction and sealing poses challenges to enhancing the rapid dynamic response ability of servo hydraulic cylinders; the key to solving this problem is effectively controlling the sealing gap value. In this study, a micro-variation between the hydraulic cylinder and the piston based on the disadvantage of conventional seals, constant gap seals, and lip gap seals was constructed; MSMA assist support blocks were designed on the piston to form a gap seal strip; then, the sealing gap value could be changed by controlling the magnetic field intensity. Simultaneously, the effects of magnetic field strength, parts-manufacturing precision, temperature, and hysteresis on the micro-variation in the MSMA were analyzed, and effective solutions were proposed. Finally, experiments on the magnetic field, temperature, and hysteresis were conducted by the measurement system. The results showed that the variable value of the sealing gap with the MSMA is feasible under ideal conditions, and can effectively change the amount of MSMA expansion by controlling the magnetic field strength, temperature, preload, etc., and then change the amount of the sealing gap of the hydraulic cylinder. This is the key to achieving friction and sealing control, which plays a crucial and active role in improving the efficiency of hydraulic systems. However, the impact of hysteresis effects cannot be ignored, which will be the main problem to be solved in the future.
机译:抗性降低和密封的协同控制构成了提高伺服液压缸的快速动态响应能力的挑战;解决这个问题的关键是有效地控制密封间隙值。在该研究中,构造了基于传统密封件,恒定间隙密封件和唇形间隙密封件的缺点的液压缸和活塞之间的微变化; MSMA辅助支撑块设计在活塞上,以形成间隙密封条;然后,通过控制磁场强度可以改变密封间隙值。同时,分析了磁场强度,零件制造精度,温度和滞后对MSMA的微变量的影响,提出了有效的溶液。最后,通过测量系统进行磁场,温度和滞后的实验。结果表明,在理想条件下,MSMA的密封间隙的可变值可行,可以通过控制磁场强度,温度,预载等,有效地改变MSMA膨胀量,然后改变液压缸的密封间隙。这是实现摩擦和密封控制的关键,这在提高液压系统的效率方面起着至关重要的作用。然而,滞后效应的影响是不忽视的,这将来是未来要解决的主要问题。

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