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Investigation of active materials as driving elements of a Hydraulic Hybrid Actuator

机译:液压混合执行器驱动材料的活性材料研究

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In recent years, there have been growing applications of active materials, such as piezoelectrics and magnetostrictives, as actuators in the aerospace and automotive fields. Although these materials have high force and large bandwidth capabilities, their use has been limited due to their small stroke. The use of hydraulic amplification in conjunction with motion rectification is an effective way to overcome this problem and to develop a high force, large stroke actuator. In the hydraulic hybrid actuator concept, a hydraulic pump actuated by an active material is coupled to a conventional hydraulic cylinder, from which output work can be extracted. This actuation concept requires a high bandwidth active material with a moderate stroke. Both piezoelectrics, and magnetostrictives such as Terfenol-D and Galfenol are well suited as driving elements for this application, however, each material has its drawbacks. This paper presents a comparison of the performance of a piezoelectric, Terfenol-D and Galfenol element as the driving material in a hydraulic hybrid actuator. The performance of the actuator with each driving element is measured through systematic testing and the driving elements are compared based on input power required and actuator mass. For a pumping chamber of diameter 1" and a driving element of length 2", the maximum output power was measured to be 2.5 W for the Terfenol-D hybrid actuator and 1.75 W for the piezoelectric hybrid actuator.
机译:近年来,作为航空航天和汽车领域中的致动器,诸如压电和磁致伸缩等活性材料的应用不断增长。尽管这些材料具有较高的作用力和较大的带宽能力,但由于其较小的行程而限制了它们的使用。将液压放大与运动校正结合使用是克服此问题并开发出大力大行程执行器的有效方法。在液压混合执行器概念中,由活性材料驱动的液压泵与传统的液压缸相连,从中可以提取输出功。该致动概念需要具有中等行程的高带宽活性材料。压电和磁致伸缩材料(例如Terfenol-D和Galfenol)都非常适合作为此应用的驱动元件,但是每种材料都有其缺点。本文比较了压电,Terfenol-D和Galfenol元件作为液压混合执行器驱动材料的性能。通过系统测试来测量执行器与每个驱动元件的性能,并根据所需的输入功率和执行器质量对驱动元件进行比较。对于直径为1“的泵室和长度为2”的驱动元件,测得的最大输出功率对于Terfenol-D混合执行器为2.5 W,对于压电混合执行器为1.75W。

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