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DEVELOPMENT OF SMART MATERIAL - HYDRAULIC PUMPS AND ACTUATORS

机译:智能材料开发 - 液压泵和执行器

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Smart materials such as piezoelectrics and magnetostrictives produce mechanical power in a form that is improperly matched to many applications. When packaged in typical ways, these stiff materials have excess force but are deficient in displacement. Recent research has suggested that smart materials can be used for the pressurization and pump stage in electrohydrostatic actuators (EHAs). EHAs offer advantages over traditional centralized hydraulic systems by providing local pressurization in a closed fluid system and eliminating the need for distributed, high-pressure fluid lines. Given inherent material power densities, smart material-based EHAs could produce higher power output compared to electromagnetic actuators. High frequency, low displacement smart material actuation, typically operated in the range of 500 Hz, but in some cases much higher, is rectified via fluid flow to produce larger output displacements at lower frequencies. Valve limitations, mechanical compliances, and fluid compressibility account for significant losses in the pumps. Continuing previous research, this paper describes design approaches that address and attempt to minimize losses. Piezoelectric and magnetostrictive devices are compared, and the design and testing of magnetostrictive pumps is described in greater detail, with special considerations given to heat generation and improved efficiency.
机译:诸如压电和磁致伸缩性的智能材料以与许多应用相匹配的形式产生机械动力。当以典型方式包装时,这些硬质材料具有过量的力,但缺乏位移。最近的研究表明,智能材料可用于电疏水致动器(EHAS)中的加压和泵阶段。 EHA通过在封闭的流体系统中提供局部加压并消除对分布式高压流体管线的需求来提供传统集中式液压系统的优点。鉴于固有的材料功率密度,与电磁执行器相比,基于智能材料的EHA可以产生更高的功率输出。高频,低位移智能材料致动,通常在500Hz的范围内操作,但在某些情况下,通过流体流动整流以在较低频率下产生更大的输出位移。阀门限制,机械顺应性和流体压缩性占泵中的显着损失。继续以前的研究,本文介绍了地址和尝试最小化损失的方法。比较压电和磁致伸缩装置,并更详细地描述了磁致伸缩泵的设计和测试,具有发热和提高效率的特殊考虑因素。

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