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The role of piezoceramic microactuation for advanced mobility

机译:压电陶瓷微驱动对高级迁移的作用

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This paper presents the potential role of piezoceramic microactuation in micro-robotics for future space missions, e.g. unmanned sample-return missions to Mars, in search of life or evidence of prebiotic materials. The focus of the paper is on the advanced mobility with the desired characteristics of high force, displacement, and operability over a wide temperature range, at the cost of lowest possible mass, volume, and power. A comparison of the various actuation technologies including piezoceramic, shape memory alloys, polymeric actuators and magnetostrictive materials is presented. The comparison suggests piezoceramics to be the most promising candidate. The concept of a flexible microactuator based on tailored films of lead lanthanum zirconate titanate, PLZT, deposited on flexible substrates is described. Such flexible microactuators are expected to offer a multifold enhancement in the force and displacement capabilities over those of the current state-of-the-art actuators based on bulk ceramic materials. Of special interest is the promise of high efficiency actuation from an optimized thin film based flexible bimorph structure by contact-less optical activation.
机译:本文介绍了压电陶瓷微致动在微型机器人中的潜在作用,例如未来的太空任务。寻找生命或益生元材料的证据的无人样品返回火星任务。本文的重点是在具有尽可能高的质量,体积和功率的代价的情况下,具有在宽温度范围内具有高力,高位移和可操作性的所需特性的先进机动性。介绍了各种致动技术的比较,包括压电陶瓷,形状记忆合金,聚合物致动器和磁致伸缩材料。比较表明,压电陶瓷是最有前途的候选人。描述了基于沉积在柔性基板上的锆钛酸铅镧镧PLZT的定制膜的柔性微致动器的概念。与基于散装陶瓷材料的当前最先进的致动器相比,这种柔性微致动器有望在力和位移能力方面提供多种提高。特别令人感兴趣的是通过无接触光学激活从优化的基于薄膜的柔性双压电晶片结构实现高效率致动的承诺。

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