High speed operation of the composite shape memory effect microactuator: computer modelling and experiment

P. Lega, Sergey R. Romanov, A. Orlov, A. Kartsev, A.V. Prokunin, Nikita Yu. Kataev, V. Koledov
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引用次数: 3

Abstract

the kinetic properties and high-speed processes during phase transformations and related effects of giant deformations in micro- and nanosamples of functional nanomaterials in alternating electric and thermal fields have been studied. Theoretically and experimentally studied the processes of controlled deformation (activation) and heat distribution at small sample sizes, in which the manifestation of such phenomena as thermoelastic martensitic phase transition and associated shape memory effect (SME) is possible. Using the focused ion beam method, samples of composite nanotweezers based on the Ti2NiCu alloy with SME were created. A computing model of the speedwork of a composite actuator has been constructed and the dependence of the maximum activation frequency on the linear dimensions of the micro-actuator has been determined. An experimental study of the speedwork of the microactuator was carried out using scanning electron microscopy. The activation of the microactuator was achieved by heating by passing electric current pulses through it. The operation of the microactuator at frequencies up to 8 kHz is demonstrated. A design of the nanotweezers has been created, which for the first time makes it possible to work with thermal drift almost zero (a few tens nanometers), which is a very important aspect in the three-dimensional manipulation of the nanoobjects.
复合形状记忆效应微致动器的高速运行:计算机建模与实验
研究了功能纳米材料微纳米样品在交变电场和热场作用下的相变动力学特性、高速过程及大变形的相关效应。从理论上和实验上研究了在小样本尺寸下可控变形(激活)和热分布过程,其中热弹性马氏体相变和相关形状记忆效应(SME)等现象的表现是可能的。采用聚焦离子束法制备了含SME的Ti2NiCu合金复合纳米镊子样品。建立了复合驱动器速度功的计算模型,确定了最大激活频率与微驱动器线性尺寸的关系。利用扫描电镜对微驱动器的速度功进行了实验研究。微致动器的激活是通过电流脉冲加热实现的。演示了微执行器在高达8 kHz频率下的操作。一种纳米镊子的设计已经被创造出来,它第一次使热漂移几乎为零(几十纳米)的情况下工作成为可能,这是纳米物体三维操作的一个非常重要的方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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