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Multi-actuated functionally graded piezoelectric micro-tools design: A multiphysics topology optimization approach

机译:多级功能梯度压电微型工具设计:一种多物理场拓扑优化方法

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Micro-tools offer significant promise in a wide range of applications Such as cell Manipulation, microsurgery, and microanotechnology processes. Such special micro-tools consist of multi-flexible structures actuated by two or more piezoceramic devices that must generate output displacements and forces lit different specified points of the domain and at different directions. The micro-tool Structure acts as a mechanical transformer by amplifying and changing the direction of the piezoceramics Output displacements. The design of these micro-tools involves minimization of the coupling among movements generated by various piezoceramics. To obtain enhanced micro-tool performance, the concept of multifunctional and functionally graded materials is extended by, tailoring elastic and piezoelectric properties Of the piezoceramics while simultaneously optimizing the multi-flexible structural configuration using multiphysics topology optimization. The design process considers the influence of piezoceramic property gradation and also its polarization sign. The method is implemented considering continuum material distribution with special interpolation of fictitious densities in the design domain. As examples, designs of a single piezoactuator, an XY nano-positioner actuated by two graded piezoceramics, and a micro-gripper actuated by three graded piezoceramics are considered. The results show that material gradation plays an important role to improve actuator performance, which may also lead to optimal displacements and coupling ratios with reduced amount of piezoelectric material. The present examples are limited to two-dimensional models because many of the applications for Such micro-tools are planar devices. Copyright (c) 2008 John Wiley & Sons, Ltd.
机译:微型工具在诸如细胞处理,显微外科手术和显微/纳米技术过程等广泛的应用中提供了广阔的前景。这种特殊的微型工具由多个柔性结构组成,这些结构由两个或多个压电陶瓷设备驱动,这些设备必须产生输出位移,并在不同的指定点和不同方向上照射力。微型工具结构通过放大和更改压电陶瓷输出位移的方向来充当机械变压器。这些微型工具的设计涉及使各种压电陶瓷所产生的运动之间的耦合最小化。为了获得增强的微型工具性能,通过定制压电陶瓷的弹性和压电特性来扩展多功能和功能渐变材料的概念,同时使用多物理场拓扑优化来优化多柔韧性结构。设计过程考虑了压电陶瓷性能等级的影响及其极化符号。该方法是在设计域中考虑虚拟材料的特殊内插法考虑连续材料分布而实现的。作为示例,考虑单个压电致动器,由两个分级压电陶瓷致动的XY纳米定位器和由三个分级压电陶瓷致动的微型夹具的设计。结果表明,材料渐变在提高执行器性能方面起着重要作用,这也可能导致最佳位移和耦合比,同时减少压电材料的数量。本示例限于二维模型,因为此类微型工具的许多应用是平面设备。版权所有(c)2008 John Wiley&Sons,Ltd.

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