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用于折叠式液晶弹性体致动器设计的拓扑优化

Topology optimization for the design of folding liquid crystal elastomer actuators.

作者信息

Fuchi Kazuko, Ware Taylor H, Buskohl Philip R, Reich Gregory W, Vaia Richard A, White Timothy J, Joo James J

机构信息

Aerospace Systems Directorate, Air Force Research Laboratory, Wright-Patterson AFB, OH 45433-7531, USA.

出版信息

Soft Matter. 2015 Oct 7;11(37):7288-95. doi: 10.1039/c5sm01671a. Epub 2015 Aug 13.

Abstract

Aligned liquid crystal elastomers (LCEs) are capable of undergoing large reversible shape change in response to thermal stimuli and may act as actuators for many potential applications such as self-assembly and deployment of micro devices. Recent advances in LCE patterning tools have demonstrated sub-millimetre control of director orientation, enabling the preparation of materials with arbitrarily complex director fields. However, without design tools to connect the 2D director pattern with the activated 3D shape, LCE design relies on intuition and trial and error. Here we present a design methodology to generate reliable folding in monolithic LCEs designed with topology optimization. The distributions of order/disorder and director orientations are optimized so that the remotely actuated deformation closely matches a target deformation for origami folding. The optimal design exhibits a strategy to counteract the mechanical frustration that may lead to an undesirable deformation, such as anti-clastic bending. Multi-hinge networks were developed using insights from the optimal hinge designs and were demonstrated through the fabrication and reversible actuation of a self-folding box. Topology optimization provides an important step towards leveraging the opportunities afforded by LCE patterning into functional designs.

摘要

取向液晶弹性体(LCEs)能够响应热刺激而发生大幅度的可逆形状变化,并且可作为许多潜在应用(如微器件的自组装和展开)的致动器。LCE图案化工具的最新进展已证明能对指向矢取向进行亚毫米级控制,从而能够制备具有任意复杂指向矢场的材料。然而,由于缺乏将二维指向矢图案与激活后的三维形状相联系的设计工具,LCE的设计依赖于直觉和反复试验。在此,我们提出一种设计方法,用于在通过拓扑优化设计的整体式LCE中产生可靠的折叠。对有序/无序分布和指向矢取向进行优化,以便远程驱动的变形与折纸折叠的目标变形紧密匹配。最优设计展示了一种应对可能导致不良变形(如双曲率弯曲)的机械挫折的策略。利用最优铰链设计的见解开发了多铰链网络,并通过自折叠盒的制造和可逆驱动进行了演示。拓扑优化为将LCE图案化带来的机遇转化为功能设计迈出了重要一步。

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