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Polymeric Thermal Microactuator With Embedded Silicon Skeleton: Part I—Design and Analysis

机译:嵌入式硅骨架的聚合物热微致动器:第一部分—设计与分析

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This paper presents the modeling of a new design of a polymeric thermal microactuator with an embedded meander-shaped silicon skeleton. The design has a skeleton embedded in a polymer block. The embedded skeleton improves heat transfer to the polymer and reinforces it. In addition, the skeleton laterally constrains the polymer to direct the volumetric thermal expansion of the polymer in the actuation direction. The complex geometry and multiple-material composition of the actuator make its modeling very involved. In this paper, the main focus is on the development of approximate electrothermal and thermoelastic models to capture the essence of the actuator behavior. The approximate models are validated with a fully coupled multiphysics finite element model and with experimental testing. The approximate models can be useful as an inexpensive tool for subsequent design optimization. Evaluation, using the analytical and numerical models, shows that the polymer actuator with the embedded skeleton outperforms its counterpart without a skeleton, which is in terms of heat transfer and, thus, response time, actuation stress, and planarity.$hfill$ [2007-0193]
机译:本文介绍了一种新型的带有嵌入式曲折形硅骨架的聚合物热微致动器的设计模型。该设计具有嵌入聚合物块中的骨架。嵌入的骨架改善了向聚合物的热传递并增强了它。另外,骨架在横向上约束聚合物以在致动方向上引导聚合物的体积热膨胀。执行器的复杂几何形状和多种材料组成使其建模非常复杂。在本文中,主要的重点是开发近似的电热和热弹性模型,以捕获执行器行为的本质。近似模型通过完全耦合的多物理场有限元模型和实验测试进行了验证。近似模型可用作后续设计优化的廉价工具。使用分析模型和数值模型进行的评估显示,在框架的传热以及响应时间,致动应力和平面度方面,具有嵌入式骨架的聚合物致动器的性能要优于没有骨架的聚合物致动器。$ hfill $ [2007 -0193]

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