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Optimum Design of Polymeric Thermal Microactuator With Embedded Silicon Skeleton

机译:嵌入式硅骨架聚合物热微致动器的优化设计

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An SU-8 polymeric actuator with an embedded silicon skeleton has recently been reported to have good actuation performance. As a composite, it has room for performance improvements by design. Yet, it has not been optimized for the best performance. In this paper, we perform a parametric study, based on analytical and finite-element models, to find the optimum design. Properties and actuation capabilities are related to design parameters of the composite. In a design case to maximize work density, the parametric study found an optimum design consisting of 70% SU-8 and 30% Si. As compared with pure SU-8, the optimum composite design has a Young's modulus that is 2.2 times higher, a thermal stress that is 2.5 times higher, a work density that is 2.6 times higher, a coefficient of thermal expansion that is 5% higher, and a shorter thermal-response time. The optimum design can deliver a maximum strain of 2.77% and a maximum stress of 196 MPa at the maximum operating temperature of 200 $^{circ} hbox{C}$. Moreover, it has a rather high work density of 2.71 $ hbox{MJ}/hbox{m}^{3}$, which is comparable with other thermal phase-change actuators. In conclusion, this polymeric composite actuator is very powerful for microactuation. $hfill$[2009-0295]
机译:据报道,具有嵌入式硅骨架的SU-8聚合物致动器具有良好的致动性能。作为复合材料,它具有通过设计提高性能的空间。但是,尚未针对最佳性能进行优化。在本文中,我们基于分析模型和有限元模型进行参数研究,以找到最佳设计。特性和致动能力与复合材料的设计参数有关。在最大化工作密度的设计案例中,参数研究发现了由70%SU-8和30%Si组成的最佳设计。与纯SU-8相比,最佳复合材料设计的杨氏模量高2.2倍,热应力高2.5倍,工作密度高2.6倍,热膨胀系数高5%。 ,并且热响应时间更短。最佳设计可以在最高工作温度为200°C的情况下提供2.77%的最大应变和196 MPa的最大应力。此外,它具有2.71 $ hbox {MJ} / hbox {m} ^ {3} $的相当高的工作密度,可与其他热相变致动器媲美。总之,该聚合物复合致动器对于微致动非常强大。 $ hfill $ [2009-0295]

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