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Finite element modelling and experimental characterization of an electro-thermally actuated silicon-polymer micro gripper

机译:电热致动硅聚合物微抓手的有限元建模和实验表征

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摘要

This paper presents simulation and experimental characterization of an electro-thermally actuated micro gripper. This micro actuator can conceptually be seen as a bi-morph structure of SU-8 and silicon, actuated by thermal expansion of the polymer. The polymer micro gripper with an embedded comb-like silicon skeleton is designed to reduce unwanted out-of-plane bending of the actuator, while offering a large gripper stroke. The temperature and displacement field of the micro gripper structure is determined using a two-dimensional finite element analysis. This analysis is compared to experimental data from steady-state and transient measurements of the integrated heater resistance, which depends on the average temperature of the actuator. The stability of the polymer actuator is evaluated by recording the transient behaviour of the actual jaw displacements. The maximum single jaw displacement of this micro gripper design is 34 μm at a driving voltage of 4 V and an average actuator temperature of 170 ℃. The transient thermal response is modelled by a first-order system with a characteristic time constant of 11.1 ms. The simulated force capability of the device is 0.57 mN per μm jaw displacement.
机译:本文介绍了电热致动微型夹持器的仿真和实验特性。从概念上讲,这种微致动器可以看作是SU-8和硅的双晶结构,通过聚合物的热膨胀来致动。具有嵌入式梳状硅骨架的聚合物微型抓取器旨在减少执行器的不必要的平面外弯曲,同时提供较大的抓取器行程。微型夹具结构的温度和位移场是使用二维有限元分析确定的。将该分析结果与来自集成加热器电阻的稳态和瞬态测量的实验数据进行比较,该数据取决于执行器的平均温度。通过记录实际钳口位移的瞬态行为来评估聚合物执行器的稳定性。在4 V的驱动电压和170℃的平均执行器温度下,这种微型夹具的最大单爪位移为34μm。瞬态热响应由一阶系统建模,其特征时间常数为11.1 ms。该设备的模拟受力能力为每μm颚位移0.57 mN。

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