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用于最小电压运行的电热致动器的三层设计

Three-Layered Design of Electrothermal Actuators for Minimal Voltage Operation.

作者信息

Tibi Gal, Sachyani Keneth Ela, Layani Michael, Magdassi Shlomo, Degani Amir

机构信息

Technion Autonomous Systems Program, Technion Israel Institute of Technology, Haifa, Israel.

Casali Center of Applied Chemistry, Institute of Chemistry and the Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem, Jerusalem, Israel.

出版信息

Soft Robot. 2020 Oct;7(5):649-662. doi: 10.1089/soro.2018.0160. Epub 2020 Mar 10.

Abstract

By designing an actuator composed of thin layers with different coefficients of thermal expansion (CTE) together with an electrically conductive layer, the CTE mismatch can be utilized to produce soft electrothermal actuators (ETAs). These actuators have been typically implemented using only two layers, commonly relying on Timoshenko's analytic model that correlates the temperature to the actuator's curvature. In this study, we extend the analytic model to include the thermoelectric relation present in ETAs, that is, the conductive layer's properties with respect to the operation temperature. By applying the thermoelectric relation, a minimal voltage optimization can be applied to the analytic model. Using dimensionless analysis, we optimize the ETAs performance for both bi- and tri-layer ETAs with and without the thermal modeling. The bi-layer optimization not only predicts the maximal value for the bi-layer performance but also provides the optimal thickness of each layer for any couple of materials. We validate the tri-layer analytic model experimentally by measuring the curvature for different third layer thicknesses. Finally, we optimize the tri-layer design based on the analytic model, which can achieve an improvement in curvature per voltage of >3000% over the optimal bi-layer ETA.

摘要

通过设计一种由具有不同热膨胀系数(CTE)的薄层与导电层组成的致动器,CTE不匹配可用于制造软电热致动器(ETA)。这些致动器通常仅用两层实现,通常依赖于将温度与致动器曲率相关联的铁木辛柯解析模型。在本研究中,我们扩展了解析模型,以纳入ETA中存在的热电关系,即导电层相对于工作温度的特性。通过应用热电关系,可以对解析模型进行最小电压优化。使用无量纲分析,我们针对有无热建模的双层和三层ETA优化了ETA性能。双层优化不仅预测了双层性能的最大值,还为任何材料组合提供了每层的最佳厚度。我们通过测量不同第三层厚度的曲率,对三层解析模型进行了实验验证。最后,我们基于解析模型优化了三层设计,与最佳双层ETA相比,其每电压曲率可提高>3000%。

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