首页> 外文会议>ASME Conference on Smart Materials, Adaptive Structures and Intelligent Systems >3-D PRINTING OF DIELECTRIC ELECTROACTIVE POLYMER ACTUATORS AND CHARACTERIZATION OF DIELECTRIC FLEXIBLE MATERIALS
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3-D PRINTING OF DIELECTRIC ELECTROACTIVE POLYMER ACTUATORS AND CHARACTERIZATION OF DIELECTRIC FLEXIBLE MATERIALS

机译:介电电活性聚合物致动器的3-D印刷及介电柔性材料的表征

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Dielectric electroactive polymers are materials capable of mechanically adjusting their volume in response to an electrical stimulus. However, currently these materials require multi-step manufacturing processes which are not additive. This paper presents a novel 3D printed flexible dielectric material and characterizes its use as a dielectric electroactive polymer (DEAP) actuator. The 3D printed material was characterized electrically and mechanically and its functionality as a dielectric electroactive polymer actuator was demonstrated. The flexible 3-D printed material demonstrated a high dielectric constant and ideal stress-strain performance in tensile testing making the 3-D printed material ideal for use as a DEAP actuator. The tensile stress-strain properties were measured on samples printed under three different conditions (three printing angles 0°, 45° and 90°). The results demonstrated the flexible material presents different responses depending on the printing angle. Based on these results, it was possible to determine that the active structure needs low pre-strain to perform a visible contractive displacement when voltage is applied to the electrodes. The actuator produced an area expansion of 5.48% in response to a 4.3 kV applied voltage, with an initial pre-strain of 63.21% applied to the dielectric material.
机译:介电电活性聚合物是能够响应于电刺激机械地调节其体积的材料。然而,目前这些材料需要多步制造过程,这些过程不是添加剂。本文介绍了一种新型3D印刷柔性介电材料,其用作介电电活性聚合物(DEAP)致动器的用途。 3D印刷材料被电动且机械地表征,并且证明了作为介电电活性聚合物致动器的其功能。柔性3-D印刷材料在拉伸试验中展示了高介电常数和理想的应力 - 应变性能,使得3-D印刷材料理想用作DEAP执行器。在三种不同条件下印刷的样品上测量拉伸应力 - 应变性能(三个印刷角0°,45°和90°)。结果表明,柔性材料根据印刷角度呈现不同的响应。基于这些结果,可以确定当电压施加到电极时,可以确定主动结构需要低预载以执行可见的收缩位移。致动器响应于4.3kV施加电压,致动器产生5.48%的区域扩展,初始预株63.21%施加到介电材料。

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