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Quantitative Electrode Design Modeling of an Electroadhesive Lifting Device Based on the Localized Charge Distribution and Interfacial Polarization of Different Objects

机译:基于局部电荷分布和不同物体界面极化的电粘性提升装置的定量电极设计建模

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Electroadhesive devices can lift materials of different shapes and various types using the electrostatic force developed at the interface between the device and the object. More specifically, the electrical potential generated by the device induces opposite charges on the object to give electrostatic Maxwell force. Although this technology has a great deal of potential, the key design factors based on the fundamental principles of interfacial polarization have yet to be clearly identified. In this study, we identify that the lifting force is quantitatively related to the total length of the boundary edges of the electrodes, where the induced charges are selectively concentrated. We subsequently propose a model equation that can predict the electrostatic lifting forces for different object materials as a function of the applied voltage, impedance, and electrode-boundary length. The model is based on the fact that the amount of induced charges should be concentrated where the equipotential field distance is minimal. We report that the impedance magnitude is correlated with the electroadhesive lifting forces by analyzing the impedance characteristics of objects made of different materials (e.g., paper, glass, or metal), as attached in situ to the electroadhesive device.
机译:电粘附器件可以使用在设备和物体之间的界面处产生的静电力提升不同形状和各种类型的材料。更具体地,由装置产生的电势引起对象上的相反电荷以提供静电麦克风力。虽然这项技术具有很大的潜力,但基于界面极化基本原则的关键设计因素尚未明确识别。在该研究中,我们认为提升力与电极边界边缘的总长度定量相关,其中诱导的电荷选择性地浓缩。我们随后提出了一种模型方程,其可以预测不同物体材料的静电提升力作为施加的电压,阻抗和电极边界长度的函数。该模型基于诱导电荷的量应集中在等电位场距离最小的情况下。我们认为阻抗幅度通过分析由不同材料(例如纸张,玻璃或金属)制成的物体的阻抗特性,如原位连接到电涂粘附装置。

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