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Influence of variable plate separation on fringing electric fields in parallel-plate capacitors

机译:可变板间距对平行板电容器边缘电场的影响

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Measurement of bulk physical properties in dielectric materials is typically performed using a parallel-plate capacitor configuration, where a dielectric material is placed between two conducting plates and the complex permittivity is found by measuring capacitance and conductance between the electrodes. Fringing electric fields exist between any two parallel conducting plates of finite length and the additional capacitance these fields add is not easily accounted for. It is important to account for edge effects in many capacitive sensing applications in order to ensure accurate results. Unfortunately, these edge effects are not easily quantifiable and are subject to change with varying sensor geometries. A quantitative relationship between fringing field strength and sensor geometry will improve the accuracy of many capacitive sensing applications. This work presents finite element simulations showing the influence of variable plate separation on fringing field effects in a system designed to measure the dielectric properties of a fluid. A quantitative relationship is established that relates the sensor response to the plate distance and fluid position. This relationship can be applied to experimental data in order to compensate for any edge effects present in the system.
机译:电介质材料中整体物理性能的测量通常使用平行板电容器配置进行,其中将电介质材料放置在两个导电板之间,并通过测量电极之间的电容和电导来求出复介电常数。边缘电场存在于任意两个有限长度的平行导电板之间,并且这些电场增加的额外电容不易解决。重要的是要考虑许多电容式感应应用中的边缘效应,以确保获得准确的结果。不幸的是,这些边缘效应难以量化,并且会随着传感器几何形状的变化而变化。边缘场强度与传感器几何形状之间的定量关系将提高许多电容式传感应用的精度。这项工作提出了有限元模拟,显示了在设计用于测量流体介电特性的系统中可变板分离对边缘场效应的影响。建立了定量关系,该关系将传感器响应与板距离和流体位置相关联。该关系可以应用于实验数据,以补偿系统中存在的任何边缘效应。

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