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Finite-Element-Integral Equation Full-Wave Multisolver for Efficient Modeling of Resonant Wireless Power Transfer

机译:有限元积分方程全波多解算器,用于共振无线功率传输的高效建模

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摘要

With resonant wireless power transfer systems in operation, objects and/or humans having divers material properties come into the vicinity of the resonant coils. To model such systems efficiently, a novel full-wave multisolver is developed where the tangentially continuous vector finite element (FE) method is coupled with a method of moments (MoM) technique. The MoM technique is based on an electric field integral equation specifically designed to model the singular behavior of the thin coil wires, while the FE method is used to model the scattered field due to material inhomogeneities. A simplified sequential solver similar to the scattered field formulation is derived from the linear system of the multisolver in order to be applied as an efficient preconditioner, thereby speeding up the solution time significantly. The impedance change due to the material inhomogeneities can be calculated directly by applying the reaction concept. This ensures that the accuracy of the impedance change does not depend on the relative magnitude of the impedance change compared with the total impedance. The performance of the multisolver is illustrated by solving a test problem with a helical coil and a dielectric sphere with moderate conductivity, and comparing the multisolver results with the full FE solutions.
机译:在运行中的谐振无线电力传输系统中,具有不同材料特性的物体和/或人进入谐振线圈附近。为了有效地对此类系统进行建模,开发了一种新颖的全波多求解器,其中,切向连续矢量有限元(FE)方法与矩量法(MoM)技术结合在一起。 MoM技术基于专门设计用于建模细线圈导线奇异行为的电场积分方程,而有限元方法则用于建模由于材料不均匀性而产生的散射场。类似于散射场公式的简化顺序求解器是从多求解器的线性系统中派生出来的,以便用作有效的预处理器,从而显着加快了求解时间。可以通过应用反应原理直接计算由于材料不均匀性引起的阻抗变化。这确保了阻抗变化的精度与总阻抗相比,不取决于阻抗变化的相对大小。通过解决螺旋线圈和电导率中等的电介质球的测试问题,并将多求解器的结果与完整的有限元解决方案进行比较,来说明多求解器的性能。

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