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Simulation of Low-Frequency Magnetic Fields in Automotive EMC Problems

机译:汽车EMC问题中的低频磁场模拟

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This paper presents a computationally efficient method for solving automotive low-frequency electromagnetic compatibility (EMC) problems by using integral equations. We consider the interaction of magnetic fields with thin, finite, conducting 3-D metallic structures, obtaining the fields radiated by these structures by using single- and double-layer equivalent currents. Our proposed numerical solution is unique in its representation of equivalent currents as the sum of solenoidal and nonsolenoidal components found using the method of moments (MoM) in two steps: first, the solenoidal currents are found using loop basis functions, after which the nonsolenoidal currents are found. Decomposing the equivalent currents into solenoidal and nonsolenoidal components provides a total solution that is computationally efficient for problems dominated by magnetic fields. We validated this numerical electromagnetic solution against semianalytical solutions and measured data and illustrated its applicability by analyzing three practical automotive problems. We then analyzed the magnetic fields generated by a power cable inside a car, suggested a methodology for optimizing the locations of antennas for smart-entry systems, and studied the EMC implications of an inductive-charging system in an electric vehicle.
机译:本文提出了一种计算有效的方法,通过使用积分方程式来解决汽车低频电磁兼容性(EMC)问题。我们考虑磁场与薄的,有限的,导电的3D金属结构的相互作用,并通过使用单层和双层等效电流来获得这些结构辐射的场。我们提出的数值解决方案的独特之处在于,它等效地表示为使用矩量法(MoM)在两个步骤中找到的螺线管分量和非螺线管分量的总和:首先,使用回路基函数找到螺线管电流,然后非螺线管电流被发现。将等效电流分解为螺线管和非螺线管组件可提供一种整体解决方案,该解决方案在解决磁场主导的问题方面在计算上非常有效。我们针对半解析解和测量数据验证了该数值电磁解,并通过分析三个实际的汽车问题说明了其适用性。然后,我们分析了车内电源线产生的磁场,提出了优化智能进入系统天线位置的方法,并研究了电动汽车中感应充电系统的EMC含义。

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