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Analysis, Design, and Implementation of a Spatially Nested Magnetic Integration Method for Inductive Power Transfer Systems

机译:感应电力传输系统空间嵌套磁集成方法的分析,设计和实现

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摘要

Inductive power transfer (IPT) technology uses large resonant inductors as compensation components. In this article, a spatially nested magnetic integration method is proposed to integrate discrete inductors into an IPT transformer structure. Unipolar transformer coils are employed and are decoupled orthogonally from a nested solenoidal inductance coil for various misalignment cases. The variations of the coupling coefficients and the magnetic flux density distribution are presented with the three-dimensional finite-element modeling tool. An LCC series compensation circuit is selected to implement the proposed method with an optimal efficiency design. A 4-kW prototype with a 160 mm airgap is implemented to demonstrate the validity of the proposed method. The experimental results show that the compact structure retains the outstanding performance and avoids significant cross coupling for lateral, vertical, and axial misalignment. The maximum conversion efficiency of the proposed system is 96.7% at full output power and stays above 91.6% throughout the misalignment range.
机译:电感电力传输(IPT)技术使用大谐振电感器作为补偿组件。在本文中,提出了一种空间嵌套的磁积分方法,将离散电感器集成到IPT变压器结构中。使用单极变压器线圈,并且从嵌套的电磁电感线圈上垂直地分离,用于各种未对准情况。耦合系数和磁通密度分布的变化用三维有限元建模工具呈现。选择LCC系列补偿电路以实现具有最佳效率设计的提出方法。实施具有160 mm气隙的4-KW原型以证明所提出的方法的有效性。实验结果表明,紧凑型结构保留了出色的性能,避免了横向,垂直和轴向错位的重要交叉耦合。拟议系统的最大转换效率为96.7%,全输出功率为96.7%,在未对准范围内保持91.6%以上。

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