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Comparison of Litz Wire and PCB Inductor Designs for Bidirectional Transformerless EV Charger with High Efficiency

机译:高效率的LITZ电线和PCB电感设计的比较效率高效率

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Inductor design can be a process of repetitive core searching and iterative turn and airgap calculation, where every decision to be made involves a trade-off in terms of power loss, cost and power density. This paper deeply discusses the inductor design for a transformerless DC EV battery charger where inductance and operating DC bias are required to be high ($mathrm{500} mu mathrm{H}$ and 32 A). The design of the charger's filter is discussed to provide the values of the passive components and to motivate the inductor design. Two commonly used but seldom compared winding options, Litz wire and printed circuit board, are both designed and examined with respect to power loss and difficulty of the fabrication. Through tuning of the trace width and copper weight, the PCB design can provide similar performance to the Litz wire configuration, at higher cost and increased manufacturing complexity. In order to verify the text-colorblacktheoretical calculations, high-fidelity 3D finite element analysis is performed for both inductor types. After comparison, the Litz wire implementation was chosen for its reduction in power losses, cost and manufacturing complexity. The Litz wire inductor is assembled and tested on a transformerless DC charger platform with ≥ 99% efficiency at 11 kW and ≥98% efficiency at up to 22 kW.
机译:电感器设计可以是重复核心搜索和迭代转弯和气隙计算的过程,其中每个决定都涉及功率损耗,成本和功率密度的折衷。本文深入讨论了无变压器直流EV电池充电器的电感设计,其中电感和操作直流偏置是高的( $ mathrm {500} mathrm {h} $ 和32 a)。讨论充电器过滤器的设计以提供无源元件的值并激励电感器设计。两个常用但很少比较的卷绕选项,LITZ线和印刷电路板都设计和检查了制造的功率损耗和难度。通过调整迹线宽度和铜重量,PCB设计可以为LITZ线配置提供类似的性能,以更高的成本和增加的制造复杂性。为了验证文本 - 色块理论计算,对两个电感类型执行高保真3D有限元分析。比较之后,选择了LITZ线实现,以降低功率损耗,成本和制造复杂性。将LITZ线电感器组装并在变压器直流充电器平台上进行测试,效率为11千瓦,效率≥98%,高达22千瓦。

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