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High Frequency PCB Winding Transformer Design for On Board Battery Charger

机译:高频PCB绕组变压器设计用于电池充电器

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Traditionally, copper sheet or litz-wire transformers are used in on board battery charger systems to reduce the winding loss. However, the complexity of manufacturing the transformer often involves extensive labor work. With advanced wide band gap devices, the switching frequency can be greatly increased, providing the opportunity to use PCB as transformer windings. Also, the use of a novel two stage structure and control can greatly reduce the required resonant inductance, providing the opportunity to integrate leakage into the transformer serving as resonant inductor. In this paper, the impact of magnetizing inductance and fringing effect on PCB winding loss is analyzed and a novel transformer structure is proposed for the second stage of the on board battery charger so that leakage inductance can be controlled. By adopting center post as leakage path, leakage flux is well confined within the center post, avoiding additional eddy current loss. A transformer loss model is built and a design procedure is provided to get the lowest loss within the target footprint. A 6.6kW 500kHz CLLC resonant converter prototype with 97.7% efficiency is built to verify the feasibility of the proposed transformer.
机译:传统上,铜板或LITZ-钢丝变压器用于电池充电器系统,以减少绕组损耗。然而,制造变压器的复杂性往往涉及广泛的劳动力工作。通过先进的宽带隙装置,可以大大增加开关频率,提供使用PCB作为变压器绕组的机会。此外,使用新型两个阶段结构和控制可以大大减少所需的谐振电感,提供将泄漏集成到用作谐振电感器的变压器中的机会。在本文中,分析了磁化电感和流苏效应对PCB绕组损耗的影响,并提出了一种新型变压器结构,用于换机器电池充电器的第二级,从而可以控制漏电感。通过采用中心柱作为泄漏路径,泄漏通量很大限制在中心柱内,避免额外的涡流损耗。构建了变压器损耗模型,提供了设计过程以获得目标足迹内的最低损耗。 A 6.6kW 500kHz CLLC谐振转换器原型具有97.7%的效率,以验证所提出的变压器的可行性。

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