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Analysis and Design of Fully Integrated Planar Magnetics for Primary-Parallel Isolated Boost Converter

机译:一次并联隔离Boost变换器全集成平面磁性分析与设计

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摘要

A high efficient planar integrated magnetics (PIM) design approach for primary-parallel isolated boost converters is presented. All magnetic components in the converter including two input inductors and two transformers with primary-parallel and secondary-series windings are integrated into an E-I-E core geometry, reducing the total ferrite volume and core loss. The transformer windings are symmetrically distributed into the outer legs of E-cores and the inductor windings are wound on the center legs of E-cores with air gaps. Therefore, the inductor and the transformer can be operated independently. Due to the low reluctance path provided by the shared I-core, the two input inductors can be integrated independently, and also the two transformers can be partially coupled each other. Detailed characteristics of the integrated structure have been studied in this paper. AC losses in the windings and the leakage inductance of the transformer are kept low by interleaving the primary and secondary turns of the transformers substantially. Because of the combination of inductors and transformers, maximum output power capability of the fully integrated module needs to be investigated. Winding loss, core loss and switching loss of MOSFETs are analyzed in-depth in this work as well. To verify the validity of the design approach, a 2-kW prototype converter with two primary power stages is implemented for a fuel cell fed traction applications with 20-50 V input and 400-V output. An efficiency of 95.9% can be achieved during 1.5-kW nominal operating conditions. Experimental comparisons between the PIM module and three separated cases have illustrated the PIM module has advantages of lower footprint and higher efficiencies.
机译:提出了一种用于初级-并联隔离式升压转换器的高效平面集成磁性(PIM)设计方法。转换器中的所有磁性元件(包括两个输入电感器和两个具有一次并联和二次系列绕组的变压器)都集成到E-I-E磁芯几何形状中,从而减少了总铁氧体体积和磁芯损耗。变压器绕组对称地分布在E型铁芯的外部支脚中,而电感器绕组则通过气隙缠绕在E型铁芯的中间支脚上。因此,电感器和变压器可以独立操作。由于共享I磁芯提供的磁阻路径较低,因此两个输入电感器可以独立集成,并且两个变压器也可以部分相互耦合。本文研究了集成结构的详细特性。通过基本交织变压器的初级和次级绕组,可以使绕组中的交流损耗和变压器的漏感保持较低。由于电感器和变压器的结合,需要研究完全集成模块的最大输出功率能力。在这项工作中,还对MOSFET的绕组损耗,铁心损耗和开关损耗进行了深入分析。为了验证设计方法的有效性,针对具有20-50 V输入和400 V输出的燃料电池供电牵引应用,实现了具有两个主功率级的2kW原型转换器。在1.5 kW的额定工作条件下,效率可达到95.9%。通过对PIM模块和三个分离的外壳进行实验比较,可以看出PIM模块具有占地面积小和效率高的优点。

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