全电动飞机低温四开关降压-升压变换器设计

Yuqi Wei, M. Hossain, A. Stratta, H. Mantooth
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引用次数: 1

摘要

为了提高电动飞机系统的效率性能,采用了高效的低温冷却超导电缆和电机。如果电力电子变换器能够在低温下工作,则可以进一步提高系统的整体性能。采用各类半导体中低温综合性能最好的氮化镓(GaN)高电子迁移率晶体管(HEMT)设计功率变换器。由于单个GaN HEMT的电流限制,设计了一个在每个开关位置并联三个GaN HEMT的半桥功率模块。讨论了电路布局的考虑,以保证电路的寄生性和均衡的共流工作。基于变换器的功率损耗和尺寸模型,讨论了基于遗传算法的四开关降压变换器优化设计。给出了不同工况下的理论效率性能。通过双脉冲测试(DPT)对所设计的半桥功率模块的性能进行了验证。通过对电源模块的热测试,验证了并联器件的对称布局设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cryogenic Four-switch Buck-Boost Converter Design for All Electric Aircraft
To improve the electric aircraft system efficiency performance, the efficient cryogenically-cooled superconducting cables and motors are adopted. The overall system performance can be further improved if the power electronics converters can work under cryogenic temperatures. The gallium nitride (GaN) high electron mobility transistor (HEMT), which has the best overall performance under cryogenic temperatures among various types of semicoductors, are adopted to design the power converter. Due to the current limitation of individual GaN HEMT, a half-bridge power module with three GaN HEMTs in parallel for each switching position is designed. The circuit layout considerations are discussed to ensure identic circuit parasitics and balanced current sharing operation. Based on the converter power loss and size models, the genetic algorithm based optimal design for the four-switch buck-boost converter is discussed. The theoretical efficiency performances under different operating conditions are presented. The double pulse test (DPT) is performed to valiadte the function of the designed half-bridge power module. The thermal test of the power module is conducted to validate the symmetric layout design for the paralleled devices.
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