Low-loss bidirectional buck-boost DC-DC converter

O. Nepomnyashchiy, I. Sazonov, A. P. Yablonskiy, V. Khaidukova
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Abstract

For DC energy systems there is reversible buck/boost pulse converter (RPC) in the classic converter circuit. The maximum efficiency of the RPC without additional mechanisms to reduce the dynamic energy losses in the power semiconductor keys (PSK) during their commutation is about 92%. Improved efficiency is achieved by providing «soft switching» of the transistors RPC, i.e. in zero current/voltage switching. These methods require the introduction of supporting links in the RPC, which have a negative impact on the performance of reversible buck/boost pulse converter. Due to the increase in the number of components, this leads to degradation of mass-size characteristics of the product and decrease in its reliability. New RPC transistors control algorithm RPC provides an opportunity to use transistors at zero voltage without additional elements. Because of the relative novelty of this technical solution, the energy exchange processes in the reactive elements of power semiconductor devices (PSD) are poorly studied. By reason of insufficient studying of power exchange processes in reactive elements of converter, it seems important to study these processes and use the received results for recommendations about reversible buck/boost pulse converter designing. As a result of research it was found out that the recuperation of energy stored in parasitic capacitance of drain-source transistors acting as PSD. At designing of RPC the account of the revealed phenomenon of energy, recovery will allow additionally to raise its efficiency at the expense of decrease in losses of energy on PSK in shutdown state. For this purpose, it is necessary to use transistors with high value of parasitic capacitance of drain-source or include additional capacitors in parallel with PSK.
低损耗双向降压-升压DC-DC转换器
对于直流能源系统,在经典的变换器电路中存在可逆的降压/升压脉冲变换器(RPC)。如果没有额外的机制来减少功率半导体键(PSK)在换相过程中的动态能量损失,RPC的最大效率约为92%。通过提供晶体管RPC的“软开关”,即零电流/电压开关,实现了效率的提高。这些方法需要在RPC中引入支持链路,这对可逆降压/升压脉冲转换器的性能有负面影响。由于元件数量的增加,导致产品的质量尺寸特性退化,可靠性下降。新的RPC晶体管控制算法RPC提供了在零电压下使用晶体管而无需额外元件的机会。由于这种技术方案相对新颖,对功率半导体器件(PSD)中无功元件的能量交换过程研究较少。由于对变换器中无功元件的功率交换过程的研究不足,研究这些过程并利用已有的结果为可逆降压/升压脉冲变换器的设计提供建议显得很重要。研究发现,作为PSD的漏源型晶体管,其寄生电容中存储的能量得到了恢复。在RPC的设计中,考虑到所揭示的能量现象,回收将允许额外提高其效率,但代价是减少PSK在关机状态下的能量损失。为此,有必要使用具有高漏源寄生电容值的晶体管或在PSK并联上附加电容。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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