多输出ZCS-SR逆变器馈电高压DC-DC变换器

S. Iqbal, S. Lee, M. Kamarol
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引用次数: 0

摘要

传统的脉冲调频(PFM)零电流开关(ZCS)串联谐振(SR)逆变器直流高压电源的开关损耗几乎为零。但是,它们存在输出电压变化范围窄、轻载控制能力差等局限性。为了缓解这些限制,本文提出了一种多输出ZCS-SR逆变器馈电高压dc-dc变换器。所提出的系统中的sr逆变器具有四个输出,通过四个谐振电容器连接到单个变压器连接负载,每个谐振电容器具有不同的电容。由于不同的谐振电容值,槽电路的阻抗,从而电力变压器的速率是不同的四个输出。因此,当需要最大负载功率时,所有四个逆变器输出并联馈送给负载,当需要最低负载功率时,将具有最高槽电路阻抗的单个输出馈送给负载,反之亦然。对于四个逆变器输出,有16种可能的组合将它们并联馈送给负载,因此负载功率从最低值增加到最高,分16步。开关频率在其狭窄的范围内调节,以调节最近两个步骤之间的电压。采用PSPICE软件对系统进行了仿真。实验结果表明,该系统具有输出电压控制范围宽、全范围输出电压纹波小、轻载时电流应力小等优点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-output ZCS-SR inverter fed high voltage DC-DC converter
The conventional pulse frequency modulated (PFM) zero current switching (ZCS) series resonant (SR) inverter fed dc high voltage power supplies have nearly zero switching loss. However, they have limitations like narrow variation of output voltage and poor control at light load. To alleviate these limitations, this paper proposes a multi-output ZCS-SR inverter fed high voltage dc-dc converter. The SR-inverter in the proposed system has four outputs that are connected to a single transformer linked load via four resonant capacitors each of which have distinct capacitance. Due to distinct values of resonant capacitors, the impedance of tank circuit and hence the power transformer rate is different for four outputs. Thus all the four inverter outputs are fed to load in parallel when maximum load power is desired and a single output that has highest tank circuit impedance is fed to load when lowest load power is required and vice versa. For the four inverter outputs there are sixteen possible combinations to feed them to load in parallel, thus the load power increase from its lowest value to highest in sixteen steps. Switching frequency is adjusted within in its narrow limits to adjust the voltage between two nearest steps. The proposed system has been simulated using PSPICE software. The obtained results show that proposed system has several advantages such as wide range of output voltage control, low output voltage ripple over the entire range and low current stress at light load.
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