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Parallel-charge series-discharge inductor-based voltage boosting technique applied to a rectifier-fed positive output DC-DC converter

机译:基于平行电荷串联 - 放电电感的电压升压技术应用于整流器馈电正输出DC-DC转换器

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The conventional power electronic boost converters have inherent limitations that they are not able to increase the low DC input voltage level into sufficiently high DC output voltage level. This is because of the fact that (1). the inductor used in the converter has certain amount of internal resistance, and (2). the power devices used in the converter are subjected to high potential stress which led to damage of the devices. A configuration of a non-isolated step-up rectifier-fed positive output power converter capable of converting low DC voltage into high DC output voltage-based on the concept of parallel-charge series-discharge inductors is proposed in this paper. The proposed converter is fed by an uncontrolled diode bridge rectifier to which an input sinusoidal AC voltage of magnitude 30 V (rms) is given. The converter is configured such that the input AC voltage of 30 V (rms) is stepped-up to around 900 V (DC) at the output of the converter, with extremely low duty ratio. The proposed converter configuration employs only two high power semiconductor switches with reduced complexity of control. In this work, the converter topology is presented, and its steady state behavior and dynamic modeling are discussed for continuous inductor current mode operation. Further, it is revealed that the voltage gain of the converter is influenced by the variation of the duty cycle of the power switches. The effectiveness of the converter is better understood through simulation in MATLAB/SIMULINK platform. The results demonstrate that the converter is able to maintain higher constant output voltage profile with significantly reduced overshoot and settling time.
机译:传统的电力电子升压转换器具有固有的局限性,它们无法将低DC输入电压电平增加成足够高的直流输出电压电平。这是因为(1)。转换器中使用的电感器具有一定量的内阻,(2)。转换器中使用的功率器件经受高潜在的应力,导致器件的损坏。本文提出了一种能够将低DC电压转换为高直流输出电压的低DC电压的非隔离升压整流器的正输出功率转换器的配置。在本文中提出了基于平行电荷串联放电电感器的概念。所提出的转换器由不受控制的二极管桥式整流器供给,给出输入正弦AC电压30V(RMS)的输入正弦AC电压。转换器被配置为使得在转换器的输出处的30V(RMS)的输入AC电压在转换器的输出处升高至约900V(DC),具有极低的占空比。所提出的转换器配置仅采用两个高功率半导体开关,其控制复杂性降低。在这项工作中,提出了转换器拓扑,并且讨论了其稳态行为和动态建模用于连续电感电流模式操作。此外,揭示了转换器的电压增益受电源开关的占空比的变化的影响。通过Matlab / Simulink平台的仿真更好地理解转换器的有效性。结果表明,转换器能够保持更高的恒定输出电压曲线,其过冲和稳定时间显着降低。

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