实现交流电源软开关技术的DC-DC变换器

R. Shobha, S. Suntrakanesh, N. Narmadhai
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引用次数: 0

摘要

全球变暖提醒世界转向使用电动汽车(EV)和混合动力电动汽车(HEV)。双向DC-DC变换器(BDC)在电池超级电容器储能系统(business)的能量流控制中起着重要的作用,该系统用于电动汽车或混合动力汽车的储能。双向DC-DC变换器(BDC)对商业电网的能量流控制起着至关重要的作用。双向DC-DC变换器在零电压开关下执行升压和降压操作,因为它在降压和升压模式下工作。由于可再生能源的不确定性,它们不适合作为唯一的电力来源单独应用。这个问题可以借助电池和超级电容器来储存能量。快速充电由超级电容器完成,慢速放电由电池完成。利用磁滞控制回路实现充放电状态的设计。除逆变器外,还可以选择BDC,并在MATLAB/Simulink中实现,用于交流电源应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DC-DC Converter Implementing Soft Switching Technique for AC Power Applications
Global warming alerts the world to switch over to using Electric Vehicle (EV) and Hybrid Electric Vehicles (HEV). The Bidirectional DC-DC Converter (BDC) plays a significant role in controlling the energy flow for the Battery Ultra-capacitor Energy Storage System (BUESS) which is used for storing energy in EV or HEV. The bidirectional DC-DC converter (BDC) plays a vital role in controlling the energy flow for BUESS. The bidirectional DC-DC converter performs the step-up and step-down operation at zero voltage switching, as it operates in buck and boost modes. Due to the uncertain nature of renewable energy resources they pose to be not suitable for standalone applications as the only source of power. This problem can be overcome with the aid of batteries and supercapacitors for storing energy. Fast charging is done by a supercapacitor and slow discharging by a battery. A hysteresis control loop achieves the design of charging and discharging status. A BDC in addition to an inverter can be opted and is implemented in MATLAB/Simulink, and is used in AC power applications.
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