Li Hui, Yu Renze, Zhong Yi, Yao Ran, Liao Xinglin, Chen Xianping
State Key Laboratory of Power Transmission Equipment & System Security and New Technology, School of Electrical Engineering, Chongqing University, Chongqing 400044, China.
Energy Internet Engineering Technology Center of Chongqing City, Chongqing University of Technology, Chongqing 400054, China.
Micromachines (Basel). 2019 May 10;10(5):314. doi: 10.3390/mi10050314.
Silicon carbide (SiC) metal-oxide-semiconductor field-effect transistors (MOSFETs) have the advantages of high-frequency switching capability and the capability to withstand high temperatures, which are suitable for switching devices in a direct current (DC) solid state circuit breaker (SSCB). To guarantee fast and reliable action of a 400 V DC SSCB with SiC MOSFET, circuit design and prototype development were carried out. Taking 400V DC microgrid as research background, firstly, the topology of DC SSCB with SiC MOSFET was introduced. Then, the drive circuit of SiC MOSFET, fault detection circuit, energy absorption circuit, and snubber circuit of the SSCB were designed and analyzed. Lastly, a prototype of the DC SSCB with SiC MOSFET was developed, tested, and compared with the SSCB with Silicon (Si) insulated gate bipolar transistor (IGBT). Experimental results show that the designed circuits of SSCB with SiC MOSFET are valid. Also, the developed miniature DC SSCB with the SiC MOSFET exhibits faster reaction to the fault and can reduce short circuit time and fault current in contrast with the SSCB with Si IGBT. Hence, the proposed SSCB can better meet the requirements of DC microgrid protection.
碳化硅(SiC)金属氧化物半导体场效应晶体管(MOSFET)具有高频开关能力和耐高温能力的优点,适用于直流(DC)固态断路器(SSCB)中的开关器件。为了确保采用SiC MOSFET的400V直流SSCB能够快速可靠地动作,开展了电路设计和样机开发工作。以400V直流微电网为研究背景,首先介绍了采用SiC MOSFET的直流SSCB的拓扑结构。然后,对直流SSCB的SiC MOSFET驱动电路、故障检测电路、能量吸收电路和缓冲电路进行了设计与分析。最后,开发了采用SiC MOSFET的直流SSCB样机,并进行了测试,同时与采用硅(Si)绝缘栅双极晶体管(IGBT)的SSCB进行了比较。实验结果表明,所设计的采用SiC MOSFET的直流SSCB电路是有效的。此外,所开发的采用SiC MOSFET的微型直流SSCB与采用Si IGBT的SSCB相比,对故障的反应更快,能够缩短短路时间并降低故障电流。因此,所提出的直流SSCB能够更好地满足直流微电网保护的要求。