Hybrid DC Molded Case Circuit Breaker Technology

Xin Zhou, Yanjun Feng, Z. Shen, S. Krstic
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引用次数: 5

Abstract

The demand for DC circuit protection products continues to grow as industry sectors such as electrical vehicles, energy storage and data centers further expand. It drives the need for cost effective and compact DC circuit protection devices with higher short circuit interruption ratings. This paper presents a novel hybrid DC molded case circuit breaker (MCCB) technology that enables single-pole 10kA/600VDC interruption capability. The design is based on existing MCCB switching mechanism and contact structure. It incorporates a galvanic isolation disconnect without adding Watt loss to the device when it is switched on. Unlike conventional hybrid breaker topologies that try to commutate the fault current as quickly as possible from the electromechanical path to the power electronic path, this hybrid MCCB topology utilizes the arc to absorb most of the inductance energy stored in a DC electrical system and to limit the fault current to a lower level before the commutation. Concept prototypes have been developed and investigated via both numerical simulation and experimentation. Test results show that this technology enables the DC single-pole MCCB to be able to not only interrupt 10kA/600VDC fault current, but also maintain the thermal performance of a conventional MCCB.
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混合型直流模壳断路器技术
随着电动汽车、储能和数据中心等行业的进一步扩大,对直流电路保护产品的需求不断增长。它推动了对具有更高短路中断额定值的具有成本效益和紧凑型直流电路保护装置的需求。本文提出了一种新型混合直流模壳断路器(MCCB)技术,该技术可实现单极10kA/600VDC的断路能力。该设计基于现有塑壳断路器开关机构和触点结构。它包括一个电流隔离断开,而不增加瓦特损失的设备,当它被打开。与传统的混合式断路器拓扑结构不同,混合式断路器拓扑结构试图尽可能快地将故障电流从机电路径换向电力电子路径,这种混合式断路器拓扑结构利用电弧吸收存储在直流电气系统中的大部分电感能量,并在换向之前将故障电流限制在较低的水平。概念原型通过数值模拟和实验进行了开发和研究。测试结果表明,该技术使直流单极塑壳断路器既能中断10kA/600VDC故障电流,又能保持常规塑壳断路器的热性能。
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