The Effects of Means of Grounding and Asymmetrical Current on Arc Flash

Jairo Vladimir Chaparro, G. Ramos, David F. Celeita
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引用次数: 1

Abstract

Industrial power systems bring considerable challenges in terms of safety and reliability. As any other power network these type of systems have some specific risks, specially when it concerns to short circuit faults. These faults create a phenomenon called Arc Flash, which in some cases can be extremely hazardous for the system equipment, and also for the personnel. The IEEE 1584–2018 standard currently presents a methodology in the calculation of Arc Flash where the incident energy level is calculated based on the symmetrical rms bolted fault current value. However, the first cycles of the fault current are not symmetrical values. Therefore, it is necessary to analyze what happens if the incident energy is calculated as stated in the IEEE 1584–2018 standard, but using the rms value of the asymmetrical current. This article takes into account the asymmetrical current into Arc Flash estimations. This current value will affect considerably the level of incident energy during a fault, specially for systems with a high X/R ratio. Additionally, this article will show up an analysis to see what happens with Arc Flash levels in industrial power systems using high resistance grounding, and comparing it with solid grounded systems, one of the most common grounding means in industry. As this study means an improvement on the safeness of electric systems, simulations were carried out using IEEE 242 system in order to support the content of this paper.
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接地方式和不对称电流对电弧闪蒸的影响
工业电力系统在安全性和可靠性方面带来了相当大的挑战。与任何其他电网一样,这种类型的系统有一些特定的风险,特别是当它涉及到短路故障时。这些故障会产生一种叫做电弧闪光的现象,在某些情况下,这种现象对系统设备和人员来说都是极其危险的。IEEE 1584-2018标准目前提出了一种计算电弧闪络的方法,其中入射能级是根据对称均方根螺栓故障电流值计算的。然而,故障电流的第一个周期不是对称的值。因此,有必要分析如果按照IEEE 1584-2018标准的规定计算入射能量,但使用不对称电流的均方根值会发生什么。本文在电弧闪络估计中考虑了不对称电流。该电流值将在故障期间显著影响入射能量水平,特别是对于具有高X/R比的系统。此外,本文还将分析使用高阻接地的工业电力系统中电弧闪光水平的情况,并将其与工业中最常见的接地方式之一固体接地系统进行比较。由于本研究对电气系统安全性的提高具有重要意义,为了支持本文的研究内容,我们采用IEEE 242系统进行了仿真。
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