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Describing Arc Flash Incident Energy Per Feeder Length in the Presence of Distributed Resources

机译:存在分布资源时描述每个馈线长度的弧闪事件能量

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An approach for arc flash hazard analysis in the presence of distributed resources based on the use of TCC curve equations is proposed in this paper. Determining the available arc flash incident energy and appropriate protective clothing to wear while working on an energized distribution feeder can be a time consuming task. Utilities typically refer to a single, worst-case incident energy per feeder over its entire length to simplify clothing requirements, it is therefore necessary to determine the maximum incident energy present on all feeders that may be worked on energized. The interplay between arcing current and over current protection characteristics makes determining the maximum incident energy and the location of its occurrence a lengthy problem to solve. This is further complicated to a significant degree in the presence of distributed resources. This paper introduces a proposed method that removes the need for an iterative approach in calculating incident energy at several locations on a feeder in a systematic attempt to determine the maximum energy, and introduces the concept of plotting incident energy as a function of system impedance (and so feeder length). This is achieved via an interface to the IEEE 1584 Arc Flash Hazard Calculator correlating discreet impedance increments and available fault current to the time component of TCC curve equations, and plotting the associated arc flash incident energy.
机译:提出了一种基于TCC曲线方程的分布资源存在下电弧闪危险分析方法。确定可用的电弧闪光入射能量和在通电的给料机上工作时穿着合适的防护服可能是一项耗时的任务。公用事业通常是指每个馈线在其整个长度上的最坏情况下的入射能量,以简化服装要求,因此有必要确定可能在通电的所有馈线上存在的最大入射能量。电弧电流和过电流保护特性之间的相互作用使确定最大入射能量及其发生位置成为一个漫长的问题。在存在分布式资源的情况下,这变得更加复杂。本文介绍了一种提议的方法,该方法无需在系统上确定最大能量的系统尝试中就计算馈线几个位置上的入射能量的迭代方法,并介绍了绘制入射能量随系统阻抗变化的概念(和因此供料器长度)。这是通过与IEEE 1584弧闪危害计算器的接口实现的,该接口将离散的阻抗增量和可用故障电流与TCC曲线方程式的时间分量相关联,并绘制相关的弧闪入射能量。

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