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首页> 外文期刊>IEEE Transactions on Power Delivery >Investigation of the Thermal Transfer Coefficient by the Energy Balance of Fault Arcs in Electrical Installations
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Investigation of the Thermal Transfer Coefficient by the Energy Balance of Fault Arcs in Electrical Installations

机译:电气设备中故障电弧能量平衡对传热系数的研究

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摘要

In order to determine the pressure rise due to fault arcs in electrical installations, the portion of energy heating the surrounding gas of the fault arc has to be known. The ratio of the portion of energy to the electrical energy, the thermal transfer coefficient, well known in literature as k{sub}p-factor, is adopted here. This paper presents a theoretical approach to calculate the thermal transfer coefficient k{sub}p and to determine the pressure rise in an electrical installation. It is based on the solution of the fundamental hydro- and thermodynamic conservation equations taking into account melting and evaporation of metals as well as chemical reactions with the surrounding gas of the fault arc. The results for closed arc chambers show that factors such as the kinds of insulating gas and of electrode material, the size of the test vessel, and the gas density considerably influence the thermal transfer coefficient and thus the pressure rise. Furthermore it is demonstrated, with an example of a short-circuit in a compact medium-voltage station with heavy metal evaporation, that the mathematical approach is a reliable tool to assess the development of pressure.
机译:为了确定由于电气设备中的故障电弧引起的压力升高,必须知道加热故障电弧周围气体的能量部分。这里采用能量部分与电能之比即热传递系数,在文献中被称为k {sub} p因子。本文提出了一种计算热传递系数k {sub} p并确定电气设备中压力升高的理论方法。它基于基本的水力和热力学守恒方程的解,其中考虑了金属的熔化和蒸发以及与故障电弧周围气体的化学反应。封闭电弧室的结果表明,诸如绝缘气体和电极材料的种类,测试容器的尺寸以及气体密度等因素会极大地影响传热系数,从而影响压力升高。此外,以紧凑的中压站中重金属蒸发的短路为例,证明了数学方法是评估压力发展的可靠工具。

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