相似定律在高温气冷堆氦电气装置设计中的应用

Xiaohua Chen, Y. Geng, Jie Wang
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引用次数: 0

摘要

由清华大学设计的高温气冷堆(HTGR)正在中国开发中。压力容器内的电气设备,如磁力轴承、氦气循环器等都是在高压氦气环境中工作的。对高压氦气中电气装置的绝缘性能进行设计研究是必要的。然而,通过实验技术进行研究是具有挑战性的。我们提出了一个相似定律,将高压转化为低压,以简化实验条件。气体放电相似理论是指基于相同压力p积数和气体长度d的两个几何上相似且标度系数为k的间隙具有相似的放电特性。通过仿真研究了流量相似理论的有效性。参考实验结果,建立了氦气氛下直流放电的流体模型。并分别用有限元法求解了间隙的放电模型。设计了4个几何相似的缝隙,原型缝隙长2cm,工作压力为600Pa,三个相似缝隙的压力分别为300Pa、200Pa和120Pa,对应的缝隙长度分别为4cm、6cm和10cm,按比例缩小系数k分别为2、3和5。仿真结果表明,只要压力k的缩尺系数小于5,且缩尺长度关系满足p1d1 = p2d2的条件,两个几何相似的间隙的放电特性是相似的。结果表明,利用相似定律预测氦介质中电气器件的绝缘性能是可行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Similarity Law in Electrical Device Design in Helium for High Temperature Gas-Cooled Reactor
The High Temperature Gas-cooled Reactor (HTGR) designed by Tsinghua university is under development in China. The electrical equipment in Pressure Vessel, such as magnetic bearings and helium circulator are operating in the high pressure helium environment. Design research of insulation property of the electrical device in helium under high pressure is necessary. Nevertheless, it is challenging to investigate by experimental technique. We propose a similarity law, converting the high pressure to a lower pressure to simplify the experimental conditions. Similarity theory of gas discharge is that two geometrically similar gaps with scaling coefficients of k, based on the same product number of pressure p and the gas length d, have the similar discharge characteristics. We research the validity of discharge similarity theory by simulation. A fluid model of direct-current discharge in helium atmosphere was established, referencing experimental results. And the discharge models of gaps were solved by finite-element method respectively. Four geometrically similar gaps were designed, the prototype gap is 2cm long and operating at a pressure of 600Pa while the pressure of three similar gaps are 300Pa, 200Pa, and 120Pa, and corresponding to the length of gaps are 4cm, 6cm and 10cm, with scaled-down factor k of 2, 3, and 5 respectively. The simulation results show that as long as the scaled-down factor of pressure k is less than 5 and the reduced length relation meets the condition p1d1 = p2d2, the discharge characteristics of two geometrically similar gaps are similar. As a result, it is realizable to predict the insulation property of electrical device in helium with similarity law.
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