直流电场作用下湿雪颗粒与绝缘子表面碰撞物理过程的数值模拟

Yuyao Hu, Chunyu Zong, R. Xian, Peng Zhang, Wenliang Yin
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引用次数: 0

摘要

一种集绝缘子的绝缘功能和避雷器的防雷功能于一体的新型绝缘子——一体防雷绝缘子。由于结构的特殊性,具有直流的防雷绝缘子在降雪环境下的电场和流场特性必然不同于普通的复合绝缘子。因此,基于场电荷理论,考虑电场力、重力和空气阻力对湿雪颗粒的影响。通过多物理场耦合仿真,分析比较了两种绝缘子表面附近粒子的运动特性,揭示了直流电场对两种绝缘子周围湿雪粒子运动轨迹的影响。结果表明:在直流电场作用下,湿雪颗粒更容易与绝缘子表面发生碰撞,特别是在电场强度较大的位置;随着风速和粒子直径的增大,电场的影响减弱,粒子的运动趋向于绝缘子的上下表面。数值模拟结果表明,直流电场作用下湿雪颗粒运动方向和速度的改变是导致绝缘子上雪堆积加剧的主要原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation of the Physical Process of Collision between Wet Snow Particle and Insulator Surface under DC Electric Field
A new type of the insulator named integrated lightning protection insulator incorporates insulation function of the insulator and lightning protection function of the arrester. Due to the particularity of the structure, the electric field and flow field characteristics of the lightning protection insulator with DC are bound to be different from common composite insulator in a snowfall environment. Therefore, based on the field charging theory, the influences of electric field force, gravity and air drag force on wet snow particles were taken into account. The movement characteristics of particles near the surface of two types of the insulators were analyzed and compared through multi-physics coupling simulation and the effect of DC electric field on the trajectories of wet snow particles around the two was revealed. The results show that wet snow particles are more likely to collide with the insulator surface under DC electric field, especially for locations with a high electric field strength. As the wind speed and particle diameter increase, the influence of the electric field is weakened, and the movement of particles tends to the upper and lower surfaces of the insulator. Numerical simulation reveled that the change in the movement direction and speed of wet snow particles caused by DC electric field is the primary cause of the intensification of snow accretion on the insulator.
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