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Improvement of Corona Discharge Model and Its Application on Simulating Corona Discharge in the Presence of Wind

机译:电晕放电模型的改进及其在风中模拟电晕放电的应用

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摘要

To evaluate the effect of wind on corona discharges occurring on the tip of a grounded rod during a negative charging process of thundercloud, a two-dimensional numerical model has been improved by considering the wind velocity as a driving force for the movement of the corona charges. It was found that not only wind speed but also wind direction have a significant effect on the distribution of corona charges, the local electric field around the rod, and the corona current. (1) Under the same wind speed, a larger horizontal wind can result in less accumulation of corona charges, a larger electric field, and a larger corona current. However, when the speed is less than 5 m s−1, the effect of wind direction on the corona current was weak. (2) Under the same wind direction, a larger wind speed can cause a larger corona current. However, when the horizontal wind component is smaller than the vertical, the larger wind speed would cause a smaller electric field. Thus, it is necessary to take the effects of the wind direction into consideration, rather than to consider its speed only, when studying the corona discharge and its effects on the upward leader.
机译:为了评估风对雷冲突的负充电过程中接地杆的尖端上发生的电晕放电的效果,通过将风速作为电晕电荷移动的驱动力来改善二维数值模型。发现不仅有风速,而且风向还对电晕电荷的分布,杆周围的局部电场和电晕电流具有显着影响。 (1)在相同的风速下,较大的水平风可以导致电晕电荷,更大的电场和更大的电晕电流较少。然而,当速度小于5米S-1时,风向对电晕电流的影响弱。 (2)在相同的风向下,较大的风速会导致更大的电晕电流。然而,当水平风分量小于垂直时,较大的风速会导致较小的电场。因此,需要考虑风向的影响,而不是在研究电晕放电时仅考虑其速度及其对向上领导的影响。

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