A generalized physical principle of development of plasma channel of a high-voltage pulse spark discharge in a dielectric

M. I. Baranov
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Abstract

Goal. Development of the generalized physical principle of development of plasma channel of a high-voltage electrical pulse spark discharge in the homogeneous dielectric of the different aggregate state. Methodology. Basis of physical optics, theoretical electrical engineering, electrophysics bases of technique of high-voltage and large pulse currents, bases of high-voltage pulse technique and measuring technique. Results. Development of physical principle of development of plasma channel of an electric pulse spark discharge is executed in a homogeneous gas dielectric on the applied example of the use in calculations and experiments of the double-electrode discharge system (DEDS) with a long air interval, testing action of standard interconnect аperiodic pulse of high-voltage of temporal shape of Tm/Тd≈200 μs/1990 μs of positive polarity. The generalized formula is got for the calculation of total length of lc of the real way of development of an pulse spark discharge in an air dielectric, which allowed to formulate the offered physical principle in the following kind: «The plasma channel of an pulse spark discharge in a gas dielectric spreads from one of its points to other after a way length of lc, providing the least falling on it of electric voltage of Uc». It is shown that this principle in the first approaching can be applied and to the homogeneous liquid and hard dielectrics. Comparison of the developed physical principle of distribution of plasma channel of an electrical spark discharge is executed in a dielectrical environment with fundamental Fermat physical principle (a law) for distribution of light in an optically transparent environment, which specifies on mathematical likeness and closeness on destiny of these physical principles. Calculation estimations of falling of electric voltage of Uc on total length of lc of the real zigzag way of development in the air dielectric of DEDS a «edge-plane» with the least length of its discharge interval of lmin=1,5 m is presented, that a value Uc does not exceed 9 % from the experimental level of aggressive voltage of Umd≈611,6 кV in this DEDS for the аperiodic pulse of voltage of Tm/Тd≈200 μs/1990 μs. It is set that the estimated time of td advancement of leader channel of electric pulse discharge in air DEDS (lmin=1,5 m) on its real way total length of lc≈1,53 m makes td≈15,3 μs, and experimental duration of cut of Tdc of the indicated аperiodic impulse of voltage utilized in experiments, characterizing time of short circuit by the plasma channel of discharge of air interval in DEDS, appears equal Тdc≈td≈17 μs. Originality. The generalized physical principle of development of plasma channel of a high-voltage electrical pulse spark discharge is first developed in the homogeneous dielectric of the different aggregate state. Practical value. Application in electrical engineering practice and high-voltage pulse technique of the offered principle of distribution in the dielectrics of plasma channel of an pulse spark discharge will allow to develop both new and to perfect the existent methods of computer design of electro-discharge processes in the gas, liquid and hard insulation of different high-voltage electrical power engineering and electrophysics devices, directed on the increase of reliability of their operation.
电介质中高压脉冲火花放电等离子体通道发展的一般物理原理
目标研究高压脉冲火花放电在不同聚集状态的均质电介质中形成等离子体通道的一般物理原理。研究方法。物理光学基础、理论电气工程、高压大脉冲电流技术的电物理学基础、高压脉冲技术基础和测量技术。成果。在均质气体电介质中发展电脉冲火花放电等离子体通道的物理原理,是在长空气间隔的双电极放电系统(DEDS)的计算和实验中,在正极性 Tm/Тd≈200 μs/1990 μs 时形的标准互联а周期高压脉冲的测试作用的应用实例中实现的。计算空气电介质中脉冲火花放电实际发展过程的总长度 lc 的通用公式可用来表述以下物理原理:"气体电介质中脉冲火花放电的等离子体通道在经过长度为 lc 的过程后从其一点向另一点扩散,并在此过程中提供最小的 Uc 电压"。实验表明,这一原理首先适用于均匀的液体和硬电介质。将所开发的电火花放电等离子体通道分布物理原理与光学透明环境中光分布的费马基本物理原理(定律)进行了比较,这说明了这些物理原理在数学上的相似性和接近性。在 DEDS 空气电介质的 "边缘平面 "中,放电间隔的最小长度为 lmin=1.5 m、5 m,Uc 值与该 DEDS 在 Tm/Тd≈200 μs/1990 μs 的а周期脉冲电压下的侵蚀电压 Umd≈611,6 кV 的实验水平相比不超过 9%。根据设定,在实际总长度为 lc≈1,53 m 的空气 DEDS(lmin=1,5 m)中,电脉冲放电引线通道的估计前进时间 td 为 td≈15,3 μs、而实验中使用的 а 周期脉冲电压的 Tdc 切断时间,即 DEDS 中空气间隔放电等离子体通道的短路时间,等于 Тdc≈td≈17 μs。独创性。首次在不同聚集状态的均质电介质中提出了高压电脉冲火花放电等离子体通道发展的一般物理原理。实用价值。在电气工程实践和高压脉冲技术中应用所提供的脉冲火花放电等离子体通道电介质分布原理,将有助于开发新的和完善现有的计算机设计方法,对不同高压电力工程和电物理设备的气体、液体和硬绝缘中的放电过程进行设计,以提高其运行的可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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