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MODELING THE DYNAMICS OF MICRO- AND MACROPARTICLES IN A COMBINED GAS-DISCHARGE INSTALLATION

机译:组合式气体排放装置中的微颗粒和宏观动力学模型

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摘要

We present a model of the dynamics of micro- and macroparticles in a combined gas-discharge installation that accounts for the processes of metal explosion (heating of a metal in its solid state, melting, heating of the liquid metal, intense evaporation, ionization in metal vapor), a magnetohydrodynamic description of plasma acceleration (on the basis of the mass, momentum, and energy conservation laws neglecting the plasma viscosity and thermal conductivity), and a description of the processes of energy transfer from a high-velocity stream to accelerated particles. It has been established that the process of melting terminates in 1.3 ns after the start of the discharge and that the evaporation terminates in 480 ns. The stage of cooling starts in 21 μs. The average density of the plasma upon completion of the evaporation process can be estimated to be 1.7·10~(-5) g/cm~3, with the pressure being of the order of 1.5·10~4 Pa and the total time of discharge, of about 250 μs.
机译:我们提出了组合式气体放电装置中微粒和宏观动力学的模型,该模型说明了金属爆炸的过程(固态金属的加热,熔融,液态金属的加热,强烈的蒸发,离子的电离)金属蒸气),等离子加速的磁流体动力学描述(基于忽略了等离子粘度和热导率的质量,动量和能量守恒定律),以及从高速流到加速流的能量转移过程的描述粒子。已经确定,在放电开始之后,熔化过程终止于1.3ns,并且蒸发终止于480ns。冷却阶段开始于21μs。蒸发过程完成后,等离子体的平均密度可以估计为1.7·10〜(-5)g / cm〜3,压力约为1.5·10〜4 Pa,总时间为放电约250μs。

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