考虑离子阻力的自组织尘埃链研究

IF 0.5 4区 工程技术 Q4 MECHANICS Journal of Applied Mechanics and Technical Physics Pub Date : 2024-01-15 DOI:10.1134/S0021894423050012
M. V. Salnikov, A. V. Fedoseev, G. I. Sukhinin
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摘要

摘要 本文描述了对由悬浮在气体放电等离子体电场中的三个尘埃粒子组成的一维链的平衡参数的数值研究。研究考虑了库仑斥力、外电场、重力、等离子体空间电荷诱导的静电力和离子阻力的作用,并在此数值模型中模拟了尘埃粒子的运动。等离子体空间电荷的空间分布与尘埃粒子周围的电势以及尘埃链的平衡结构参数进行了比较,这取决于是否分析考虑了离子阻力。结果表明,当分析考虑离子阻力时,整个尘埃链会向离子流方向移动。在这种情况下,尘埃粒子之间的距离比忽略离子阻力的情况要小。
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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STUDY OF SELF-ORGANIZED DUST CHAINS WITH ACCOUNT FOR ION DRAG

This paper describes a numerical study of the equilibrium parameters of a one-dimensional chain consisting of three dust particles levitating in the electric fields of a gas-discharge plasma. A numerical model is considered in which the movement of dust particles is simulated with account for the action of the Coulomb repulsion force, external electric field, gravity, electrostatic force induced by a plasma space charge, and ion drag described analytically. The spatial distributions of the plasma space charge are compared with a potential around dust particles and the equilibrium structural parameters of a dust chain, depending on the fact whether the ion drag is taken into account analytically or not. It is shown that, when the ion drag is taken into account analytically, the dust chain as a whole is displaced in the direction of the ion flow. In this case, the distances between the dust particles turn out to be smaller than in the case where the ion drag is neglected.

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来源期刊
CiteScore
1.20
自引率
16.70%
发文量
43
审稿时长
4-8 weeks
期刊介绍: Journal of Applied Mechanics and Technical Physics is a journal published in collaboration with the Siberian Branch of the Russian Academy of Sciences. The Journal presents papers on fluid mechanics and applied physics. Each issue contains valuable contributions on hypersonic flows; boundary layer theory; turbulence and hydrodynamic stability; free boundary flows; plasma physics; shock waves; explosives and detonation processes; combustion theory; multiphase flows; heat and mass transfer; composite materials and thermal properties of new materials, plasticity, creep, and failure.
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