Electrical Processes in a Wind-Sand Flux on Desertified Areas

IF 0.9 Q4 OPTICS Atmospheric and Oceanic Optics Pub Date : 2024-12-19 DOI:10.1134/S1024856024700854
G. I. Gorchakov, A. V. Karpov, R. A. Gushchin, O. I. Datsenko
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Abstract

Desertified areas are the main source of dust aerosol. The emission and transport of dust aerosol in the near-surface layer of the atmosphere are markedly affected by electrification of the wind-sand flux. Electrical processes in a wind-sand flux have been studied experimentally. Based on data of synchronous measurements of the density of saltation electric currents and currents caused by transport of charged dust aerosol particles at heights of 4 and 12 cm in a desertified area in Astrakhan oblast, statistical characteristics of variations in the density and density moduli of these currents are calculated. It is shown that in a wind-sand flux in the height range from 4 to 12 cm, the density modules of saltation electric currents and currents caused by transport of dust aerosol decrease with height much more slowly (the logarithmic gradients are −0.025 and −0.07 cm−1) than the concentration of saltating particles (the logarithmic gradient is −0.32 cm−1). It is confirmed that the moduli of saltation electric current density correlate with each other and with the wind speed in the surface air layer more closely than the current densities themselves. The results obtained are of interest in developing models of dust aerosol emission in desertified areas.

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沙化地区风沙通量的电过程
沙化地区是沙尘气溶胶的主要来源。大气近地面沙尘气溶胶的排放和输运受风沙通量的带电作用的显著影响。对风沙通量中的电过程进行了实验研究。基于对阿斯特拉罕州沙化地区4 cm和12 cm高度带电粉尘气溶胶粒子输运引起的跃变电流和电流密度的同步测量数据,计算了这些电流密度和密度模量变化的统计特征。结果表明,在4 ~ 12 cm高度的风沙通量中,跃变电流和由沙尘气溶胶输送引起的电流的密度模量随高度的降低(对数梯度分别为- 0.025和- 0.07 cm−1)要比跃变粒子浓度(对数梯度为- 0.32 cm−1)慢得多。证实了跃变电流密度模量与跃变电流密度之间的相互关系以及与地面空气层风速之间的关系比与跃变电流密度本身的关系更为密切。所得结果对建立沙化地区沙尘气溶胶排放模型具有重要意义。
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来源期刊
CiteScore
2.40
自引率
42.90%
发文量
84
期刊介绍: Atmospheric and Oceanic Optics  is an international peer reviewed journal that presents experimental and theoretical articles relevant to a wide range of problems of atmospheric and oceanic optics, ecology, and climate. The journal coverage includes: scattering and transfer of optical waves, spectroscopy of atmospheric gases, turbulent and nonlinear optical phenomena, adaptive optics, remote (ground-based, airborne, and spaceborne) sensing of the atmosphere and the surface, methods for solving of inverse problems, new equipment for optical investigations, development of computer programs and databases for optical studies. Thematic issues are devoted to the studies of atmospheric ozone, adaptive, nonlinear, and coherent optics, regional climate and environmental monitoring, and other subjects.
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