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Electromechanical coupling mechanisms at a plasma-liquid interface

机译:等离子体液界面的机电耦合机构

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摘要

The direct interaction between a non-equilibrium gas discharge and a liquid volume leads to the generation of a plasma activated liquid. This interaction induces a flow in both the gas above the liquid and within the liquid volume. The physical mechanisms behind the induced flows are complex. In this work, a two-dimensional experimentally validated numerical model was developed to determine the dominant mechanism driving the liquid flow at the plasma-liquid interface. The model followed the evolution of the plasma and the flow fields in both phases, describing a pin-water discharge configuration operating in air, which was used to treat a de-ionized water sample and a tap water sample. Two potential physical mechanism were investigated, the electrohydrodynamic (EHD) flow induced in the gas phase and the electric surface stresses across the interface. It was found that the dominant mechanism driving the liquid flow is correlated with the charge relaxation time of the liquid. For liquids with a charge relaxation time longer than the characteristic time of the plasma, such as de-ionized water, the liquid behaves as a dielectric, and the electric surface stresses dominate the flow in the liquid phase. For liquids with a charge relaxation time shorter or in the same order of the plasma's characteristic time, such as tap water, the liquid behaves as a conductor, and the EHD flow induced in the gas phase dominates the flow in the liquid phase.
机译:非平衡气体放电和液体体积之间的直接相互作用导致产生等离子体活化液体的产生。该相互作用在液体上方和液体体积内引起流动。诱导流动背后的物理机制是复杂的。在这项工作中,开发了一种二维实验验证的数值模型,以确定驱动等离子体液体界面处的液体流动的主导机构。该模型遵循两相中等离子体和流场的进化,描述了在空气中操作的销水放电配置,其用于处理去离子水样和自来水样品。研究了两个潜在的物理机制,在气相中诱导的电液动力学(EHD)流和界面的电表面应力。发现驱动液体流动的主导机构与液体的电荷松弛时间相关。对于具有比等离子体的特征时间的充电弛豫时间的液体,例如去离子水,液体表现为电介质,电表面应力在液相中占据液相中的流动。对于具有电荷放松时间的液体较短或以相同的等离子体特性时间的顺序,例如自来水,液体表现为导体,并且在气相中诱导的EHD流动占据液相中的流动。

著录项

  • 来源
    《Journal of Applied Physics》 |2021年第21期|213301.1-213301.15|共15页
  • 作者单位

    Centre for Plasma Microbiology Electrical and Electronics Engineering Department University of Liverpool Brownlow Hill L69 3 GJ Liverpool United Kingdom;

    Centre for Plasma Microbiology Electrical and Electronics Engineering Department University of Liverpool Brownlow Hill L69 3 GJ Liverpool United Kingdom;

    Centre for Plasma Microbiology Electrical and Electronics Engineering Department University of Liverpool Brownlow Hill L69 3 GJ Liverpool United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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