大气压下导电离波电场矢量的映射

IF 1.3 Q3 ORTHOPEDICS
S. Iséni
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引用次数: 6

摘要

本文通过实验研究了大气压等离子体射流(APPJ)装置在氦气中产生的引导电离波(IW)的动力学特性。本文主要研究了驱动IW的强电场的特性。利用APPJs产生可诱导和可复制的光子脉冲,诱导光子脉冲矢量沿传播方向在空间和时间上进行表征。利用这种方法,首次测量和记录了引导IWs的EF向量映射。在第一部分中,研究了第一个IW在玻璃管内的传播。在目前的条件下,观察到第二个引导IW并传播,导致形成一个引导流。观察到由于瞬时电荷沉积在管壁上而产生的能量场,特别是在管的末端。在第二部分中,我们报道了在与波导接触的介质衬底下的EF矢量映射。EF强度高达55kVcm−1已经测量并证实了预测数值模拟的先前结果。为了改进非平衡等离子体化学动力学,对验证理论模型来说,电磁场谱线的有趣配置将具有重要意义。此外,这项初步工作还为IW驱动放电的各种应用提供了重要的见解,如液体活化、环境处理、等离子体医学、主动流量控制和等离子体农业。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mapping the electric field vector of guided ionization waves at atmospheric pressure
In this study, the dynamic of guided ionization wave (IW) generated by an atmospheric pressure plasma jet (APPJ) device operating in helium is experimentally investigated. The present work focuses on the properties of the intense electric field (EF) driving the IW. Taking advantages of APPJs to produce guided and reproducible IWs, the induced EF vector is characterized spatially and temporally along the direction of propagation. With this approach, EF vector mapping of guided IWs have been measured and documented for the first time. In the first part, the propagation within a glass tube of the first IW is investigated. Under the present conditions, a second guided IW is observed and propagates, leading to the formation of a guided streamer. The EF due to transient charge deposited on the wall surface is observed, particularly at the end of the tube. In the second part, one reports on the EF vector mapping under a dielectric substrate in contact with guided IWs. EF strength up to 55kVcm−1 has been measured and corroborates prior results from predictive numerical simulations. Intriguing configurations of the EF lines will be of significant interest to validate theoretical models in order to refine the non-equilibrium plasma chemistry kinetics. Furthermore, this preliminary work provides important insights into various applications involving IW driven discharges such as liquid activation, environmental treatments, plasma medicine, active flow control and plasma agriculture.
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来源期刊
Plasma Research Express
Plasma Research Express Energy-Nuclear Energy and Engineering
CiteScore
2.60
自引率
0.00%
发文量
15
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