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Numerical studies on downstream uniformity of atmospheric pressure plasma jet array modulated by flow and electric multi-field coupling control

机译:流动和电力多场耦合控制调制大气压等离子体射流阵列下游均匀性的数值研究

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Atmospheric pressure plasma jets (APPJs) have potential applications in many aspects ranging from traditional surface treatment to growing biomedicine. An array structure of such APPJs is the most efficient way to enlarge the treatment area. Nevertheless, the majority of APPJ arrays have shown mottled patterns downstream, a disadvantage for applications. Particularly, in biomedicine and certain other areas, improving the plasma homogeneity downstream of APPJ arrays is crucially needed. In this work, we numerically study synergistic effects of APPJ arrays on plasma propagation and homogeneity downstream based on a model coupling electric, flow, and temperature fields. Taking a two-dimensional three-tube APPJ array as an example, we study the influence of gas velocity and component, as well as applied voltages on plasma distributions. In addition, essential strategies for merging plasma bullets are acquired. Results show that the ionization rate between adjacent jets is important to provide electrons for jet merging. The helium mole fraction controls the plasma distribution and thus directly decides whether adjacent jets merge. After merging, the plasma bullets affect each other through the electric field to control the homogeneity downstream. Therefore, the plasma distribution is a result of the synergy of flow and electric fields. Then, a homogeneous plasma distribution downstream can be realized by the fine control of both fields, which provides an effective way to uniform the plasma downstream in plasma processing.
机译:大气压等离子体喷气机(APPJS)在传统的表面处理到种植生物医学的许多方面都具有潜在的应用。此类APPJ的阵列结构是扩大治疗区域的最有效的方法。然而,大多数Appj阵列已经显示出下游斑驳的模式,应用程序的缺点。特别是,在生物医学和某些其他区域中,大致需要改善Appj阵列下游的血浆均匀性。在这项工作中,基于模型耦合电气,流量和温度场,在数值上研究APPJ阵列对等离子体传播和均匀性的协同效应。以二维三管APPJ阵列为例,我们研究了气体速度和部件的影响,以及对等离子体分布的施加电压。此外,收购了合并血浆子弹的基本策略。结果表明,相邻喷射器之间的电离率是重要的,用于为喷射合并提供电子。氦摩尔分数控制等离子体分布,从而直接决定相邻的喷射器是否合并。合并后,等离子体子弹通过电场互相影响,以控制下游的同质性。因此,等离子体分布是流动和电场的协同作用的结果。然后,可以通过对两个场的微量控制来实现下游的均匀等离子体分布,这提供了一种使等离子体处理下游的血浆下游的有效方法。

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