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Plasma action on helium flow in cold atmospheric pressure plasma jet experiments

机译:在大气压冷等离子流实验中等离子体对氦气流动的作用

摘要

In this work, helium flow modifications, visualized by schlieren imaging, induced by the plasma generated in a plasma jet have been studied in conditions used for biomedical treatments (jet being directed downwards with a low helium flow rate). It has been shown that the plasma action can shift up to few centimeters downstream the effects of buoyancy, which allows to the helium flow to reach a target below in conditions for which it is not the case when the plasma is off. This study reveals the critical role of large and long lifetime negative ions during repetitive operations in the kHz regime, inducing strong modifications in the gas propagation. The cumulative added streamwise momentum transferred to ambient air surrounding molecules resulting from a series of applied voltage pulses induces a gradual built up of a helium channel on tens of millisecond timescale. In some conditions, a remarkable stable cylindrical helium channel can be generated to the target with plasma supplied by negative polarity voltage pulses whereas a disturbed flow results from positive polarity operation. This has a direct effect on air penetration in the helium channel and then on the reactive species production over the target which is of great importance for biomedical applications. It has also been shown that with an appropriate combination of negative and positive polarity pulses, it is possible to benefit from both polarity features in order to optimize the plasma plume propagation and plasma delivery to a target.
机译:在这项工作中,已经在生物医学治疗所用的条件下(通过低氦流率将射流向下引导),研究了由等离子流产生的等离子体引起的氦流变型(通过schlieren成像可视化)。已经显示,等离子体作用可以在浮力作用的下游向上移动几厘米,这使得在等离子体关闭时情况并非如此的条件下,氦气流量可以达到下面的目标。这项研究揭示了在kHz模式下重复运行期间,大而长寿命负离子的关键作用,从而导致气体传播发生强烈变化。由一系列施加的电压脉冲产生的,累积的,附加的,沿河流方向流动的动量转移到周围的空气中,从而在数十毫秒的时间尺度上逐渐形成氦气通道。在某些情况下,通过负极性电压脉冲提供的等离子体可以向目标生成稳定的稳定圆柱形氦气通道,而正极性操作会导致干扰流。这直接影响到氦气通道中的空气渗透,然后影响靶上的反应性物质产生,这对于生物医学应用非常重要。还已经表明,通过适当地组合负极性和正极性脉冲,可以从两个极性特征中受益,以便优化等离子体羽流的传播和向靶的等离子体递送。

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