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Analysis of conductive target influence in plasma jet experiments through helium metastable and electric field measurements

机译:通过氦稳态和电场测量对等离子体喷射实验导电目标影响分析

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The use of cold atmospheric pressure plasma jets for in vivo treatments implies most of the time plasma interaction with conductive targets. The effect of conductive target contact on the discharge behavior is studied here for a grounded metallic target and compared to the free jet configuration. In this work, realized with a plasma gun, we measured helium metastable HeM (2~3S~1) concentration (by laser absorption spectroscopy) and electric field (EF) longitudinal and radial components (by electro-optic probe). Both diagnostics were temporally and spatially resolved. Mechanisms after ionization front impact on the target surface have been identified. The remnant conductive ionized channel behind the ionization front electrically transiently connects the inner high voltage electrode to the target. Due to impedance mismatching between the ionized channel and the target, a secondary ionization front is initiated and rapidly propagates from the target surface to the inner electrode through this ionized channel. This leads to a greatly enhanced He~M production inside the plasma plume and the capillary. Forward and reverse dynamics occur with further multi reflections of more or less damped ionization fronts between the inner electrode and the target as long as the ionized channel is persisting. This phenomenon is very sensitive to parameters such as target distance and ionized channel conductivity affecting electrical coupling between these two and evidenced using positive or negative voltage polarity and nitrogen admixture. In typical operating conditions for the plasma gun used in this work, it has been found that after the secondary ionization front propagation, when the ionized channel is conductive enough, a glow like discharge occurs with strong conduction current. He~M production and all species excitation, especially reactive ones, are then driven by high voltage pulse evolution. The control of forward and reverse dynamics, impacting on the production of the glow
机译:用于体内处理的冷大气压等离子体喷射的使用意味着大部分时间等离子体与导电目标相互作用。这里研究了导电目标接触对放电行为的影响,用于接地金属靶,并与自由喷射构型进行比较。在这项工作中,用等离子体枪实现,我们测量氦稳定性下摆(2〜3〜1)浓度(通过激光吸收光谱)和电场(EF)纵向和径向分量(通过电光探针)。两种诊断都在时间上和空间解决。已经鉴定了电离前正面撞击后的机制。电离前后的残余导电电离通道电动瞬时将内部高压电极连接到目标。由于电离通道和靶之间的阻抗不匹配,通过该电离通道开始从靶表面到内电极快速传播二次电离前沿。这导致在等离子羽毛和毛细血管内产生的大大增强。由于电离通道持续存在,在内电极和靶之间的进一步或多或少阻尼电离前沿的进一步多反射发生前向和反向动力学。这种现象对诸如目标距离和电离通道电导率的参数非常敏感,影响两者之间的电耦合并且使用正或负电压极性和氮混合物证明。在该工作中使用的等离子体枪的典型操作条件下,已经发现,在二次电离前沿,当电离通道足够导电时,发生具有强的导通电流的发光。然后通过高压脉冲演化驱动He〜M生产和所有物种励磁,尤其是反应性的励磁。对前和逆转动态的控制,影响发光的生产

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