Disorder-induced heating as a mechanism for fast neutral gas heating in atmospheric pressure plasmas

M. Acciarri, Chris Hudson Moore, Scott D Baalrud
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Abstract

Recent findings suggest that ions are strongly correlated in atmospheric pressure plasmas if the ionization fraction is sufficiently high (≧10-5). A consequence is that ionization causes disorder-induced heating, which triggers a significant rise in ion temperature on a picosecond timescale. This is followed by a rise in the neutral gas temperature on a longer timescale of up to nanoseconds due to ion-neutral temperature relaxation. The sequence of disorder-induced heating and ion-neutral temperature relaxation suggests a new mechanism for ultrafast neutral gas heating. Previous work considered only the case of an instantaneous ionization pulse, whereas the ionization pulse extends over nanoseconds in many experiments. Here, molecular dynamics simulations are used to analyze the evolution of ion and neutral gas temperatures for a gradual ionization over several nanoseconds. The results are compared with published experimental results from a nanosecond pulsed discharge, showing good agreement with a measurement of fast neutral gas heating.
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无序诱导加热作为大气压等离子体中快速中性气体加热的一种机制
最近的研究结果表明,如果电离分数足够高(≧10-5),离子在大气压等离子体中具有很强的相关性。其结果是,电离导致无序诱导加热,从而引发离子温度在皮秒时间尺度上显著上升。随后,由于离子-中性温度弛豫,中性气体温度会在更长的时间尺度上上升,最高可达纳秒。无序诱导加热和离子中性温度弛豫的顺序表明了超快中性气体加热的新机制。以前的工作只考虑了瞬时电离脉冲的情况,而在许多实验中,电离脉冲的时间超过纳秒。在此,我们利用分子动力学模拟分析了离子和中性气体温度在数纳秒内逐渐电离的演变过程。模拟结果与已公布的纳秒脉冲放电实验结果进行了比较,结果显示与快速中性气体加热的测量结果非常吻合。
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