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Propagation characteristics of atmospheric-pressure He+O_2 plasmas inside a simulated endoscope channel

机译:大气压He + O_2等离子体在模拟内窥镜通道内的传播特性

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摘要

Cold atmospheric-pressure plasmas have potential to be used for endoscope sterilization. In this study, a long quartz tube was used as the simulated endoscope channel, and an array of electrodes was warped one by one along the tube. Plasmas were generated in the inner channel of the tube, and their propagation characteristics in He+O_2 feedstock gases were studied as a function of the oxygen concentration. It is found that each of the plasmas originates at the edge of an instantaneous cathode, and then it propagates bidirectionally. Interestingly, a plasma head with bright spots is formed in the hollow instantaneous cathode and moves towards its center part, and a plasma tail expands through the electrode gap and then forms a swallow tail in the instantaneous anode. The plasmas are in good axisymmetry when [O_2] ≤ 0.3%, but not for [O_2] ≥ 1%, and even behave in a stochastic manner when [O_2] = 3%. The antibacterial agents are charged species and reactive oxygen species, so their wall fluxes represent the "plasma dosage" for the sterilization. Such fluxes mainly act on the inner wall in the hollow electrode rather than that in the electrode gap, and they get to the maximum efficiency when the oxygen concentration is around 0.3%. It is estimated that one can reduce the electrode gap and enlarge the electrode width to achieve more homogenous and efficient antibacterial effect, which have benefits for sterilization applications.
机译:冷的大气压等离子体有潜力用于内窥镜消毒。在这项研究中,使用一根长石英管作为模拟的内窥镜通道,沿着该管一个接一个地弯曲电极阵列。在管的内部通道中产生了等离子体,并研究了它们在He + O_2原料气中的传播特性与氧气浓度的关系。发现每个等离子体起源于瞬时阴极的边缘,然后双向传播。有趣的是,在中空瞬时阴极中形成具有亮点的等离子体头并向其中心部分移动,等离子体尾部在电极间隙中膨胀,然后在瞬时阳极中形成燕尾。当[O_2]≤0.3%时,等离子体具有良好的轴对称性,但当[O_2]≥1%时,等离子体则没有,甚至在[O_2] = 3%时也呈随机性。抗菌剂是带电物质和活性氧物质,因此它们的壁通量代表灭菌的“血浆剂量”。这些通量主要作用于中空电极的内壁而不是电极间隙中的通量,并且当氧浓度为0.3%左右时它们达到最大效率。据估计,可以减小电极间隙并增大电极宽度,以实现更均匀和有效的抗菌效果,这对于灭菌应用是有益的。

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  • 来源
    《Journal of Applied Physics》 |2015年第20期|203301.1-203301.8|共8页
  • 作者单位

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China;

    Frank Reidy Center for Bioelectrics, Old Dominion University, Norfolk, Virginia 23508, USA;

    State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China,Frank Reidy Center for Bioelectrics, Old Dominion University, Norfolk, Virginia 23508, USA,Department of Electrical and Computer Engineering, Old Dominion University, Norfolk, Virginia 23529, USA;

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