在大而复杂的表面上产生非热等离子体

IF 1.3 Q3 ORTHOPEDICS
H. Jakob, Min Kwan Kim
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引用次数: 4

摘要

大气非热等离子体由于其产生反应物质的独特能力,在食品、医疗和保健技术等各种应用中越来越受到关注。尽管具有很大的潜力,但在人体或狭窄通道等大型复杂几何形状上产生非热等离子体仍然具有挑战性,并且限制了大气非热等离子体的使用。在这项研究中,我们提出了两种新的电极系统,印刷电极和针织电极,以提高传统大气非热等离子体源的可扩展性和灵活性。两个电极系统的灵活性是量化的不同曲率,以产生非热等离子体在复杂的几何形状。此外,两种电极系统都评估了不同的系统尺寸,以评估大规模等离子体几何形状的能力。电学和光学诊断包括光学发射光谱(OES),用于监测这些系统产生的等离子体的特性。目前的研究表明,印刷电极和编织电极都可以产生非热等离子体,但两者都有一定的局限性。根据这些发现,提出了一种用于处理大表面或窄长通道的新型混合电极系统的示意图,以消除这些限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Generation of non-thermal plasmas over large and complex surfaces
Atmospheric non-thermal plasma is gaining increasing attention for various applications including food, medical and healthcare technologies because of its unique capability in producing reactive species. In spite of its promising potential, generating non-thermal plasma over large and complex geometries such as the human body or a narrow channel is still challenging and is limiting the use of atmospheric non-thermal plasma. In this study, we propose two new electrode systems, printed and knitted electrodes, to enhance scalability and flexibility of a conventional atmospheric non-thermal plasma source. The flexibilities of both electrode systems are quantified for varying curvatures to generate non-thermal plasma over complex geometries. Moreover, both electrode systems are assessed for varying system size to assess the ability of large scale plasma geometries. Electrical and optical diagnostics including Optical Emission Spectroscopy (OES), are used to monitor the property of plasma generated by these systems. The present study shows that both printed and knitted electrodes can produce non-thermal plasma, however both have certain limitations. Concluding from these findings, a schematic of new hybrid electrode system for the treatment of large surfaces or narrow long channels is proposed to eradicate these limitations.
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来源期刊
Plasma Research Express
Plasma Research Express Energy-Nuclear Energy and Engineering
CiteScore
2.60
自引率
0.00%
发文量
15
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