微波大气压等离子体射流:综述

IF 1.3 4区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS
Suryasunil Rath, Satyananda Kar
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引用次数: 0

摘要

过去十年来,由于材料加工、二氧化碳解离、废物处理、制氢、水处理等潜在应用日益增多,人们对微波频率范围内的大气压放电产生了浓厚的兴趣。本综述深入探讨了在微波频率下运行的各种类型的大气压等离子体射流(APPJ)。分析综合了全面综述中的见解,包括微波大气等离子体射流(MW-APPJs)的不同几何类型、特性、建模和各种应用。本文将有助于全面了解环境大气中产生的微波等离子体。对这些放电的基本认识正在形成,但在这些固有的复杂等离子体中仍有许多无法解释的现象需要研究。这些 MW-APPJ 的特性包括较高范围的电子密度 (ne)、气体温度 (Tg)、电子温度 (Te) 以及活性氧和氮物种 (RONS)。本综述概述了生成和稳定 MW-APPJs 的关键基本过程。此外,还总结了这些放电的独特物理和化学特性。在第一部分,我们旨在介绍不同类型波导型和非波导型 MW-APPJ 的主要科学特征。随后的部分重点介绍了针对不同 MW-APPJ 的各种建模方法以及从这些模型中得出的结果。最后一部分介绍了 MW-APPJ 在各个领域的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microwave atmospheric pressure plasma jet: A review
Considerable interest has emerged in atmospheric pressure discharges within the microwave frequency range over the past decade, driven by the growing potential applications such as material processing, CO2 dissociation, waste treatment, hydrogen production, water treatment, and so forth. This review delves into the diverse types of atmospheric pressure plasma jets (APPJs) operated at microwave frequencies. The analysis integrates insights from an overall review that encapsulates the different types of geometry, characterizations, modeling, and various applications of microwave atmospheric plasma jets (MW‐APPJs). This paper will contribute to a comprehensive understanding of microwave plasma generated in the ambient atmosphere. The fundamental insights into these discharges are emerging, but there are still numerous unexplained phenomena in these inherently complex plasmas that need to be studied. The properties of these MW‐APPJs encompass a higher range of electron densities (ne), gas temperatures (Tg), electron temperatures (Te), and reactive oxygen and nitrogen species (RONS). This review provides an overview of the key underlying processes crucial for generating and stabilizing MW‐APPJs. Additionally, the unique physical and chemical properties of these discharges are summarized. In the initial section, we aim to introduce the primary scientific characterizations of different types of waveguide‐based and non‐waveguide‐based MW‐APPJs. The subsequent part focuses on the diverse modeling approaches for different MW‐APPJs and the outcomes derived from these models. The final section describes the potential applications of MW‐APPJs in various domains.
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来源期刊
Contributions to Plasma Physics
Contributions to Plasma Physics 物理-物理:流体与等离子体
CiteScore
2.90
自引率
12.50%
发文量
110
审稿时长
4-8 weeks
期刊介绍: Aims and Scope of Contributions to Plasma Physics: Basic physics of low-temperature plasmas; Strongly correlated non-ideal plasmas; Dusty Plasmas; Plasma discharges - microplasmas, reactive, and atmospheric pressure plasmas; Plasma diagnostics; Plasma-surface interaction; Plasma technology; Plasma medicine.
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