Review of DC and AC Arc Plasma at High Pressures Above Atmospheric Pressure

被引:2
|
作者
Diab, Jad [1 ]
Dames, Enoch [2 ]
Rohani, Vandad [1 ]
Wyse, Elliot [2 ]
Fulcheri, Laurent [1 ]
机构
[1] PSL Univ, Ctr Proc Renewable Energy & Energy Syst PERSEE, Mines Paris, F-06904 Paris, France
[2] MONOLITH Mat, 662 Laurel St,Suite 201, San Carlos, CA 94070 USA
关键词
Thermal arc plasma; High pressure; Electrical characteristics; Electrode erosion; Plasma thermodynamics; ELECTRODE EROSION; EMISSION COEFFICIENTS; CARBON NANOTUBES; COLUMN; ARGON; GAS; NANOSTRUCTURES; TECHNOLOGY; DISCHARGE; BEHAVIOR;
D O I
10.1007/s11090-024-10457-9
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In light of the adopted green policies and strategies, thermal plasmas are gaining interest as a potential solution to electrify the industry, particularly for endothermic processes, for their tunable enthalpy and the absence of direct CO2 emissions. However, the majority of industrial applications of thermal plasma technologies are at atmospheric or lower pressure, whether for material processing, waste treatment, gasification, assisted combustion or in electric arc furnaces. Very little information exists on thermal plasmas at pressures above 1 bar, with the majority of academic publications using either analytical or numerical methodologies. The main experimental high-pressure plasma studies conducted date back to the 1960s, the 1970s and 1980s mainly in the US and the EU for aerospace applications, in addition to gas blast circuit breaker and underwater welding applications. However, these systems operate only for a few milliseconds to a few minutes at most. The interest in operating plasma systems at high-pressure is on one hand to reduce the volume of the facilities, and therefore, global costs, and on the other hand, is of practical necessity such as the case of underwater welding and in aerospace application where plasma technology plays a role in duplicating the conditions to which a vehicle is exposed to in atmospheric entry/reentry. This paper reports a thorough literature review on all high-pressure plasma arc studies available to date, including journal articles, books, and declassified reports. The findings of the studies are classified into four categories: DC and AC technologies, electrical characteristics, thermodynamics and heat transfer, and electrode erosion. The gaps and limitations are identified, and the main hypotheses are formulated, (re)opening the way for future high-pressure thermal plasma studies. Operating thermal plasma systems at high pressure could have considerable economic benefits, and thus, leading to competitive pricing for electrified high temperature processes, but faces many challenges.
引用
收藏
页码:687 / 720
页数:34
相关论文
共 50 条
  • [31] Investigation of In-Flight Glass Melting by Controlling the High-Temperature Region of Multiphase AC Arc Plasma
    Liu, Yaping
    Tanaka, Manabu
    Choi, Sooseok
    Watanabe, Takayuki
    INTERNATIONAL JOURNAL OF APPLIED GLASS SCIENCE, 2014, 5 (04) : 443 - 451
  • [32] PLASMA SURFACE ACTIVATION OF HIGH DENSITY POLYETHYLENE AT ATMOSPHERIC PRESSURE
    Dvorakova, Hana
    Cech, Jan
    Cernak, Mirko
    Stahel, Pavel
    NANOCON 2015: 7TH INTERNATIONAL CONFERENCE ON NANOMATERIALS - RESEARCH & APPLICATION, 2015, : 309 - 314
  • [33] Transverse Stabilization of Atmospheric-Pressure DC Glow Plasma in Air With Resistive Barrier
    Stephan, Karl D.
    Ghimire, Sagar
    Smith, Robert K.
    Komala-Noor, Laurence
    Massey, Nathan
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2011, 39 (10) : 1919 - 1926
  • [34] Study of Non-Thermal DC Arc Plasma of CH4/Ar at Atmospheric Pressure Using Optical Emission Spectroscopy and Mass Spectrometry
    廖梦然
    王毓
    吴涵峰
    李辉
    夏维东
    Plasma Science and Technology, 2015, 17 (09) : 743 - 748
  • [35] Characterization of high microwave power atmospheric pressure plasma torch
    Turkyilmaz, B.
    Mansuroglu, D.
    Uzun-Kaymak, I. U.
    CANADIAN JOURNAL OF PHYSICS, 2018, 96 (07) : 851 - 854
  • [36] Investigating near-anode plasma layers of very high-pressure arc discharges
    Almeida, N. A.
    Benilov, M. S.
    Hechtfischer, U.
    Naidis, G. V.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2009, 42 (04)
  • [37] Plasma Parameters of a Gliding Arc Jet at Atmospheric Pressure Obtained by a Line-Ratio Method
    Li Hui
    Xie Mingfeng
    PLASMA SCIENCE & TECHNOLOGY, 2013, 15 (08) : 776 - 779
  • [38] A review of recent applications of atmospheric pressure plasma jets for materials processing
    Penkov, Oleksiy V.
    Khadem, Mahdi
    Lim, Won-Suk
    Kim, Dae-Eun
    JOURNAL OF COATINGS TECHNOLOGY AND RESEARCH, 2015, 12 (02) : 225 - 235
  • [39] Synthesis of nano-AlN powders from Al wire by arc plasma at atmospheric pressure
    Li, Lin
    Ni, Guo-hua
    Zhao, Yan-jun
    Guo, Qi-jia
    Lin, Qi-fu
    Sui, Si-yuan
    Xie, Hong-bin
    Duan, Wen-xue
    CERAMICS INTERNATIONAL, 2018, 44 (17) : 21810 - 21815
  • [40] Spot and diffuse mode of cathode attachments in a magnetically rotating arc plasma generator at atmospheric pressure
    Wang, Cheng
    Sun, Qiang
    Sun, Lu
    Lu, Zhongshan
    Xia, Weiluo
    Xia, Weidong
    JOURNAL OF APPLIED PHYSICS, 2019, 125 (03)