新型阳极结构对纯氮层流火炬热流特性和射流稳定性的影响

IF 2.6 3区 物理与天体物理 Q3 ENGINEERING, CHEMICAL
Xiuquan Cao, Yong He, Jin Tao, Haoming Xu, Guangzhong Hu, Chao Li
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引用次数: 0

摘要

为了提高纯层流等离子体炬的射流稳定性,保证表面处理的一致性,在前人研究的基础上,提出了一种新型的阳极结构——内台阶阳极。利用自制的模拟模型,研究了内台阶阳极轴向长度对射流稳定性和热流特性的影响。最后进行了相应的实验,验证了阳极优化的有效性。研究结果表明:(1)随着内台阶阳极轴向长度的增加,阳极区域的温度和速度略有增加,相反,相应的阳极电流密度略有降低,有利于延长电极寿命;(1)内台阶阳极有利于提高纯层流等离子炬的射流稳定性。随着内台阶阳极轴向长度的增加,射流稳定性先增大到一定水平,然后平稳下降。当轴向长度为5mm时,等离子炬的射流稳定性最高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Influence of Novel Anode Structure on the Heat Flow Characteristics and Jet Stability of Pure Nitrogen Laminar Torch

Influence of Novel Anode Structure on the Heat Flow Characteristics and Jet Stability of Pure Nitrogen Laminar Torch

For improving the jet stability of pure laminar plasma torch to ensure the consistency of the surface treatment, based on previous studies, a novel anode structure, named as internal step anode, has been proposed. Sequences, the effects of axial lengths of the internal step anode on the jet stability and heat flow characteristics have been explored by using a home-made simulation model. Finally, corresponding experiments have been conducted to verify the effectiveness of the anode optimization. Research results show that: (1) With increasing the axial lengths of the internal step anode, the temperature and velocity of the anode area increase slightly, on the contrary, the corresponding anode current density decreases slightly, which is conducive to extending the electrode life; (1) the internal step anode is beneficial for improving the jet stability of pure laminar plasma torch. With increasing the axial length of the internal step anode, the jet stability increases to certain level and then decreases smoothly. When the axial length is 5 mm, the plasma torch presents the highest jet stability.

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来源期刊
Plasma Chemistry and Plasma Processing
Plasma Chemistry and Plasma Processing 工程技术-工程:化工
CiteScore
5.90
自引率
8.30%
发文量
73
审稿时长
6-12 weeks
期刊介绍: Publishing original papers on fundamental and applied research in plasma chemistry and plasma processing, the scope of this journal includes processing plasmas ranging from non-thermal plasmas to thermal plasmas, and fundamental plasma studies as well as studies of specific plasma applications. Such applications include but are not limited to plasma catalysis, environmental processing including treatment of liquids and gases, biological applications of plasmas including plasma medicine and agriculture, surface modification and deposition, powder and nanostructure synthesis, energy applications including plasma combustion and reforming, resource recovery, coupling of plasmas and electrochemistry, and plasma etching. Studies of chemical kinetics in plasmas, and the interactions of plasmas with surfaces are also solicited. It is essential that submissions include substantial consideration of the role of the plasma, for example, the relevant plasma chemistry, plasma physics or plasma–surface interactions; manuscripts that consider solely the properties of materials or substances processed using a plasma are not within the journal’s scope.
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