电弧炉等离子体中氰化物的复合

IF 1.3 Q3 ORTHOPEDICS
H. Pauna, T. Willms, M. Aula, T. Echterhof, M. Huttula, T. Fabritius
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引用次数: 1

摘要

氰化物与NOx、CO2和CO一起,是炼铁和炼钢行业中形成的有害化合物之一。高温工艺是形成氰化物的合适环境,在电弧等离子体中复合会形成氰化物。即使氰化物可能无法存活,例如在燃烧后的过程中,了解炼钢行业中危险物质的形成机制也很重要。在这项工作中,用CN分子的光发射研究了中试规模的交流电弧炉中氰化物的复合。结果表明,氰化物的光发射在不同的工艺步骤中是如何变化的。观察到电输入、等离子体温度以及电弧与固体电荷材料的相互作用对CN信号有影响。此外,平衡组成计算强调了不同的碳源如何改变复合率,最高的复合发生在6821K。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cyanide recombination in electric arc furnace plasma
Cyanide, among with NO x , CO2, and CO, is one of the adverse compounds that form in the ironmaking and steelmaking industry. High-temperature processes are suitable environments for cyanide formation, and cyanide can form as a result of recombination in electric arc plasma. Even though the cyanides might not survive e.g. the post-combustion process, understanding the formation mechanisms of hazardous materials in the steelmaking industry is important. In this work, the recombination of cyanide in a pilot-scale AC electric arc furnace is studied with optical emissions from the CN molecule. The results show how the optical emissions from the cyanide change in different process steps. Electric input, plasma temperature, and interaction of the arc with solid charge material were observed to have an impact on the CN signal. Additionally, equilibrium composition computation highlights how different sources of carbon change the recombination rate and that the highest recombination occurs at 6821 K.
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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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