通过与二氧化碳相结合的等离子体有效减少火焰烟
Dandan Qi1, Mingxiao Chen1, Kaixuan Yang1
1MIIT Key Laboratory of Thermal Control of Electronic Equipment, School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing 210094, People's Republic of China; Advanced Combustion Laboratory, School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing 210094, People's Republic of China.
Journal of hazardous materials
|February 3, 2024
概括
非热等离子体和二氧化碳 (CO2) 显著减少了火焰烟尘排放. 这种组合还改变了烟尘的纳米结构,减少了石墨化和碳化,从而实现更清洁的燃烧.
科学领域:
- 燃烧科学 燃烧科学
- 等离子体物理学的物理学
- 化学工程是化学工程的重要组成部分.
背景情况:
- 扩散火焰的烟尘排放是一个主要的环境问题.
- 二氧化碳 (CO2) 和 (N2) 是燃烧中常用的稀释剂.
- 非热等离子体是污染物控制的新兴技术.
研究的目的:
- 研究非热等离子体和二氧化碳对火焰烟尘特性的协同效应.
- 在各种条件下分析火焰结构,温度和烟尘特性.
- 了解对烟灰纳米结构和石墨化的影响.
主要方法:
- 用CO2或N2稀释的扩散火焰的实验研究.
- 在有或没有稀释剂的情况下包括非热等离子体.
- 使用光学方法和拉曼光谱学分析火焰结构,温度分布和烟尘特征 (纳米结构,石墨化).
主要成果:
- 与N2稀释相比,CO2稀释导致较低的火焰温度,这是由于更高的特定热量容量.
- 血和二氧化碳的组合导致了最低的烟尘度,表明了协同抑制作用.
- 二氧化碳稀释,特别是在低度的氧气中,产生了带有较低石墨化和较短边缘长度的无形烟尘,并且在等离子体的存在下具有更高的扭曲度.
结论:
- 与二氧化碳相结合的等离子体在抑制烟尘排放方面表现出协同效应.
- 烟尘的纳米结构被等离子体和CO2显著改变,导致碳化减少.
- 这种综合方法有效地减轻了扩散火焰中烟尘的形成.
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