主管:中华人民共和国应急管理部
主办:应急管理部天津消防研究所
ISSN 1009-0029  CN 12-1311/TU

消防科学与技术 ›› 2026, Vol. 45 ›› Issue (8): 16-23.DOI: 10.20168/j.1009-0029.2026.08.0016.08

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氮气掺混对氢气射流火焰燃烧特性影响的试验研究

沙海伟, 韩倩倩   

  1. (中国能源建设集团江苏省电力设计院有限公司,江苏 南京 211102)
  • 收稿日期:2025-04-03 修回日期:2025-05-07 出版日期:2026-08-15 发布日期:2026-08-15
  • 作者简介:沙海伟,中国能源建设集团江苏省电力设计院有限公司,主要从事氢能相关的设计研究工作,江苏省南京市渡江路10号,211102,q58261336411@126.com。

Experimental study of the effect of nitrogen doping on the combustion characteristics of hydrogen jet flames

Sha Haiwei, Han Qianqian   

  1. (China Energy Engineering Group, Jiangsu Power Design Institute Co., Ltd., Nanjing Jiangsu 211102, China)
  • Received:2025-04-03 Revised:2025-05-07 Online:2026-08-15 Published:2026-08-15

摘要: 氢能作为清洁燃料应用前景广阔,但其燃烧剧烈、稳定性差,易诱发安全隐患,氮气掺混调控氢气火焰燃烧特性是提升氢能安全利用的关键技术。本研究通过试验探究了氮气掺混对氢气射流火焰燃烧特性的影响,系统分析了不同氮气掺混比例对火焰的温度场、稳定燃烧时间及形态演化的影响规律。结果表明:随着氮气掺混比例增加,火焰最高温度显著降低,垂直火焰纯氢火焰最高温度达842.8 ℃,掺混30%时降至726.5 ℃,降幅为13.8%,水平火焰则从859.3 ℃降至706.0 ℃,降幅达17.8%。氮气掺混体积分数达到40%时,混合气体无法维持连续燃烧,达到了稳定性临界值。火焰稳定燃烧时间随掺混比例呈非线性缩短,纯氢火焰可持续15.58 s,掺混30%时锐减至2.61 s。掺混氮气后,火焰亮度明显降低,水平火焰射流呈现细长射流状传播。氮气掺混可有效调控氢气火焰的核心区域温度与燃烧强度。

关键词: 燃烧, 火焰, 氮气惰化, 射流, 氢能安全

Abstract: Hydrogen energy as a clean fuel has a broad application prospect, but its violent combustion and poor stability is easy to induce safety hazards. Nitrogen doping to regulate the combustion characteristics of the hydrogen flame is a key technology to enhance the safe utilization of hydrogen energy. In this study, the effect of nitrogen doping on the combustion characteristics of hydrogen jet flames was investigated through experiments, and the influence of different nitrogen doping ratios on the temperature field, stable combustion time and morphology of the flame was systematically analyzed. The experimental results show that the maximum flame temperature decreases significantly with the increase of nitrogen doping ratio. The maximum temperature of the pure hydrogen flame in vertical flame reaches 842.8 ℃, which decreases to 726.5 ℃ with 30% of nitrogen doping, with a decrease of 13.8%, and that of the horizontal flame decreases from 859.3 ℃ to 706.0 ℃, with a decrease of 17.8%. When the nitrogen doping volume fraction reached 40%, the gas mixture could not maintain continuous combustion and reached the stability critical value. The stabilized combustion time of the flame was nonlinearly shortened with the doping ratio, and the pure hydrogen flame lasted 15.58 s, which was sharply reduced to 2.61 s with 30% of nitrogen doping. After nitrogen doping, the brightness of the flame was significantly reduced, and the horizontal flame jet showed an elongated jet-like propagation. Nitrogen doping can effectively regulate the core region temperature and combustion intensity of hydrogen flame.

Key words: combustion, flame, nitrogen inertization, jet, hydrogen safety