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稀释燃烧的火焰稳定性 被引量:2

Flame Stability of Diluted Combustion
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摘要 采用实验研究的方法探讨了反应物预热温度与稀释率两个因素对稀释燃烧火焰稳定性的影响.实验以氮气稀释的甲烷-空气对冲扩散火焰为研究对象,确定了不同反应物预热温度与氧化剂稀释率(氧气体积分数)时火焰的熄火极限,结果表明,增大反应物预热温度拓宽了火焰稳定燃烧区域,而增加氧化剂稀释率(降低氧气体积分数)会降低稀释火焰的稳定性,二者对火焰稳定性的影响作用相反.为了进一步分析反应物预热温度与稀释率对火焰稳定性的影响程度,引入了估算的Damk hler数,分析表明,在实验研究范围内,反应物预热温度对火焰稳定性的影响比稀释率的影响显著,是火焰稳定性的主要影响因素. The effects of preheat temperature of reactants and dilution rate of oxidizer ( or oxygen concentration) on flame stability of diluted combustion, which was established in a ( CH4 + N2 )/( Air + N2 ) counter flow burner, were investigated in this paper. Flame stability was studied by determining extinction limits on various preheat temperature level and dilution rate. It was shown that stable combustion domain of flame was expanded with the increasing of preheat temperature, but high dilution rate of oxidizer decreased flame stability. Preheat temperature and dilution rate had opposite effects on flame stability characteristics. Extinction limit data analysis on the basis of an estimated Damkohler number showed that preheat temperature had a more important effect than dilution rate on flame stability, and therefore, it was the main factor of diluted combustion with flame under the conditions of the experiments examined.
出处 《燃烧科学与技术》 EI CAS CSCD 北大核心 2009年第2期103-108,共6页 Journal of Combustion Science and Technology
基金 国家自然科学基金资助项目(50606004)
关键词 对冲火焰 稀释燃烧 稳定性 熄火极限 counter flow flame diluted combustion stability extinction limit
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参考文献17

  • 1王关晴,程乐鸣,骆仲泱,岑可法.高温空气燃烧技术中燃烧特性的研究进展[J].动力工程,2007,27(1):81-89. 被引量:24
  • 2Katsuki M,Hasegawa T.The science and technology of combustion in highly preheated air[C]// Twenty-Seventh Symposium (International) on Combustion.Pittsburgh:The Combustion Institute,1998:3135-3146.
  • 3祁海鹰,李宇红,由长福,徐旭常.高温空气燃烧技术的国际发展动态[J].工业加热,2003,32(1):1-7. 被引量:37
  • 4Wanning J A,Wanning J G.Flameless oxidation to reduce thermal NO-formation[J].Progress in Energy and Combus tion Science,1997,23(1):81-94.
  • 5Maruta K,Muso K,Takeda K,et al.Reaction zone structure in timeless combustion[C]//Proceedings of the Combustion Institute.Pittsburgh:The Combustion Institute,1998:2117-2123.
  • 6Cavaliere A,Joarmon M D.Mild combustion[J].Progress in Energy and Combustion Science,2004,30(4):329-366.
  • 7Plessing T,Peters N,Warming J G.Laseroptical investigation of highly preheated combustion with strong exhaust gas recirculation[C]// Twenty-Seventh Symposium (International) on Combustion.Pittsburgh:The Combustion Institute,1998:3197-3204.
  • 8Milani A,Saponaro A.Diluted Combustion Technologies[EB/OL].www.journal,ifrf.net,2001.
  • 9Fujimori T,Riechelmann D,Sato Jun' Ichi.Effect of liftaff on NOx emission of turbulent jet flame in high-temperature coflowing air[C]// Twenty-Seventh Symposium (International) on Combustion.Pittsburgh:The Combustion Institute 1998:1149-1155.
  • 10Ishiguro T,Tsuge S,Furuhata T,et al.Homogenization and stabilization during combustion of hydrocarbons with prehea ted air[C]//Twenty-Seventh Symposium (International) on Combustion.Pittsburgh:The Combustion Institute,1998:3205-3213.

二级参考文献16

  • 1祁海鹰 李宇红 由长福 等.高温空气燃烧技术的研究进展报告[R].北京:清华大学热能工程研究所,2001..
  • 2Kasahara M,Hasegawa T.Characteristics of hightemperature air combustion (Ⅱ:Influence of dilution of oxygen concentration)[C].Proceedings of the 34th Japanese Combustion Symposium,1996:642-644.
  • 3Shimada T,Akiyama T,Mitsui K.et al.Time-resolved temperature profiling of flames with highly preheated /low oxygen concentration air in an industrial size furnace[J].Journal of Engineering for Gas Turbines and Power,2005,127(3):464-471.
  • 4Hasegawa T,Tanaka R.High temperature air combustionrevolution in combustion technology(part Ⅰ:New findings on high temperature air combustion)[J].JSME International Journal,Series B,1998,41(4):1079-1084.
  • 5Nishimura M,Suzuki T,Nakanishi R.et al.Low-NOx combustion under high preheated air temperature condition in an industrial furnace[J].Energy Conversion and Management,1997,38(10-13):1153-1163.
  • 6Weinberg F.Heat-recalculating burners:Principles and some recent development[J].Combustion Science and Technology,1996,121(1):3-22.
  • 7Weinberg F.Combustion temperature:The future?[J].Nature,1971,(210):223-239.
  • 8Choi G M,Katsuki M.Advanced low NOx combustion using highly preheated air[J].Energy Conversion and Management,2001,42(5):639-652.
  • 9Katsuki M,Hasegawa T.The science and technology of combustion in highly preheated air[C].27th International Symposium on Combustion,1998(27):3135-3146.
  • 10Gupta A K,Li Z.Effect of fuel property on the structure of highly preheat air flames[C].Proceeding of International Joint Power Generation Conference,Denver,1997:189-196.

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