期刊文献+

Micro-organic dust combustion considering particles thermal resistance 被引量:2

Micro-organic dust combustion considering particles thermal resistance
下载PDF
导出
摘要 Organic dust flames deal with a field of science in which many complicated phenomena like pyrolysis or devolatization of solid particles and combustion of volatile particles take place. One-dimensional flame propagation in cloud of fuel mixture is analyzed in which flame structure is divided into three zones. The first zone is preheat zone in which rate of the chemical reaction is small and transfer phenomena play significant role in temperature and mass distributions. In this model, it is assumed that particles pyrolyze first to yield a gaseous fuel mixture. The second zone is reaction zone where convection and vaporization rates of the particles are small. The third zone is convection zone where diffusive terms are negligible in comparison of other terms. Non-zero Biot number is used in order to study effect of particles thermal resistance on flame characteristics. Also, effect of particle size on combustion of micro organic dust is investigated. According to obtained results, it is understood that both flame temperature and burning velocity decrease with rise in the Biot number and particle size. Organic dust flames deal with a field of science in which many complicated phenomena like pyrolysis or devolatization of solid particles and combustion of volatile particles take place. One-dimensional flame propagation in cloud of fuel mixture is analyzed in which flame structure is divided into three zones. The first zone is preheat zone in which rate of the chemical reaction is small and transfer phenomena play significant role in temperature and mass distributions. In this model, it is assumed that particles pyrolyze first to yield a gaseous fuel mixture. The second zone is reaction zone where convection and vaporization rates of the particles are small. The third zone is convection zone where diffusive terms are negligible in comparison of other terms. Non-zero Biot number is used in order to study effect of particles thermal resistance on flame characteristics. Also, effect of particle size on combustion of micro organic dust is investigated. According to obtained results, it is understood that both flame temperature and burning velocity decrease with rise in the Biot number and particle size.
出处 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第7期2833-2840,共8页 中南大学学报(英文版)
关键词 micro-organic dust Biot number particles thermal resistance flame temperature burning velocity 粉尘燃烧 颗粒燃烧 热阻 化学反应速率 气体燃料 火焰温度 火焰处理 固体颗粒
  • 相关文献

参考文献2

二级参考文献26

  • 1LEU J H. Biomass power generation through direct integration of updraft gasifier and stifling engine combustion system [J]. Advances in Mechanical Engineering, 2010: 1-7.
  • 2CARLSEN H N, AMMUNDSEN N, TRAERUP J. 40kW stifling engine for solid fuel [C]// In Proceedings of the 31st Intersociety Energy Conversion Engineering Conference. Washington DC, USA, 1996: 23-34.
  • 3JENSEN N, WERLING J. CHP from updraft gasifier and stifling engine [C]// In Proceedings of the 12th European BiomassConference. Amsterdam, The Netherlands, 2002: 131-149.
  • 4LANE N, BEALE W. Micro-biomass electric power generation [C]// In Proceedings of the 3rd Biomass Conference of the America, Montreal, Canada, 1997: 83-104.
  • 5HAN O S, YASHIMA M, MATSUDA T, MATSUI H, MIYAKE A, OGAWA T. Behavior of flames propagating through lycopodium dust clouds in a vertical duct [J]. Journal of Loss Prevention in the Process Industries, 2000, 13: 449-457.
  • 6YAN-SONG Z, LI-LI H, LEI W. Mechanism research of gas and coal dust explosion [J]. Journal of Coal Science and Engineering, 2009, 15(2): 171-174.
  • 7BURGOYNE J H, COHEN L. The effect of drop size on flame propagation in liquid aerosols [J]. Proc Roy Soc Lond, 1954, 225(1162): 375-392.
  • 8BROWNING J A, TYLER T L, KRALL W G. Effect of particle size on combustion of uniform suspensions [J]. J Industrial and Engineering Chemistry, 1957, 49(1): 142-147.
  • 9POLYMEROPOULOS C E. Flame propagation in a one-dimensional liquid fuel spray [J]. Combustion Science and Technology, 1974, 9(5/6): 197-207.
  • 10BALLAL D R, LEFEBVRE A H. Flame propagation in heterogeneous mixtures of fuel droplets, fuel vapor and air [J]. Proc Combust Inst, 1981, 18: 321-328.

共引文献4

同被引文献3

引证文献2

二级引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部