期刊文献+

基于LES的非稳态火焰面/反应进度变量方法模拟部分预混抬举火焰 被引量:2

Simulation of Partially Premixed Lifted Flame Based on Unsteady Flamelet/Progress Variable Approach of LES
下载PDF
导出
摘要 为了描述部分预混燃烧的火焰机制,捕捉燃烧现象中的非稳态效应,采用大涡模拟与非稳态火焰面/反应进度变量方法相结合来模拟湍流部分预混燃烧抬举火焰,并将计算结果与实验测量值进行了对比研究。结果表明基于大涡模拟的非稳态火焰面/反应进度变量方法捕捉到了湍流部分预混燃烧中的火焰抬举现象,计算得到的火焰抬举高度大致为35,和实验测量值完全一致。同时采用各热力学参数在混合分数空间的分布来研究部分预混抬燃烧中具有非稳态燃烧特性的局部熄火现象。各不同截面上的燃烧热力学参数与实验测量值吻合较好,说明采用该方法能比较真实地反映湍流部分预混燃烧的火焰机制。 In order to describe the flame mechanism in partially premixed combustion and capture the unsteady effect of combustion phenomenon,an unsteady flamelet/progress variable approach combining large-eddy simulation was applied in simulating a turbulent partially premixed lifted flame,and then taking the calculation values comparing with experiment measuring results. It is indicated that results of unsteady flamelet progress/variable combining large-eddy simulation have captured lifted flame phenomenon in the turbulent partially premixed combustion,and the lift-off height of calculation is about 35,lift-off height by experiment measurment is also35. At the same time,analyse the unsteady combustion characteristic phenomenon of local extinction by mean of thermochemical quantities in mixture fraction space. Thermochemical quantities in different sections by calculation agree reasonably well with the experiment measuring results. It is indicated that combining large-eddy simulation with unsteady flamelet progress/variable could correctly reflect flame mechanism existing in turbulent partially premixed combustion.
出处 《推进技术》 EI CAS CSCD 北大核心 2017年第1期148-157,共10页 Journal of Propulsion Technology
关键词 大涡模拟 非稳态 反应进度变量 抬举火焰 局部熄火 Large eddy simulation Unsteady Progress variable Lifted flame Local extinction
  • 相关文献

参考文献3

二级参考文献55

  • 1王海峰,陈义良,刘明侯.湍流扩散燃烧的数值研究—PDF方法和火焰面模型的性能比较[J].工程热物理学报,2005,26(z1):241-244. 被引量:9
  • 2董刚,王海峰,陈义良.用火焰面模型模拟甲烷/空气湍流射流扩散火焰[J].力学学报,2005,37(1):73-79. 被引量:10
  • 3周力行,胡砾元,王方.湍流燃烧大涡模拟的最近研究进展[J].工程热物理学报,2006,27(2):331-334. 被引量:27
  • 4Peters N. Laminar flamelet concepts in turbulent combustion [J]. Symposium ( International ) on Combustion, 1988,21:1 231-1 250.
  • 5Pierce C D, Moin P. Progress-variable approach for large-eddy simulation of non-premixed turbulent combustion[J]. Journal of Fluid Mechanics, 2004, 504: 73-97.
  • 6Ihme M, Pitsch H. Prediction of extinction and reignition in nonpremixcd turbulent flames using a flamelet/progress variable model: 1. A priori study and presumed PDF closure [J]. Combustion and Flame, 2008,155: 70-89.
  • 7lhme M, Pitsch H. Prediction of extinction and reignition in nonpremixed turbulent flames using a flamelet/progress variable model: 2. Application in IrES of Sandia flames D and E[J]. Combustion and Flame, 2008,155: 90-107.
  • 8Ihme M, Pitsch H, Bodony D. Radiation of noise in turbulent non-premixed flames[J]. Proceedings of the Combustion Institute, 2009, 32: 1 545-1 553.
  • 9OpenFOAM[CP/OL]. [2009-09-01]. http://www. openfoam. com/.
  • 10Bilger R W, Starner S H, Kee R J. On reduced mechanisms for methane air combustion in nonpremixed flames[J]. Combustion and Flame, 1990, 80(2) : 135-149.

共引文献17

同被引文献7

引证文献2

二级引证文献6

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