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Numerical simulation of excess-enthalpy combustion flame propagation of coal mine methane in ceramic foam 被引量:2

Numerical simulation of excess-enthalpy combustion flame propagation of coal mine methane in ceramic foam
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摘要 Based on the assumption of a local non-equilibrium of heat transfer between a solid matrix and gas,a mathematic model of coal mine methane combustion in a porous medium was established,as well the solid-gas boundary conditions.We simulated numerically the flame propagation characteristics.The results show that the flame velocity in ceramic foam is higher than that of free laminar flows;the maximum flame velocity depends on the combined effects of a radiation extinction coefficient and convection heat transfer in ceramic foam and rises with an increase in the chemical equivalent ratio.The radiation extinction coefficient cannot be used alone to determine the heat regeneration effects in the design of ceramic foam burners. Based on the assumption of a local non-equilibrium of heat transfer between a solid matrix and gas,a mathematic model of coal mine methane combustion in a porous medium was established,as well the solid-gas boundary conditions.We simulated numerically the flame propagation characteristics.The results show that the flame velocity in ceramic foam is higher than that of free laminar flows;the maximum flame velocity depends on the combined effects of a radiation extinction coefficient and convection heat transfer in ceramic foam and rises with an increase in the chemical equivalent ratio.The radiation extinction coefficient cannot be used alone to determine the heat regeneration effects in the design of ceramic foam burners.
出处 《Mining Science and Technology》 EI CAS 2010年第2期248-253,共6页 矿业科学技术(英文版)
基金 supported by the National Natural Science Foundation of China (No.50534090) the Science Foundation of China University of Mining and Technology (No.0E061046)
关键词 COMBUSTION ceramic foam coal mine methane numerical simulation flame propagation combustion ceramic foam coal mine methane numerical simulation flame propagation
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参考文献18

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  • 2Izzet Karakurt,Gokhan Aydin.Mine ventilation air methane as a sus-tainable energy source[J].Renewable and Sustainable Energy Re-views,2011,15:1042-1049.
  • 3Juan Yin,Shi Su.Thermodynamic characteristics of a low concentra-tion methane catalytic combustion gas turbine[J].Applied Energy,2010,86(6):2102-2108.
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  • 5Krzysztof Gosiewski,Anna Pawlaczyk.A study on thermal combus-tion of lean methane-air mixtures:simplified reaction mechanism andkinetic equations[J].Chemical Engineering Journal,2009,154:9-16.
  • 6Xie Maozhao,Shi Junrui,Deng Yangbo,et al.Experimental and nu-merical investigation on performance of a porous medium burner withreciprocating flow[J].Fuel,2009,88:206-213.
  • 7Krzysztof Gosiewskil.Effective approach to cyclic steady state in thecatalytic reverse-flow combustion of methane[J].Chemical Engi-neering Science,2004,59:4095-4101.
  • 8Mendes M A A,Pereira J M C,Pereira J C F.A numerical study ofthe stability of one-dimensional laminar premixed flames in inert por-ous media[J].Combustion and Flame,2008,153:525-539.
  • 9Fabiano Contarin,Alexei V Saveliev,Alexander A Fridman,et al.Areciprocal flow filtration combustor with embedded heat exchang-ers:numerical study[J].International Journal of Heat and MassTransfer,2003,46:949-961.
  • 10Krzysztof Gosiwski,Krzysztof Warmuzinski.Effect of the mode ofheat withdrawal on the asymmetry of temperature profiles in re-versel-flow reactors:catalytic combustion of methane as a test case[J].Chemical Engineering Science,2007,62:2679-2689.

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