Heat Transfer Effects on a Fully Premixed Methane Impinging Flame

A numerical assessment of different thermal conditions for an impinging flame configuration is investigated using large-eddy simulation. The cases of study correspond to a turbulent methane flame at equivalence ratio ER = 0.8 and temperature T = 298 K exiting at 30 m/s with a nozzle-to-plate distanc...

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Detalhes bibliográficos
Autores: Mira Martínez, Daniel, Zavala, Miguel, Avila, Matías, Owen, Herbert, Cajas García, Juan Carlos, Vázquez, Mariano|||0000-0002-2526-6708, Houzeaux, Guillaume|||0000-0002-2592-1426
Tipo de documento: artigo
Data de publicação:2016
País:España
Recursos:Universitat Politècnica de Catalunya (UPC)
Repositório:UPCommons. Portal del coneixement obert de la UPC
Idioma:inglês
OAI Identifier:oai:upcommons.upc.edu:2117/84411
Acesso em linha:https://hdl.handle.net/2117/84411
Access Level:Acceso aberto
Palavra-chave:Heat transfer
Conjugate heat transfer (CHT)
Impinging flame
Large-eddy simulation
Thermal boundary conditions
Transferència d'energia
Àrees temàtiques de la UPC::Enginyeria electrònica
Descrição
Resumo:A numerical assessment of different thermal conditions for an impinging flame configuration is investigated using large-eddy simulation. The cases of study correspond to a turbulent methane flame at equivalence ratio ER = 0.8 and temperature T = 298 K exiting at 30 m/s with a nozzle-to-plate distance over diameter of H/D = 2. Computational cases based on different thermal conditions are compared to a conjugate case, in which fluid and solid domains are solved simultaneously. A solid material defined with enhanced conductivity properties is used to represent the wall in the conjugate case, so that the characteristic time scales of the solid are reduced. The results indicate that the heat transfer condition influences not only the mean temperature and gradients, but also the temperature fluctuations in the near-wall region. It is found that adiabatic, isothermal and more sophisticated Robin-type boundary conditions contribute to underpredict/overpredict the temperature field near the wall. As the time scales of fluid and solid are of the same order, the use of conjugate approaches is required to predict the correct flow fields near the wall and the skin temperature.