DocumentCode :
3150431
Title :
Simulation of Convection Heat Transfer in Thermal Flow Reversal Reactor for Lean Methane Oxidation
Author :
Zhenqiang, Gao ; Chengguan, Wang ; Yongqi, Liu ; Ruixiang, Liu
Author_Institution :
Sch. of Transp. & Vehicle Eng., Shandong Univ. of Technol., Zibo, China
fYear :
2009
fDate :
28-30 Dec. 2009
Firstpage :
403
Lastpage :
406
Abstract :
Fast depletion of fossil fuel resources is a major challenge to the world today. While great amount of fugitive methane emits into atmosphere, most of them is of lower concentration (typically below 1% methane), as lean methane disposal is difficult. Thermal flow reversal reactor is proper for lean methane oxidation. The heat transfer in thermal flow reversal reactor is unsteady. Temperature field of flow fluid is coupled with temperature field of ceramic honeycomb. The characteristics of temperature field and velocity field under certain conditions are presented. Influence of wall thickness and inlet velocity is determined numerically. It is shown that the convection heat transfer is very strong in honeycomb ceramic. There is a high speed flow core near air-inlet; and there is large pressure gradient according to high temperature. Thick wall leads to low temperature and low pressure loss. High inlet velocity leads to high temperature and high pressure loss.
Keywords :
convection; fossil fuels; heat recovery; oxidation; thermal power stations; ceramic honeycomb; convection heat transfer; flow fluid temperature; high speed flow core; inlet velocity; methane oxidation; temperature field; thermal flow reversal reactor; wall thickness; Ceramics; Combustion; Computational modeling; Computer science; Computer simulation; Heat transfer; Inductors; Oxidation; Switches; Temperature; Waste gas control; ceramic honeycomb; energy and environment; unsteady heat transfer;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Environmental and Computer Science, 2009. ICECS '09. Second International Conference on
Conference_Location :
Dubai
Print_ISBN :
978-0-7695-3937-9
Electronic_ISBN :
978-1-4244-5591-1
Type :
conf
DOI :
10.1109/ICECS.2009.25
Filename :
5383482
Link To Document :
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