Experimental Study of Combustion Characteristics and NO Formation Mechanism under Different Hydrogen Flame Modes with Heat Transfer Mechanisms in a Porous Media Combustor

博士 === 國立成功大學 === 機械工程學系 === 104 === This study investigated the heat recovery rates of hydrogen flame modes in porous medium combustion. The porous medium was oxide-bonded silicon carbide (OB-SiC), aluminum oxide (Al2O3) or zirconia (ZrO2) with 60 or 30 PPI. The results indicated that the reaction...

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Bibliographic Details
Main Authors: Siou-ShengSu, 蘇脩聖
Other Authors: Sheng-Jye Hwang
Format: Others
Language:zh-TW
Published: 2016
Online Access:http://ndltd.ncl.edu.tw/handle/86956951446709587963
Description
Summary:博士 === 國立成功大學 === 機械工程學系 === 104 === This study investigated the heat recovery rates of hydrogen flame modes in porous medium combustion. The porous medium was oxide-bonded silicon carbide (OB-SiC), aluminum oxide (Al2O3) or zirconia (ZrO2) with 60 or 30 PPI. The results indicated that the reaction temperature of a flame mode was controlled by the equivalence ratio (Flame velocity), thermal load and solid medium thermal properties (k and CP). The operation region of the flame modes was controlled by the equivalence ratio and dimensionless velocity (V*). Under ultra-lean conditions (=0.2-0.25), the flame was blown out when the dimensionless velocity was above 4.5 for OB-SiC and Al2O3 settings. In contrast no blow out occurred for the ZrO2 setting and under a high equivalence ratio (>0.4), and the flame mode was a conical flame when the dimensionless velocity was above unity. The heat recovery mechanism of surface and interior combustion was based on the conduction and radiation of the porous medium. The dimensionless temperature (*) is defined as the ratio of the reaction temperature over the adiabatic flame temperature. When the dimensionless temperature was unity, the reaction temperature approached the adiabatic flame temperature. Under interior combustion, the maximum dimensionless temperature was 0.994 for the OB-SiC (=0.3) setting. Furthermore, the maximum dimensionless temperature was 0.942 for Al2O3 and 0.969 for ZrO2 under operation at =0.3. The heat recovery rate of hydrogen combustion under surface and interior combustion was thus higher than that of the conical flame mode.