TY - JOUR
T1 - Numerical Investigation of Hydrogen-Blended Low-Calorific-Value Landfill Gas Combustion
T2 - Flame Stability and Pollutant Suppression in Porous Media Burners
AU - Tan, Kang
AU - Kahangamage, Udaya
AU - Chen, Kangdong
AU - Leung, Chun wah
N1 - Publisher Copyright:
© 2025 The Authors. Published by American Chemical Society
PY - 2025/9/4
Y1 - 2025/9/4
N2 - This study investigates the combustion characteristics of hydrogen-enriched low-calorific landfill gas (LFG) in a double-layer porous media burner by using numerical simulations. The research addresses challenges related to flame instability and pollutant emissions during low-calorific LFG combustion. A two-dimensional axisymmetric numerical model was developed in ANSYS Fluent, incorporating a skeletal chemical reaction mechanism and the standard k-ε turbulence model. Simulations were performed with LFG composed of 30% methane and 70% carbon dioxide (LFG30) under varying hydrogen blending ratios (0 to 20%), an equivalence ratio of 1.5, and an inlet gas velocity of 0.15 m/s. The results demonstrate that increasing hydrogen concentrations shifts the flame upstream, lowers both combustion and exhaust gas temperatures, and significantly decreases CO and NOxemissions. When the hydrogen blending ratio reaches 20%, the mole fractions of CO and NOxat the outlet are reduced by 22.14 and 72.65%, respectively, compared with the pure LFG30. The findings indicate that hydrogen enrichment significantly enhances the combustion stability and emission performance of low-calorific LFG in porous media burners, providing an effective approach for efficiently utilizing low-calorific-value fuels even at extreme operating conditions. This study offers novel insights toward the development of effective burners aimed at increasing the utilization of this underutilized renewable energy resource and addressing environmental concerns.
AB - This study investigates the combustion characteristics of hydrogen-enriched low-calorific landfill gas (LFG) in a double-layer porous media burner by using numerical simulations. The research addresses challenges related to flame instability and pollutant emissions during low-calorific LFG combustion. A two-dimensional axisymmetric numerical model was developed in ANSYS Fluent, incorporating a skeletal chemical reaction mechanism and the standard k-ε turbulence model. Simulations were performed with LFG composed of 30% methane and 70% carbon dioxide (LFG30) under varying hydrogen blending ratios (0 to 20%), an equivalence ratio of 1.5, and an inlet gas velocity of 0.15 m/s. The results demonstrate that increasing hydrogen concentrations shifts the flame upstream, lowers both combustion and exhaust gas temperatures, and significantly decreases CO and NOxemissions. When the hydrogen blending ratio reaches 20%, the mole fractions of CO and NOxat the outlet are reduced by 22.14 and 72.65%, respectively, compared with the pure LFG30. The findings indicate that hydrogen enrichment significantly enhances the combustion stability and emission performance of low-calorific LFG in porous media burners, providing an effective approach for efficiently utilizing low-calorific-value fuels even at extreme operating conditions. This study offers novel insights toward the development of effective burners aimed at increasing the utilization of this underutilized renewable energy resource and addressing environmental concerns.
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=cpce_wosstarter_v2&SrcAuth=WosAPI&KeyUT=WOS:001564347000001&DestLinkType=FullRecord&DestApp=WOS_CPL
UR - https://www.mendeley.com/catalogue/58b1a59f-3f66-3a33-aadb-007532ec5c51/
UR - https://www.scopus.com/pages/publications/105016012566
U2 - 10.1021/acsomega.5c05809
DO - 10.1021/acsomega.5c05809
M3 - Article
C2 - 40978451
SN - 2470-1343
VL - 10
SP - 41809
EP - 41819
JO - ACS Omega
JF - ACS Omega
IS - 36
ER -