Numerical modelling of methane oxidation efficiency and coupled water-gas-heat reactive transfer in a sloping landfill cover

•A model coupling 2D water-gas-heat transfer with CH4 oxidation in soil is developed.•Steeper landfill cover tends to reduce the methane oxidation efficiency (MOE).•Assuming steady-state CH4 concentration overestimates MOE during rainfall.•A new method that considers transient CH4 responses gives cl...

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Veröffentlicht in:Waste management (Elmsford) 2017-10, Vol.68, p.355-368
Hauptverfasser: Feng, S., Ng, C.W.W., Leung, A.K., Liu, H.W.
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Sprache:eng
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Zusammenfassung:•A model coupling 2D water-gas-heat transfer with CH4 oxidation in soil is developed.•Steeper landfill cover tends to reduce the methane oxidation efficiency (MOE).•Assuming steady-state CH4 concentration overestimates MOE during rainfall.•A new method that considers transient CH4 responses gives closer theoretical MOE. Microbial aerobic methane oxidation in unsaturated landfill cover involves coupled water, gas and heat reactive transfer. The coupled process is complex and its influence on methane oxidation efficiency is not clear, especially in steep covers where spatial variations of water, gas and heat are significant. In this study, two-dimensional finite element numerical simulations were carried out to evaluate the performance of unsaturated sloping cover. The numerical model was calibrated using a set of flume model test data, and was then subsequently used for parametric study. A new method that considers transient changes of methane concentration during the estimation of the methane oxidation efficiency was proposed and compared against existing methods. It was found that a steeper cover had a lower oxidation efficiency due to enhanced downslope water flow, during which desaturation of soil promoted gas transport and hence landfill gas emission. This effect was magnified as the cover angle and landfill gas generation rate at the bottom of the cover increased. Assuming the steady-state methane concentration in a cover would result in a non-conservative overestimation of oxidation efficiency, especially when a steep cover was subjected to rainfall infiltration. By considering the transient methane concentration, the newly-modified method can give a more accurate oxidation efficiency.
ISSN:0956-053X
1879-2456
DOI:10.1016/j.wasman.2017.04.042