Modeling and simulation of landfill gas production from pretreated MSW landfill simulator

Rasool Bux MAHAR , Abdul Razaque SAHITO , Dongbei YUE , Kamranullah KHAN

Front. Environ. Sci. Eng. ›› 2016, Vol. 10 ›› Issue (1) : 159 -167.

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Front. Environ. Sci. Eng. ›› 2016, Vol. 10 ›› Issue (1) : 159 -167. DOI: 10.1007/s11783-014-0685-6
RESEARCH ARTICLE
RESEARCH ARTICLE

Modeling and simulation of landfill gas production from pretreated MSW landfill simulator

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Abstract

The cumulative landfill gas (LFG) production and its rate were simulated for pretreated municipal solid waste (MSW) landfill using four models namely first order exponential model, modified Gompertz model, single component combined growth and decay model and Gaussian function. Considering the behavior of the pretreated MSW landfill, a new multi component model was based on biochemical processes that occurring in landfilled pretreated MSW. The model was developed on the basis of single component combined growth and decay model using an anaerobic landfill simulator reactor which treats the pretreated MSW. It includes three components of the degradation i.e. quickly degradable, moderately degradable and slowly degradable. Moreover, the developed model was statistically analyzed for its goodness of fit. The results show that the multi components LFG production model is more suitable in comparison to the simulated models and can efficiently be used as a modeling tool for pretreated MSW landfills. The proposed model is likely to give assistance in sizing of LFG collection system, generates speedy results at lower cost, improves cost-benefit analysis and decreases LFG project risk. It also indicates the stabilization of the landfill and helps the managers in the reuse of the landfill space. The proposed model is limited to aerobically pretreated MSW landfill and also requires the values of delay times in LFG productions from moderately and slowly degradable fractions of pretreated MSW.

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combine growth and decay model / pretreated municipal solid waste (MSW) / multi component landfill gas (LFG) model

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Rasool Bux MAHAR, Abdul Razaque SAHITO, Dongbei YUE, Kamranullah KHAN. Modeling and simulation of landfill gas production from pretreated MSW landfill simulator. Front. Environ. Sci. Eng., 2016, 10(1): 159-167 DOI:10.1007/s11783-014-0685-6

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References

[1]

Gourc J P, Staub M J, Conte M. Decoupling MSW settlement into mechanical and biochemical processes−modelling and validation on large-scale setups. Waste Management (New York N.Y.), 2010, 30(8–9): 1556–1568

[2]

Manna L, Zanetti M C, Genon G. Modeling biogas production at landfill site. Resources, Conservation and Recycling, 1999, 26(1): 1–14

[3]

Zacharof A I, Butler A P. Stochastic modelling of landfill processes incorporating waste heterogeneity and data uncertainty. Waste Management (New York N.Y.), 2004a, 24(3): 241–250

[4]

Pohland F G. Landfill bioreactors: fundamentals and practice. In International Trends in Water Environment Management, Japan Society on Water Environment, Tokyo, Japan, 1996, 95–110

[5]

Xiaoli C, Ziyang L, Shimaoka T, Nakayama H, Ying Z, Xiaoyan C. Characteristics of environmental factors and their effects on CH4 and CO2 emissions from a closed landfill: an ecological case study of Shanghai. Waste Management (New York), 2010, 30(3): 446–451

[6]

Talyan V, Dahiya R P, Anand S, Sreekrishnan T R. Quantification of methane emission from municipal solid waste disposal in Delhi. Resources, Conservation and Recycling, 2007, 50(3): 240–259

[7]

Bingemer H G, Crutzen P J. The production of methane from solid wastes. Journal of Geophysical Research: Atmospheres, 1987, 92(D2): 2181–2187

[8]

Bogner J, Pipatti R, Hashimoto S, Diaz C, Mareckova K, Diaz L. Mitigation of global greenhouse gas emissions from waste: conclusions and strategies from the Intergovernmental Panel on Climate Change (IPCC) 4th Assessment Report. Working Group III (Mitigation). Waste Manage Research, 2008, 26(1): 11–32

[9]

Mahar R B, Liu J, Yue D, Nie Y. Biodegradation of organic matters from mixed unshredded municipal solid waste through air convection before landfilling. Journal of Air Waste Manage Association, 2007, 57(1): 39–46

[10]

Mahar R B, Liu J, Li H, Nie Y. Bio-pretreatment of municipal solid waste prior to landfilling and its kinetics. Biodegradation, 2009, 20(3): 319–330

[11]

Zhang Y, Yue D, Nie Y. Greenhouse gas emissions from two-stage landfilling of municipal solid waste. Atmospheric Environment, 2012, 55: 139–143

[12]

Gerardi M H. The Microbiology of Anaerobic Digesters. John Wiley & Sons, Inc. ISBN 0-471-20693-8, 2003

[13]

Zacharof A I, Butler A P. Stochastic modelling of landfill leachate and biogas production incorporating waste heterogeneity. Model formulation and uncertainty analysis. Waste Management (New York N.Y.), 2004b, 24(5): 453–462

[14]

El-Fadel M, Findikakis A N, Leckie J O. A numerical model for methane production on managed sanitary landfills. Waste Management and Research, 1989, 7(1): 31–42

[15]

Findikakis A N, Papelis C, Halvadakis C P, Leckie J O. Modeling gas production in managed sanitary landfills. Waste Management and Research, 1988, 6(2): 115–123

[16]

Gurijala K R, Sa P, Robinson J A. Statistical modeling of methane production from landfill samples. Applied and Environmental Microbiology, 1997, 63(10): 3797–3803

[17]

Ozakaya B, Demir A, Bilgili M. Neural network prediction model for the methane fraction in biogas from field-scale landfill bioreactors. Environmental Modelling and Software, 2007, 22(6): 815–822

[18]

Kamalan H, Sabour M, Shariatmad N. A review on available landfill gas models. Journal of Environmental Science and Technology, 2011, 4(2): 79–92

[19]

Scharff H, Jacobs J. Applying guidance for methane emission estimation for landfills. Waste Management (New York N.Y.), 2006, 26(4): 417–429

[20]

Mahar R B, Liu J, Li H, Nie Y. Landfilling of pretreated municipal solid waste by natural convection of air and its effects. Journal of Environmental Science and Health, Part A: Toxic/Hazardous Substances and Environmental Engineering, 2007, 42(3): 351–359

[21]

APHA. Standard methods for the examination of water and wastewater. 20th ed. Washington, D C: American Public Health Association, 1998

[22]

Method for Determination of Crude Fiber in Feedstuff (GB/T6434). Standard Method of People’s Republic of China. Beijing, China, 1994

[23]

Gioannis G D, Muntoni A, Cappai G, Milia S. Landfill gas generation after mechanical biological treatment of municipal solid waste. Estimation of gas generation rate constants. Waste Management (New York, N.Y.), 2009, 29(3): 1026–1034

[24]

Lo H M, Kurniawan T A, Sillanpää M E, Pai T Y, Chiang C F, Chao K P. Modeling biogas production from organic fraction of MSW co-digested with MSWI ashes in anaerobic bioreactors. Bioresource Technology, 2010, 101(16): 6329–6335

[25]

Mali Sandip T, Khare Kanchan C, Biradar Ashok H. Enhancement of methane production and bio-stabilisation of municipal solid waste in anaerobic bioreactor landfill. Bioresource Technology, 2012, 110: 10–17

[26]

Zhu B, Gikas P, Zhang R, Lord J, Jenkins B, Li X. Characteristics and biogas production potential of municipal solid wastes pretreated with a rotary drum reactor. Bioresource Technology, 2009, 100(3): 1122–1129

[27]

Findikakis A N, Leckie J O. Numerical simulation of gas flow in sanitary landfills. Journal of the Environmental Engineering Division, 1979, 105(5): 927–945

[28]

Gardner N, Probert S D. Forecasting Landfill-Gas Yields. England: Science Publishers Ltd, 1993, 131–163

[29]

Hartz K E, Ham R K. Gas generation rates of landfill samples. Conservation and Recycling, 1982, 5(2–3): 133–147

[30]

Heyer K U, Stegmann R. Leachate management: leachate generation, collection, treatment and costs. 2001

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