A fractal-like kinetics equation to calculate landfill methane production☆

Abstract Landfill appears as a convenient choice to get rid of municipal solid waste while providing energy, due to methane generated through anaerobic fermentation. However, without capture and treatment landfill gas is considered an important source of atmospheric methane. The control and use of this gas require knowledge of both, current yield and long-term accumulative production. These values are usually calculated with mathematical expressions that consider 100% of conversion, and homogeneous chemical reactivity inside the fill. Nevertheless, fermentation in landfills is erratic and spatially heterogeneous. This work introduces a fractal-like chemical kinetics equation to calculate methane generation rate from landfill, QCH4 (m3/year), in the way: Q CH 4 =L 0 ∑ j ∑ i M ij C ij 0 k i (t j ) −d s /2 exp [−k i t j ], where fermentable wastes are partitioned in readily, moderately and slowly biodegradable categories, L0 is the potential of methane yield of refuse (m3/tonne under standard conditions), ds is the solid-phase fracton dimension, ki is the reaction kinetics constant of waste category i (year−1), and tj is the time from the year of burying j (year), Cij0 (kg/tonne) and Mij (kg) are the initial concentration and the mass of waste category i landfilled in year j, respectively. The idea behind this equation is that methane production kinetics is limited by the diffusion of hydrolyzed substrate into a heterogeneous solid-phase towards discrete areas, where methanogenesis occurs. A virtual study for a hypothetical case is developed. The predictions from this fractal approach are contrasted with those coming from two equations broadly used in the industrial work. The fractal-like kinetics equation represents better the heterogeneous nature of the fermentation in landfills.

[1]  M. Barlaz,et al.  Biodegradability of Municipal Solid Waste Components in Laboratory-Scale Landfills , 1997 .

[2]  J. Hoeks Significance of Biogas Production in Waste Tips , 1983 .

[3]  S. Redner,et al.  Introduction To Percolation Theory , 2018 .

[4]  J. Bogner Controlled Study of Landfill Biodegradation Rates Using Modified Bmp Assays , 1990 .

[5]  M. Khalil,et al.  NON-CO 2 GREENHOUSE GASES IN THE ATMOSPHERE , 1999 .

[6]  Chris Zeiss,et al.  Municipal Landfill Biodegradation and Settlement , 1995 .

[7]  Joseph C. Akunna,et al.  Anaerobic Degradation of Municipal Wastes in Landfill , 1992 .

[8]  S. Alexander,et al.  Density of states on fractals : « fractons » , 1982 .

[9]  D. Martin,et al.  The Site of Reaction in Solid-State Digestion: A New Hypothesis , 2001 .

[10]  M. El-Fadel,et al.  Numerical Modelling of Generation and Transport of Gas and Heat in Landfills I. Model Formulation , 1996 .

[11]  Robert K. Ham,et al.  Mass-Balance Analysis of Anaerobically Decomposed Refuse , 1989 .

[12]  Duncan Martin A novel mathematical model of solid-state digestion , 2004, Biotechnology Letters.

[13]  Randall Guensler,et al.  A TRANSPORTATION/AIR QUALITY RESEARCH AGENDA FOR THE 1990'S. IN: AIR & WASTE MANAGEMENT ASSOCIATION. 84TH ANNUAL MEETING & EXHIBITION, VANCOUVER, BRITISH COLUMBIA, JUNE 16-21, 1991 , 1991 .

[14]  Robert K. Ham,et al.  Chemical Characterization of Fresh Kills Landfill Refuse and Extracts , 1993 .

[15]  G. Weiss,et al.  Trapping of random walks on the line , 1984 .

[16]  Raoul Kopelman,et al.  Fractal Reaction Kinetics , 1988, Science.

[17]  D. Martin,et al.  Small-scale simulation of waste degradation in landfills , 1997, Biotechnology Letters.

[18]  P. G. de Gennes,et al.  Kinetics of diffusion‐controlled processes in dense polymer systems. I. Nonentangled regimes , 1982 .

[19]  R. L. Peer,et al.  A comparison of methods for estimating global methane emissions from landfills , 1993 .

[20]  D. Martin Mass transfer limitations in solid-state digestion , 1999, Biotechnology Letters.

[21]  V. Vavilin,et al.  Effect of mass transfer on concentration wave propagation during anaerobic digestion of solid waste. , 2002, Water research.

[22]  G. E. Blight,et al.  Moisture and Suction in Sanitary Landfills in Semiarid Areas , 1992 .