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Gas production during refuse decomposition

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Abstract

Gas production in sanitary landfills is a subject of much concern because of the potential hazards of CH4 combustion and of groundwater contamination by CO2. This study investigated the pattern of sanitary landfill gas production and the factors which affect it.

A basis for study was prepared by examining factors which influence gas production in soil and sewage sludge digesters. The factors studied included moisture content, temperature, pH, alkalinity, Eh, and nutrition. It was then undertaken to determine whether or not this information was applicable to the landfill.

A pattern for landfill gas production was proposed based on the assumption that an anaerobic environment would be achieved and maintained after refuse placement. Four phases were identified: I. Aerobic; II. Anaerobic Non-Methanogenic; III. Anaerobic Methanogenic Unsteady; and IV. Anaerobic Methanogenic Steady. The duration of these phase and the relative amounts of gases produced within each phase were studied.

An investigation of information available on factors affecting gas production in sanitary landfills also was made. It was found that, in general, the principles developed from the study of gas production in other media were applicable to the landfill environment. It was found that gas production increases with increased moisture content but that conditions of high infiltration are often conducive to reduction in gas production apparently caused by modifications to the microbial environment. There appears to exist a typical pattern of temperature variation within the landfill with a peak temperature being reached during the initial phase of aerobic decomposition. The magnitude of this peak is related to the refuse temperature at placement. Subsequent temperatures are lower and tend to fluctuate with season. Optimum temperatures for gas production are in the range of from 30°C to 35°C, however, landfill temperatures are often lower than this. Optimum levels of pH and alkalinity exist which maximize gas production rates. The types and amounts of gas produced are influenced by refuse composition.

A scheme was proposed to illustrate how the various factors influence landfill gas production and how these may interact. Those factors over which some control may be exerted during landfill design and operation were identified.

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References

  • Alexander, M.: 1971,Microbial Ecology, John Wiley and Sons, Inc., New York.

    Google Scholar 

  • Beluche, R.: 1968, Ph.D. Thesis, Univ. of Southern California.

  • Bevan, R. E.: 1967, ‘Notes on the Science and Practice of Controlled Tipping of Refuse’, The Institute of Public Cleansing, Great Britain.

    Google Scholar 

  • Dobson, A. N.: 1964, Ph.D. Thesis, West Virginia Univ.

  • Dunn, W. L.: 1960,Civil Eng. 30.

  • Fungaroli, A. A. and Steiner, R. L.: 1971, ‘Laboratory Study of the Behaviour of a Sanitary Landfill’,Journal WPCF.

  • Golwer, A., Matthes, G., and Schneider, W.: 1971, ‘Selbstreinigungsvorgange im Grundwasserbereich’, Sonderduick aus Vom Wasser, Bank XXXVI.

  • Imshenetsky, A. A.: 1968, inThe Ecology of Soil Bacteria, An International Symposium (Ed. by T. R. G. Gray and D. Parkinson), the University of Liverpool, University of Toronto Press.

  • Kellow, F.: 1972, Paper presented at the Engineering Foundation Conference on Sanitary Landfill Design and Operating Practices, Saxtons River, Vermont.

  • Kotze, J. P., Thiel, P. G., and Hattingh, W. H. J.: 1969,Water Res. 3, 459. Pergamon Press, Great Britain.

    Google Scholar 

  • Lin, Y. H.: 1966, Ph.D. Thesis, West Virginia Univ.

  • Ludwig, H.: 1961, ‘Effects of Refuse Dumps on Groundwater Quality’, California State Water Pollution Control Board, Publication No. 24.

  • Ludwig, H.: 1967, ‘Final Report in Situ Investigation of Gases Produced from Decomposing Refuse’, Oakland, California.

  • McCarty, P. L.: 1963,Principles and Application in Aquatic Microbiology, Rudolfs Research Conf. Proceedings (Ed. by H. Heikelekian and N. C. Dondero), Rutgers, the State University, J. Wiley and Sons Inc., New York.

    Google Scholar 

  • Merz, R. C.: 1954, ‘Report on Investigation of Leaching of a Sanitary Landfill’, University of California, California State Water Pollution Control Board, Publication No. 10.

  • Merz, R. C. and Stone, R.: 1969, ‘Special Studies of a Sanitary Landfill’, Civil Engineering, Univ. of Southern California. Los Angeles, Calif.

    Google Scholar 

  • Qasim, S. R. and Burchinal, J. C.: 1970,A.S.C.E. J. San. Eng. Div.

  • Ramaswamy, J. N.: 1970, Ph.D. Thesis, West Virginia Univ.

  • Rovers, F. A. and Farquhar, G. J.: 1972, ‘Sanitary Landfill Study Final Report, Volume II, Effect of Season on Landfill Leachate and Gas Production’, Waterloo Research Institute, Project 8083.

  • Skinner, F. A.: 1968,The Ecology of Soil Bacteria, An International Symposium (Ed. by T. R. G. Gray and D. Parkinson), The University of Liverpool, University of Toronto Press.

  • Songonuga, O. O. O.: 1970, Ph.D. Thesis, West Virginia Univ.

  • Toerien, D. F. and Hattingh, W. H. J.: 1969,The Microbiology of Anaerobic Digestion 3, 385, Pergamon Press, Great Britain.

    Google Scholar 

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Farquhar, G.J., Rovers, F.A. Gas production during refuse decomposition. Water Air Soil Pollut 2, 483–495 (1973). https://doi.org/10.1007/BF00585092

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  • DOI: https://doi.org/10.1007/BF00585092

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