Landfill Methane Oxidation in Engineered Soil Columns at Low Temperature

被引:0
作者
Riitta H. Kettunen
Juha-Kalle M. Einola
Jukka A. Rintala
机构
[1] Department of Biological and Environmental Science,University of Jyväskylä
[2] Tritonet Oy,undefined
来源
Water, Air, and Soil Pollution | 2006年 / 177卷
关键词
Landfill cover; Low temperature; Methane oxidation; Organic amendments; Soil;
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学科分类号
摘要
Though engineered covers have been suggested for reducing landfill methane emissions via microbial methane oxidation, little is known about the covers' function at low temperature. This study aimed to determine the methane consumption rates of engineered soil columns at low temperature (4–12°C) and to identify soil characteristics that may enhance methane oxidation in the field. Engineered soils (30 cm thick) were mixtures of sewage sludge compost and de-inking waste, amended with sand (SDS soil) or bark chips (SDB soil). At 4–6°C, we achieved rates of 0.09 gCH4 kgTS−1d−1 (0.02 m3 m−2d−1) and 0.06 gCH4 kgTS−1d−1 (0.009 m3 m−2d−1) with SDS and SDB soils, respectively. With SDS, good movement and exchange of oxygen in porous soil moderated the slowdown of microbial activity so that the rate dropped only by half as temperature declined from 21–23°C to 4–6°C. In SDB, wet bark chips reduced the soil's air-filled porosity and intensified non-methanotrophic microbial activity, thus reducing the methane consumption rate at 4–6°C to one fourth of that at 21–23°C. In conclusion, soil characteristics such as air-filled porosity, water holding capacity, quantity and stabilization of organic amendments that affect the movement and exchange of oxygen are important variables in designing engineered covers for high methane oxidation at low temperature.
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页码:313 / 334
页数:21
相关论文
共 112 条
[1]  
Berger J.(2005)Methane Oxidation in a Landfill Cover with Capillary Barrier Waste Man. 25 369-373
[2]  
Fornés L.V.(1996)Methane Oxidation in a Neutral Landfill Cover Soil: Influence of Moisture Content, Temperature, and Nitrogen-Turnover J. Environ. Qual. 25 178-183
[3]  
Ott C.(1996)Methane Emission from a Landfill and the Methane Oxidising Capacity of Its Covering Soil Soil Biol. Biochem. 28 1397-1405
[4]  
Jager J.(1997a)Fluxes of Methane Between Landfills and the Atmosphere: Natural and Engineered Controls Soil Use Manage. 13 268-277
[5]  
Wavra B.(1997b)Kinetics of Methane Oxidation in a Landfill Cover Soil: Temporal Variations, a Whole-Landfill Oxidation Experiment, and Modeling of Net CH4 Emissions Environ. Sci. Technol. 31 2504-2514
[6]  
Zanke U.(2000)Methane Fluxes from a Swedish Landfill Determined by Geostatistical Treatment of Static Chamber Measurements Environ. Sci. Technol. 34 4044-4050
[7]  
Boeckx P.(2004)Microbial Oxidation of CH4 at Different Temperatures in Landfill Cover Soils FEMS Microbiol. Ecol. 48 305-312
[8]  
Van Cleemput O.(1998a)Methane Oxidation in Landfill Cover Soils, as Revealed by Potential Oxidation Measurements and Phospholipid Fatty Acid Analyses Soil Biol. Biochem. 30 1423-1433
[9]  
Boeckx P.(1998b)Microbial Oxidation of CH4 at High Partial Pressures in an Organic Landfil Cover Soil under Different Moisture Regimes FEMS Microbiol. Ecol. 26 207-217
[10]  
Van Cleemput O.(2000)Methane Oxidation at Low Temperatures in Soil Exposed to Landfill Gas J. Environ. Qual. 29 1989-1997