Biodegradation of Biosolids Under Aerobic Conditions: Implications for Cover Materials for Sulfide Mine Tailings Remediation; [Biologischer Abbau von Klärschlammen unter aeroben Bedingungen: Schlussfolgerungen für Abdeckmaterialien für die Sanierung von sulfidhaltigen Bergbauhalden]; [Biodegradación de biosólidos bajo condiciones aeróbicas: implicancias para los materiales de cobertura para remediación de colas de una mina de sulfuros]

被引:0
作者
Nason P. [1 ]
Jia Y. [2 ]
Maurice C. [3 ]
Alakangas L. [3 ]
Öhlander B. [3 ]
机构
[1] Department of Earth and Environmental Sciences, University of Waterloo, 200 University Ave W, Waterloo, N2L 3G1, ON
[2] Department of Environment and Raw Material, Greenland Institute of Natural Resources, Nuuk
[3] Division of Geosciences and Waste Engineering, Luleå University of Technology, Luleå
关键词
Acid rock drainage; Organic reactive barrier; Sewage sludge;
D O I
10.1007/s10230-015-0339-3
中图分类号
学科分类号
摘要
Sewage sludge residue (biosolids) was investigated for its potential as a long-term tailings cover. Biosolids may prevent oxygen diffusion into underlying sulfide tailings through microbial aerobic biodegradation of organic matter. Biosolids were investigated at laboratory-, pilot-, and field-scale using analysis of total organic matter (TOM) mass reduction and O2, CO2, CH4 concentrations to quantify the biodegradation rate. A 156-day, open microcosm experiment, in which the loss of biosolids mass over time at differing temperatures, mimicking ambient (20–22 °C), mesophilic (34 °C), and thermophilic (50 °C) conditions, indicated that TOM biodegradation was best in the mesophilic temperature range, with 14.8, 27.2, and 26.7 % mass depletion at ambient, mesophilic, and thermophilic conditions, respectively. The data was correlated to field-scale data that evaluated biodegradation rates via decreasing O2 and increasing CO2 concentrations. Field biodegradation rates were less than laboratory rates because lower mean annual temperatures (0.6–0.7 °C) diminished microbial activity. A calibrated model indicates that 20 % of a field application of biosolids will degrade within 2 years. However, the rate declines with time due to exhaustion of the most readily degradable organic fraction. If biodegradation cannot be maintained, the long-term effectiveness of biosolids as a covering material for mine tailings remains a concern. © 2015, Springer-Verlag Berlin Heidelberg.
引用
收藏
页码:273 / 282
页数:9
相关论文
共 33 条
[21]  
Makitalo M., Green liquor dregs as sealing layer material to cover sulphidic mine waste deposits, In: Licentiate thesis, (2012)
[22]  
Nason P., Alakangas L., Ohlander B., Using sewage sludge as a sealing layer to remediate sulphidic mine tailings: a pilot-scale experiment, northern Sweden, Environ Earth Sci, 70, pp. 3093-3105, (2013)
[23]  
Nason P., Alakangas L., Ohlander B., Impact of sewage sludge on groundwater quality at a formerly remediated tailings impoundment, Mine Water Environ, 33, pp. 66-78, (2014)
[24]  
Nehdi M., Tariq A., Stabilization of sulphidic mine tailings for prevention of metal release and acid drainage using cementitious material: a review, J Environ Eng Sci, 6, pp. 423-436, (2007)
[25]  
Neuschutz C., Phytostabilization of mine tailings covered with fly ash and sewage sludge, In: PhD thesis, (2009)
[26]  
Neuschutz C., Greger M., Stabilization of mine tailings using fly ash and sewage sludge planted with Phalaris arundinacea L, Water Air Soil Pollut, 207, pp. 357-367, (2010)
[27]  
Test No. 310: Ready Biodegradability - CO2 in sealed vessels (Headspace Test), OECD Guidelines for the Testing of Chemicals. Section 3, OECD Publishing, Paris, doi.10.1787/9789264016316-en, (2006)
[28]  
Peppas A., Komnitsas K., Halikia I., Use of organic covers for acid mine drainage control, Miner Eng, 13, pp. 563-574, (2000)
[29]  
Perez-Lopez R., Quispe D., Castillo J., Nieto J.M., Acid neutralization by dissolution of alkaline paper mill wastes and implications for treatment of sulfide-mine drainage, Am Mineral, 96, pp. 781-791, (2011)
[30]  
Shcherbakova E., Geochemical and hydrological aspects of interactions between water and mine waste, In: Licentiate thesis, (2006)