Bioremediation of acid mine drainage coupled with domestic wastewater treatment

被引:42
作者
Sanchez-Andrea, Irene [1 ,2 ]
Triana, David [1 ]
Sanz, Jose L. [1 ]
机构
[1] Univ Autonoma Madrid, Dept Biol Mol, E-28049 Madrid, Spain
[2] UAM CSIC, Ctr Biol Mol Severo Ochoa, Madrid 28049, Spain
关键词
acid mine drainage; bioremediation; sulfate-reducing bacteria; Tinto River; SULFATE-REDUCING BACTERIA; BED REACTOR; BIOREACTORS; ENVIRONMENT; WETLANDS; TINTO;
D O I
10.2166/wst.2012.477
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Acid mine drainage (AMD) - characterized by high acidity and elevated sulfate and metal concentrations - represents a big environmental concern. Biological sulfate reduction has become an alternative to the classical physicochemical methods. In this study, domestic wastewater (DW) was tested as a cost-effective carbon-source for the remediation of AMD. Sediments from Tinto River, an extreme acidic environment with an elevated concentration of metals, were used as inoculum. Three anaerobic bioreactors with different microbial supports were fed with a 1:10 (v:v) mixture of synthetic AMD:DW. Around 50% of the organic matter present in the DW co-precipitated with the metals from the AMD previous to feeding the reactor. Therefore, the reactors had to be supplemented with an extra carbon-source (acetate) to achieve higher S elimination. Elevated removal efficiencies of chemical oxygen demand (COD) (>88%), sulfate (>75%), Fe (>85%) and other dissolved metals (>99% except for Mn) were achieved. Bacterial communities were examined through denaturing gradient gel electrophoresis and scanning electron microscopy. Higher biodiversity was found in the bioreactors compared with that of the inoculum. Dominant species belong to two metabolic groups: fermentative (Clostridium spp., Delftia spp., Paludibacter spp. and Pelotomaculum spp.) and sulfate-reducing bacteria (Desulfomonile spp., Desulfovibrio spp., Desulfosporosinus spp. and Desulfotomaculum spp.).
引用
收藏
页码:2425 / 2431
页数:7
相关论文
共 18 条
[1]  
[Anonymous], 1995, Standard methods for examination of water and waste water, V19th
[2]   Sulfate Reduction at pH 4.0 for Treatment of Process and Wastewaters [J].
Bijmans, Martijn F. M. ;
de Vries, Erik ;
Yang, Chun-Hui ;
Buisman, Cees J. N. ;
Lens, Piet N. L. ;
Dopson, Mark .
BIOTECHNOLOGY PROGRESS, 2010, 26 (04) :1029-1037
[3]   Comparative study of cellulose waste versus organic waste as substrate in a sulfate reducing bioreactor [J].
Choudhary, R. P. ;
Sheoran, A. S. .
BIORESOURCE TECHNOLOGY, 2011, 102 (06) :4319-4324
[4]   Microbial ecology of an extreme acidic environment, the Tinto River [J].
González-Toril, E ;
Llobet-Brossa, E ;
Casamayor, EO ;
Amann, R ;
Amils, R .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2003, 69 (08) :4853-4865
[5]   Geomicrobiology of La Zarza-Perrunal Acid Mine Effluent (Iberian Pyritic Belt, Spain) [J].
Gonzalez-Toril, Elena ;
Aguilera, Angeles ;
Souza-Egipsy, Virginia ;
Lopez Pamo, Enrique ;
Sanchez Espana, Javier ;
Amils, Ricardo .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2011, 77 (08) :2685-2694
[6]  
Greben H.A., 2005, Mine Water and Environment, V24, P194, DOI DOI 10.1007/S10230-005-0095-X
[7]   Biological manganese removal from acid mine drainage in constructed wetlands and prototype bioreactors [J].
Hallberg, KB ;
Johnson, DB .
SCIENCE OF THE TOTAL ENVIRONMENT, 2005, 338 (1-2) :115-124
[8]   The co-treatment of sewage and mine waters in aerobic wetlands [J].
Johnson, KL ;
Younger, PL .
ENGINEERING GEOLOGY, 2006, 85 (1-2) :53-61
[9]   Optimization of metal sulphide precipitation in fluidized-bed treatment of acidic wastewater [J].
Kaksonen, AH ;
Riekkola-Vanhanen, ML ;
Puhakka, JA .
WATER RESEARCH, 2003, 37 (02) :255-266
[10]   Performance and ethanol oxidation kinetics of a sulfate-reducing fluidized-bed reactor treating acidic metal-containing wastewater [J].
Kaksonen, AH ;
Franzmann, PD ;
Puhakka, JA .
BIODEGRADATION, 2003, 14 (03) :207-217