Developing a novel biofiltration treatment system by coupling high-rate infiltration trench technology with a plug-flow porous-media bioreactor

被引:15
|
作者
Karakurt-Fischer, Sema [1 ]
Sanz-Prat, Alicia [2 ]
Greskowiak, Janek [2 ]
Ergh, Martin [3 ]
Gerdes, Heiko [3 ]
Massmann, Gudrun [2 ]
Ederer, Juergen [1 ]
Regnery, Julia [1 ,4 ]
Huebner, Uwe [1 ]
Drewes, Joerg E. [1 ]
机构
[1] Tech Univ Munich, Urban Water Syst Engn, Garching, Germany
[2] Carl von Ossietzky Univ Oldenburg, Inst Biol & Environm Sci, Working Grp Hydrogeol & Landscape Hydrol, Oldenburg, Germany
[3] BGS Umwelt GmbH, Darmstadt, Germany
[4] Fed Inst Hydrol, Dept Biochem, Ecotoxicol, Koblenz, Germany
关键词
Managed aquifer recharge; High rate infiltration; Controlled hydraulics; Plug flow conditions; Indirect potable reuse; Trace organic chemicals; MANAGED AQUIFER RECHARGE; TRACE ORGANIC-CHEMICALS; PERSONAL CARE PRODUCTS; WASTE-WATER TREATMENT; BIOLOGICAL REMOVAL; ATTENUATION; CARBON; CONTAMINANTS; FILTRATION; BEHAVIOR;
D O I
10.1016/j.scitotenv.2020.137890
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The sequence of two infiltration steps combined with an intermediate aeration named 'sequential managed aquifer recharge technology (SMART)' proved to be a promising approach to replenish groundwater using treated wastewater effluents or impaired surface waters due to efficient inactivation of pathogens and improved removal of many trace organic chemicals. To minimize the physical footprint of such systems and overcome limitations through site-specific heterogeneity at conventional MAR sites, an engineered approach was taken to further advance the SMART concept. This study investigated the establishment of plug-flow conditions in a pilot scale subsurface bioreactor by providing highly controlled hydraulic conditions. Such a system, with a substantially reduced physical footprint in comparison to conventional MAR systems, could be applied independent of local hydrogeological conditions. The desired redox conditions in the bioreactor are achieved by in-situ oxygen delivery, to maintain the homogenous flow conditions and eliminate typical pumping costs. For the time being, this study investigated hydraulic conditions and the initial performance regarding the removal of chemical constituents during baseline operation of the SMARTplus bioreactor. The fit of the observed and simulated breakthrough curves from the pulse injection tracer test indicated successful establishment of plug-flow conditions throughout the bioreactor. The performance data obtained during baseline operation confirmed similar trace organic chemical biotransformation as previously observed in lab- and field-scale MAR systems during travel times of <13 h. (C) 2020 Elsevier B.V. All rights reserved.
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页数:9
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