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Impact of carbon and nitrogen on bioclogging in a sand grain managed aquifer recharge (MAR)

机译:碳和氮对砂谷物含水层补给(MAR)生物钻的影响

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摘要

Managed aquifer recharge (MAR), an intentional storage of excess water to an aquifer, is becoming a promising water resource management tool to cope with the worldwide water shortage. Bioclogging is a commonly encountered operational issue that lowers hydraulic conductivity and overall performance in MAR. The current study investigates the impact of carbon and nitrogen in recharge water on bioclogging in MAR. For this investigation, continuous-flow columns packed with sand grains were operated with influents having 0 (C1), 5 (C2), and 100 mg/L (C3) of glucose with or without introduction of nitrate. Hydraulic conductivity was analyzed to evaluate bioclogging in the systems. In C1 and C2, hydraulic conductivity was not significantly changed overall. However, hydraulic conductivity in C3 was decreased by 28.5% after three weeks of operation, which appears to be attributed to generation of fermentation bacteria. Introduction of nitrogen to C3 led to a further decrease in hydraulic conductivity by 25.7% compared to before it was added, most likely due to stimulation of denitrifying bacteria. These findings indicate that high carbon contents and introduction of additional nitrogen in recharge water cause serious bioclogging in MAR, suggesting the necessity for controlling quality of recharge water.
机译:管理含水层充值(MAR),故意储存多余的水到含水层,正在成为应对全球水资源短缺的有前途的水资源管理工具。 Bioclogging是一种常见的操作问题,降低了MAR的液压导电性和整体性能。目前的研究调查了碳和氮在MAR中生物疫苗的充电水中的影响。对于该研究,用砂粒包装的连续流动柱与具有或不引入硝酸盐的葡萄糖的0(C1),5(C 2)和100mg / L(C3)的影响。分析液压导电性以评估系统中的生物疫苗。在C1和C2中,液压导电性总体上没有显着变化。然而,在三周的操作后C3中的液压导电率下降28.5%,似乎归因于发酵细菌的产生。氮气引入C3导致液压导电率的进一步降低25.7%,而在加入之前,最有可能刺激反硝化细菌。这些发现表明,高碳含量和额外的氮气在充电水中引入额外的氮气引起了MAR的严重生物疫电,表明控制充电水质量的必要性。

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