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首页> 外文期刊>The Science of the Total Environment >Developing a novel biofiltration treatment system by coupling high-rate infiltration trench technology with a plug-flow porous-media bioreactor
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Developing a novel biofiltration treatment system by coupling high-rate infiltration trench technology with a plug-flow porous-media bioreactor

机译:通过用塞流多孔介质生物反应器耦合高速渗透沟槽技术开发一种新型生物滤光处理系统

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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.
机译:两个渗透步骤的序列与中间曝气相结合,称为“顺序管理的含水层充值技术(SMART)”被证明是使用经处理的废水流出物或由于病原体的有效灭活而受损的表面水来补充地下水的有希望的方法,并改善了许多痕量有机化学品。为了使这种系统的物理足迹最小化,并通过传统的MAR部位通过现场特异性异质性来克服限制,采取工程化方法进一步推进智能概念。本研究通过提供高度受控的液压条件,调查了在试验规模地下生物反应器中建立了插头流动条件。与传统的MAR系统相比,这种系统具有显着降低的物理足迹,可以与局部水文地质条件无关。通过原位氧输送实现生物反应器中所需的氧化还原条件,以保持均匀的流动条件并消除典型的泵送成本。暂时,本研究研究了液压条件和关于在SmartPlus生物反应器的基线操作中除去化学成分的初始性能。观察和模拟的突破性曲线的拟合来自脉冲喷射跟踪试验试验表明,在整个生物反应器中成功地建立了插头流动条件。在基线操作期间获得的性能数据确认了在<13小时的行进时间在Lab-和场刻度MAR系统中观察到的类似迹线有机化学生物转化。

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