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首页> 外文期刊>Environmental Science and Pollution Research >Performance assessment of laboratory and field-scale multi-step passive treatment of iron-rich acid mine drainage for design improvement
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Performance assessment of laboratory and field-scale multi-step passive treatment of iron-rich acid mine drainage for design improvement

机译:实验室实验室规模的耐铁矿泉排水的实验室规模多步防毒治疗性能评价

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Multi-step passive systems for the treatment of iron-rich acid mine drainage (Fe-rich AMD) perform satisfactorily at the laboratory scale. However, their field-scale application has revealed dissimilarities in performance, particularly with respect to hydraulic parameters. In this study, the assessment of factors potentially responsible for the variations in performance of laboratory and field-scale multi-step systems was undertaken. Three laboratory multi-step treatment scenarios, involving a combination of dispersed alkaline substrate (DAS) units, anoxic dolomitic drains, and passive biochemical reactors (PBRs), were set up in 10.7-L columns. The field-scale treatment consisted of two PBRs separated by a wood ash (WA) reactor. The parameters identified as possibly influencing the performances of the laboratory and field-scale experiments were the following: AMD chemistry (electrical conductivity and Fe and SO42- concentrations), flow rate (Q), and saturated hydraulic conductivity (k(sat)). Based on these findings, the design of an efficient passive multi-step treatment system is suggested to consider the following: (1) Fe pretreatment, using materials with high k(sat) and low HRT. If a PBR is to be used, the Fe load should be 26 g/m(3) substrate/day (Fe 200 mg/L) and SO42- 110 g/m(3) substrate/day; (2) PBR/DAS filled with a mixture with at least 20% of neutralizing agent; (3) include Q and k(sat) ( 10(-3) cm/s) in the long-term prediction. Finally, mesocosm testing is strongly recommended prior to construction of full-scale systems for the treatment of Fe-rich AMD.
机译:用于治疗铁富酸矿排水(Fe-Rich AMD)的多步被无源系统在实验室规模令人满意地表演。然而,它们的现场规模应用揭示了性能的不同,特别是关于液压参数的性能。在这项研究中,进行了对潜在负责实验室和现场 - 规模的多步骤系统性能变化的因素的评估。在10.7-L柱中建立了三种实验室多步骤治疗场景,涉及分散的碱性基材(DAS)单元,缺氧剂量排水和被动生化反应器(PBR)的组合。现场规模的处理包括由木灰(WA)反应器分开的两种PBR。确定可能影响实验室和现场规模实验的性能的参数是以下:AMD化学(电导率和Fe和SO42浓度),流速(Q)和饱和液压导率(K(饱和))。基于这些发现,建议设计有效的无源多步处理系统的设计,以考虑以下内容:(1)Fe预处理,使用具有高K(饱和)和低HRT的材料。如果要使用PBR,则Fe负载应为& 26g / m(3)衬底/天(Fe& 200 mg / L)和SO 4 2< 110g / m(3)衬底/天; (2)填充含有至少20%中和剂的混合物的PBR / DAS; (3)在长期预测中包括Q和K(饱和)(六个)(& 10(-3)cm / s)。最后,在建造满量程系统之前强烈建议使用Mesocosm测试,以治疗Fe-Rich AMD。

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