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Arsenic removal via ZVI in a hybrid spouted vessel/fixed bed filter system

机译:通过ZVI在混合喷射血管/固定床过滤系统中通过氧化砷去除

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摘要

The description and operation of a novel, hybrid spouted vessel/fixed bed filter system for the removal of arsenic from water are presented. The system utilizes zero-valent iron (ZVI) particles circulating in a spouted vessel that continuously generates active colloidal iron corrosion products via the “self-polishing” action between ZVI source particles rolling in the moving bed that forms on the conical bottom of the spouted vessel. This action also serves as a “surface renewal” mechanism for the particles that provides for maximum utilization of the ZVI material. (Results of batch experiments conducted to examine this mechanism are also presented.) The colloidal material produced in this fashion is continuously captured and concentrated in a fixed bed filter located within the spouted vessel reservoir wherein arsenic complexation occurs. It is demonstrated that this system is very effective for arsenic removal in the microgram per liter arsenic concentration (i.e., drinking water treatment) range, reducing 100 μg/L of arsenic to below detectable levels (≪10 μg/L) in less than an hour.A mechanistic analysis of arsenic behavior in the system is presented, identifying the principal components of the population of active colloidal material for arsenic removal that explains the experimental observations and working principles of the system. It is concluded that the apparent kinetic behavior of arsenic in systems where colloidal (i.e., microano) iron corrosion products are dominant can be complex and may not be explained by simple first or zeroth order kinetics.
机译:提出了一种用于从水中移除砷的新颖的混合喷射容器/固定床过滤系统的描述和操作。该系统利用在喷射容器中循环的零价熨斗(ZVI)颗粒,其通过ZVI源颗粒之间的“自抛光”作用在移动床中形成的“自抛光”作用,这些动力在喷射的锥形底部形成的血管。该动作还用作提供ZVI材料的最大利用的颗粒的“表面更新”机制。 (还介绍了检查该机制的分批实验的结果。)以这种方式生产的胶体材料连续捕获并浓缩在位于喷射容器储存器内的固定床过滤器中,其中发生砷络合。结果表明,该系统对于每升砷浓度(即,饮用水处理)范围的微观砷去除非常有效,将100μg/ L砷在低于一个以下给出了系统中砷行为的时光分析,鉴定了用于砷的活性胶体材料群的主要成分,用于去除系统的实验观察和工作原理。结论是,胶体(即微/纳米)铁腐蚀产物占优势的系统中砷的表观动力学行为可以是复杂的,并且可能无法通过简单的第一或Zeroth动力学解释。

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