Neil Chelsea W, Yang Y Jeffrey, Jun Young-Shin
Department of Energy, Environmental and Chemical Engineering, Washington University, St. Louis, MO 63130, USA.
J Environ Monit. 2012 Jul;14(7):1772-88. doi: 10.1039/c2em30323j. Epub 2012 Jun 15.
Managed aquifer recharge (MAR) has potential for addressing deficits in water supplies worldwide. It is also widely used for preventing saltwater intrusion, maintaining the groundwater table, and augmenting ecological stream flows, among many other beneficial environmental applications. However, field MAR sites have experienced arsenic mobilization from aquifer formation minerals due to induced changes in groundwater chemistry. To address this environmental concern, it is crucial to understand the potential sources and sinks impacting arsenic mobilization. This paper outlines important mineral-water interactions that can occur at MAR sites. Detailed information on minerals of concern, physiochemical processes for arsenic mobilization or attenuation, and the potential impact of microbial activity and hydrology on these processes is provided. Based on these mineral-water interactions, guidelines for predicting arsenic mobility are presented, and recommendations are made concerning MAR site monitoring. The review emphasizes important aspects in correlating interfacial reactions to reactive transport modeling and elucidating future challenges, a first step toward developing safer and more sustainable MAR operations.
有管理的含水层补给(MAR)在解决全球供水短缺问题方面具有潜力。它还被广泛用于防止海水入侵、维持地下水位以及增加生态河道流量等许多其他有益的环境应用中。然而,由于地下水化学性质的诱导变化,现场MAR场地出现了含水层形成矿物中砷的活化现象。为了解决这一环境问题,了解影响砷活化的潜在源和汇至关重要。本文概述了MAR场地可能发生的重要矿物-水相互作用。提供了有关相关矿物、砷活化或衰减的物理化学过程以及微生物活动和水文对这些过程的潜在影响的详细信息。基于这些矿物-水相互作用,提出了预测砷迁移性的指导方针,并就MAR场地监测提出了建议。该综述强调了将界面反应与反应性输运模型相关联以及阐明未来挑战的重要方面,这是朝着开发更安全、更可持续的MAR作业迈出的第一步。