Department of Earth Sciences, Sapienza University of Rome, Piazzale Aldo Moro 5, 00185 Rome, Italy.
IEG Technologie GmbH, Hohlbachweg 2, D-73344 Gruibingen, Baden-Württemberg, Germany.
Sci Total Environ. 2021 Nov 1;793:148649. doi: 10.1016/j.scitotenv.2021.148649. Epub 2021 Jun 24.
Knowledge of the geology and hydrogeology of the polluted site emblematize a key requirement for environmental remediation, through assembling and synthesizing findings from various sources of physical evidence. In an increasingly virtual era, digital and geo-referenced metadata may serve as tools for collecting, merging, matching, and understanding multi-source information. The main goal of this paper is to emphasize the significance of a 3D hydrogeochemical model to the portrayal and the understanding of contamination dynamics and decontamination mechanisms at a highly contaminated industrial site. Some remediation measures are active on-site, due to the evidence-based presence of chlorinated solvents in groundwater. These are attributable to a slow-release source of pollutants in the saturated zone associated with very low permeability sediments. Therefore, in this research, a new technique for the remediation of secondary sources of dense non-aqueous phase liquid (DNAPL) contamination was investigated for the first time on a full-scale application. The combination of groundwater circulation wells (IEG-GCW®) and a continuous electron donor production device was set up to boost in situ bioremediation (ISB). A multi-phase approach was followed handling and releasing data during various remediation stages, from site characterization via pilot testing to full-scale remediation, thus allowing users to monitor, analyze, and manipulate information in 3D space-time. Multi-source and multi-temporal scenarios reveal the impact of ongoing hydraulic dynamics and depict the decontamination mechanisms in response to the interventions implemented over time, by quantifying the overall performance of the adopted strategies in terms of removal of secondary sources of pollution still active at the site.
污染场地的地质和水文地质知识是环境修复的关键要求之一,通过整合来自各种物理证据来源的发现。在日益虚拟化的时代,数字和地理参考元数据可以作为收集、合并、匹配和理解多源信息的工具。本文的主要目的是强调 3D 水-化学生态模型对于描绘和理解高度污染工业场地污染动态和去污机制的重要性。由于地下水存在氯代溶剂的证据,一些现场修复措施正在积极进行。这些污染是由于与极低渗透性沉积物相关的饱和带中污染物的缓慢释放源造成的。因此,在这项研究中,首次在现场应用中研究了一种用于二次重非水相液体(DNAPL)污染修复的新技术。地下水循环井(IEG-GCW®)和连续电子供体生产装置的组合被用来促进原位生物修复(ISB)。采用多相方法处理和释放各种修复阶段的数据,从场地特征描述到现场测试再到全面修复,从而允许用户在 3D 时空内监测、分析和操作信息。多源和多时相方案揭示了当前水力动态的影响,并描述了随着时间的推移实施干预措施后的去污机制,通过量化所采用策略的整体性能来衡量仍在现场活跃的二次污染源的去除情况。