Delineation and understanding the geology and the hydrogeology of a contaminated site, considering its chemical and its biological aspects, are fundamental requirements for successful environmental remediation. The aim of this research is to provide some evidence about the effectiveness of a hydrogeochemical geodatabase to facilitate the integrated management, representation and analysis of heterogeneous data, enabling the appropriate selection, design and optimization of an effective remediation strategy. This study investigates a new technology for the remediation of a dense non-aqueous phase liquid aged source zone, with the aim of enhancing in situ bioremediation by coupling groundwater circulation wells with a continuous production system of electron donors. The technology was verified through a pilot test carried out at an industrial site highly contaminated by chlorinated aliphatic hydrocarbons. The multidisciplinary conceptual model confirmed a complex hydrogeological situation, with the occurrence of active residual sources in low permeability layers. The pilot test results clearly demonstrate a significant mobilization of contaminants from the low permeability zone, and the possibility of favoring the in situ natural attenuation mechanisms based upon biological reductive dechlorination. Different information related to the hydrogeochemical sphere must be integrated and taken into consideration when developing a reliable remediation strategy for contaminated sites.

Hydrogeochemical model supporting the remediation strategy of a highly contaminated industrial site / Ciampi, Paolo; Esposito, Carlo; PETRANGELI PAPINI, Marco. - In: WATER. - ISSN 2073-4441. - 11:7(2019), pp. 1-17. [10.3390/w11071371]

Hydrogeochemical model supporting the remediation strategy of a highly contaminated industrial site

Paolo Ciampi
Primo
Writing – Original Draft Preparation
;
Carlo Esposito
Secondo
Supervision
;
Marco Petrangeli Papini
Ultimo
Supervision
2019

Abstract

Delineation and understanding the geology and the hydrogeology of a contaminated site, considering its chemical and its biological aspects, are fundamental requirements for successful environmental remediation. The aim of this research is to provide some evidence about the effectiveness of a hydrogeochemical geodatabase to facilitate the integrated management, representation and analysis of heterogeneous data, enabling the appropriate selection, design and optimization of an effective remediation strategy. This study investigates a new technology for the remediation of a dense non-aqueous phase liquid aged source zone, with the aim of enhancing in situ bioremediation by coupling groundwater circulation wells with a continuous production system of electron donors. The technology was verified through a pilot test carried out at an industrial site highly contaminated by chlorinated aliphatic hydrocarbons. The multidisciplinary conceptual model confirmed a complex hydrogeological situation, with the occurrence of active residual sources in low permeability layers. The pilot test results clearly demonstrate a significant mobilization of contaminants from the low permeability zone, and the possibility of favoring the in situ natural attenuation mechanisms based upon biological reductive dechlorination. Different information related to the hydrogeochemical sphere must be integrated and taken into consideration when developing a reliable remediation strategy for contaminated sites.
2019
three-dimensional (3D) hydrogeochemical model; geodatabase; remediation; pilot test; groundwater circulation well; in situ bioremediation
01 Pubblicazione su rivista::01a Articolo in rivista
Hydrogeochemical model supporting the remediation strategy of a highly contaminated industrial site / Ciampi, Paolo; Esposito, Carlo; PETRANGELI PAPINI, Marco. - In: WATER. - ISSN 2073-4441. - 11:7(2019), pp. 1-17. [10.3390/w11071371]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1301329
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