School of Metallurgy and Environment, Central South University, Changsha 410083, China.
School of Metallurgy and Environment, Central South University, Changsha 410083, China; Chinese National Engineering Research Center for Control and Treatment of Heavy Metal Pollution, Central South University, Changsha 410083, China.
J Hazard Mater. 2022 Jul 5;433:128774. doi: 10.1016/j.jhazmat.2022.128774. Epub 2022 Mar 25.
Contaminated sites pose a significant risk to human health and the regional environment. A comprehensive study was dedicated to improving the understanding of the contamination condition of a smelting site by integrating multi-source information through 3D visualization techniques. The results showed that 3D visualization reveals excellent potential for application in the environmental studies to finely depict contamination in soils and establish relationships with geological features, hydrological conditions, and sources of contamination. The contamination plume model revealed that the soil environment at the site was seriously threatened by toxic metals, and dominated by multi-metal contamination, with contamination soil volume ranked as Cd > As > Pb> Zn > Hg. The stratigraphic model revealed the heterogeneous geological conditions of the site and identified the mixed fill layer as the primary remediation soil layer. The permeability model revealed that soil permeability significantly influenced contamination dispersion and contributed to delineate the contamination boundary accurately. The ecological hazard model targeted the high ecological hazard area and determined the high hazard contribution of Cd and Hg in the site soil. The outcomes can be directly applied to actual site remediation and provide a reference for the contaminated sites evaluation and restoration in the future.
污染场地对人类健康和区域环境构成重大风险。通过 3D 可视化技术整合多源信息,进行了一项全面的研究,旨在提高对冶炼场地污染状况的认识。研究结果表明,3D 可视化在环境研究中具有很好的应用潜力,可以精细地描绘土壤中的污染,并建立与地质特征、水文条件和污染来源的关系。污染羽流模型表明,该场地的土壤环境受到有毒金属的严重威胁,以多金属污染为主,污染土壤体积依次为 Cd>As>Pb>Zn>Hg。地层模型揭示了场地的非均质地质条件,并确定混合填充层为主要修复土壤层。渗透模型表明,土壤渗透性显著影响污染的扩散,有助于准确划定污染边界。生态危害模型针对高生态危害区域,确定了 Cd 和 Hg 在场地土壤中的高危害贡献。研究结果可直接应用于实际场地修复,并为未来污染场地评价和修复提供参考。