Center for Environmental Implications of Nanotechnology and Department of Civil & Environmental Engineering, and Department of Chemical Engineering, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213-3890, United States.
Environ Sci Technol. 2010 Dec 1;44(23):9086-93. doi: 10.1021/es102398e. Epub 2010 Nov 8.
Concentrated suspensions of polymer-modified Fe(0) nanoparticles (NZVI) are injected into heterogeneous porous media for groundwater remediation. This study evaluated the effect of porous media heterogeneity and the dispersion properties including particle concentration, Fe(0) content, and adsorbed polymer mass and layer thickness which are expected to affect the delivery and emplacement of NZVI in heterogeneous porous media in a two-dimensional (2-D) cell. Heterogeneity in hydraulic conductivity had a significant impact on the deposition of NZVI. Polymer modified NZVI followed preferential flow paths and deposited in the regions where fluid shear is insufficient to prevent NZVI agglomeration and deposition. NZVI transported in heterogeneous porous media better at low particle concentration (0.3 g/L) than at high particle concentrations (3 and 6 g/L) due to greater particle agglomeration at high concentration. High Fe(0) content decreased transport during injection due to agglomeration promoted by magnetic attraction. NZVI with a flat adsorbed polymeric layer (thickness ∼30 nm) could not be transported effectively due to pore clogging and deposition near the inlet, while NZVI with a more extended adsorbed layer thickness (i.e., ∼70 nm) were mobile in porous media. This study indicates the importance of characterizing porous media heterogeneity and NZVI dispersion properties as part of the design of a robust delivery strategy for NZVI in the subsurface.
聚合物改性零价铁(NZVI)纳米粒子的浓缩悬浮液被注入非均相多孔介质中,用于地下水修复。本研究评估了多孔介质非均质性以及分散特性的影响,包括预期会影响 NZVI 在二维(2-D)单元中在非均相多孔介质中输送和放置的颗粒浓度、Fe(0) 含量、吸附聚合物质量和层厚度。水力传导率的非均质性对 NZVI 的沉积有重大影响。聚合物改性的 NZVI 沿着优先流动路径流动,并沉积在流体剪切不足以防止 NZVI 团聚和沉积的区域。由于在高浓度下颗粒团聚更严重,NZVI 在低颗粒浓度(0.3 g/L)下比在高颗粒浓度(3 和 6 g/L)下在非均相多孔介质中的传输更好。由于磁引力促进团聚,高 Fe(0) 含量会在注入过程中降低传输。具有平坦吸附聚合物层(厚度约为 30nm)的 NZVI 由于在入口附近的孔隙堵塞和沉积而无法有效传输,而具有更扩展的吸附层厚度(即约 70nm)的 NZVI 在多孔介质中是可移动的。本研究表明,在地下环境中,NZVI 输送的稳健设计中,表征多孔介质非均质性和 NZVI 分散特性非常重要。