Li Jing, Ghoshal Subhasis
Department of Civil Engineering, McGill University, Montreal H3A 0C3, Canada.
Department of Civil Engineering, McGill University, Montreal H3A 0C3, Canada.
Chemosphere. 2016 Feb;144:1398-407. doi: 10.1016/j.chemosphere.2015.09.103. Epub 2015 Oct 23.
Direct injection of nanoscale zerovalent iron (NZVI) particles is being considered for remediation of contaminated sites. However, the transport characteristics of NZVI under horizontal flow conditions are not fully understood. In this study, NZVI particles were stabilized with carboxymethyl cellulose (CMC) and injected in vertical and horizontal columns to compare the effects of the flow direction on the transport. Columns were packed with sand of mean grain diameters of 180, 340 or 1140 µm (referred to as fine, intermediate and coarse sand, respectively), and were injected with CMC-NZVI suspensions of 0.3, 1 or 3 g Fe L(-1). Experimental breakthrough curves showed that with the coarse and intermediate sands, the steady-state effluent concentration in the horizontal column were up to 84% lower than those in the vertical column regardless of the initial NZVI concentration. However, in the fine sand the differences were insignificant, except at the highest NZVI particle concentration. Additionally, in the horizontally-oriented columns containing the coarse or intermediated sand, NZVI aggregates particles were non-uniformly distributed in the cross-section of the columns and there higher deposition in the bottom-half of the cross-section due to gravity effects. These deposition patterns can be accounted for, in part, by the gravitational settling of the large aggregates of NZVI, especially at high NZVI concentrations. A particle trajectory analysis in three dimensions demonstrated that under horizontal flow, gravity forces resulted in lower deposition of NZVI on the bottom-half of a single collector, as particles approaching the bottom-half of the collector were deflected by gravity to collectors below.
目前正在考虑通过直接注入纳米级零价铁(NZVI)颗粒来修复受污染场地。然而,人们对水平流动条件下NZVI的传输特性尚未完全了解。在本研究中,NZVI颗粒用羧甲基纤维素(CMC)进行稳定处理,并注入垂直和水平柱中,以比较流动方向对传输的影响。柱中填充平均粒径为180、340或1140 µm的沙子(分别称为细沙、中沙和粗沙),并注入浓度为0.3、1或3 g Fe L⁻¹的CMC-NZVI悬浮液。实验突破曲线表明,对于粗沙和中沙,无论初始NZVI浓度如何,水平柱中的稳态流出物浓度比垂直柱中的低84%。然而,在细沙中,除了NZVI颗粒浓度最高时,差异不显著。此外,在装有粗沙或中沙的水平柱中,NZVI团聚颗粒在柱的横截面上分布不均匀,由于重力作用,在横截面下半部分的沉积较高。这些沉积模式部分可归因于NZVI大团聚体的重力沉降,尤其是在NZVI浓度较高时。三维颗粒轨迹分析表明,在水平流动下,重力导致NZVI在单个收集器下半部分的沉积减少,因为接近收集器下半部分的颗粒会因重力而偏向下方的收集器。