首页> 外文期刊>Geoderma: An International Journal of Soil Science >Transport of silver nanoparticles in intact columns of calcareous soils: The role of flow conditions and soil texture
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Transport of silver nanoparticles in intact columns of calcareous soils: The role of flow conditions and soil texture

机译:钙质土壤完整柱中银纳米粒子的运输:流动条件和土壤纹理的作用

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Growing production of manufactured nanomaterials has increased the possibility of contamination of groundwater resources and soils by nanoparticles (NPs). It is crucial to study the fate of NPs in subsurface porous media in order to evaluate and control their risks to ecosystems and human health. Hence, this study was conducted to investigate the transport and retention of polyvinylpyrrolidone (PVP) stabilized silver nanoparticles (AgNPs, a diameter of 40 nm) under saturated and unsaturated conditions in intact columns of two calcareous sandy loam (TR) and loam (ZR) soils. Furthermore, similar experiments were conducted using sand quartz as a reference medium. A pulse of the AgNP suspension with an input concentration (C-0) of 50 mg L-1 was injected into the columns for 3 pore volumes. The transport of bromide (Br), as a non-reactive inert tracer, was also examined. High mobility of AgNPs was observed through the sand columns due to unfavorable conditions for AgNP deposition on the quartz sand surfaces. Nearly all AgNPs introduced into the columns of both soils were retained in the soil. Percentages of AgNPs leached out of the columns were & 1% of the total injected mass in both soils. Hyperexponential retention profiles (RPs) were observed in both soils and maximum concentrations of 100-130 mg kg(-1 )were determined near the columns' inlet. However, slightly stronger retention of AgNPs and greater maximum retained concentrations on the solid phase (S-max) in the ZR soil compared with the TR soil may be attributed to smaller grain sizes of the ZR soil. Hydrodynamic forces adjacent to the solid surfaces near the column inlet can provide a viable explanation for the hyperexponential shape of RPs. The one-site kinetic attachment model in HYDRUS-1D, which accounted for time- and depth-dependent retention, was successfully used to analyze the retention of AgNPs. The results showed that the degree of saturation had little effect on the mobility of AgNPs through undisturbed soil columns. Our results suggested the limited transport of AgNPs in neutral/alkaline calcareous soils under both saturated and unsaturated conditions.
机译:越来越多的制造纳米材料的生产增加了纳米颗粒(NPS)的地下水和土壤污染的可能性。研究地下多孔介质中NPS的命运是至关重要的,以评估和控制其对生态系统和人类健康的风险。因此,该研究进行了饱和和不饱和条件下的饱和和不饱和条件下的聚乙烯吡咯烷酮(PVP)稳定的银纳米粒子(PVP)稳定的银纳米颗粒(AgNP,直径为40nm)的运输和保留,在两个钙质砂土(Tr)和壤土(Zr)中土壤。此外,使用砂石英作为参考介质进行类似的实验。将AgNP悬浮液的脉冲注入3孔,将50mg L-1的输入浓度(C-0)注入3孔中。还检查了溴化物(Br)作为非反应性惰性示踪剂的运输。由于石英砂表面上的AgNP沉积的不利条件,通过砂柱观察到AgNP的高迁移率。几乎所有引入两种土壤柱的agnps都保留在土壤中。从柱子中浸出的agnps百分比& 两种土壤中注射块的总量的1%。在两种土壤中观察到过度抑制曲线(RPS),在柱入口附近测定100-130mg kg(-1)的最大浓度。然而,与TR土壤相比,ZR土壤中固相(S-MAX)略微较强的agnps和更大的最大保留浓度的保留率较小,可能归因于ZR土壤的较小晶粒尺寸。靠近柱入口附近的固体表面附近的流体动力可以为RPS的过度型形状提供可行的解释。 Hydrus-1d中的单位动力学附件模型,占时间和深度依赖性保留,已成功地分析AgNP的保留。结果表明,饱和度对通过未受干扰的土壤柱的迁移率几乎没有影响。我们的研究结果表明,在饱和和不饱和条件下,在中性/碱性钙质土壤中agnps在中性/碱性钙质土壤中运输有限。

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