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建立不同释放情景下纳米 C60 颗粒在地下环境中的输运和滞留模型。

Modeling the transport and retention of nC60 nanoparticles in the subsurface under different release scenarios.

机构信息

Department of Civil Engineering, University of Nebraska — Lincoln, 362R Whittier Building, 2200 Vine Street, Lincoln, NE 68583, USA.

出版信息

J Contam Hydrol. 2012 Aug;136-137:43-55. doi: 10.1016/j.jconhyd.2012.04.008. Epub 2012 May 9.

Abstract

The escalating production and consumption of engineered nanomaterials may lead to their increased release into groundwater. A number of studies have revealed the potential human health effects and aquatic toxicity of nanomaterials. Understanding the fate and transport of engineered nanomaterials is very important for evaluating their potential risks to human and ecological health. While there has been a great deal of research effort focused on the potential risks of nanomaterials, a limited amount of work has evaluated the transport of engineered nanomaterials under different release scenarios in a typical layered geological field setting. In this work, we simulated the transport of fullerene aggregates (nC(60)), a widely used engineered nanomaterial, in a multi-dimensional environment. A Modular Three-Dimensional Multispecies Transport Model (MT3DMS) was modified to evaluate the transport and retention of nC(60) nanoparticles. Hypothetical scenarios for the introduction of nanomaterials into the subsurface environment were investigated, including the release from an injection well and the release from a waste site. Under the conditions evaluated, the mobility of nC(60) nanoparticles was found to be very sensitive to the release scenario, release concentration, aggregate size, collision efficiency factor, and dispersivity of the nanomaterial.

摘要

工程纳米材料的生产和消费不断增加,可能导致其更多地释放到地下水中。许多研究揭示了纳米材料对人类健康和水生生物的潜在影响和毒性。了解工程纳米材料的归宿和迁移转化对评估其对人类和生态健康的潜在风险非常重要。虽然已经有大量的研究工作集中在纳米材料的潜在风险上,但只有有限的工作评估了在典型的层状地质场地环境下,不同释放情景下工程纳米材料的迁移转化。在这项工作中,我们模拟了富勒烯聚集体(nC(60)),一种广泛应用的工程纳米材料,在多维环境中的迁移转化。我们对模块化三维多组分运移模型(MT3DMS)进行了修改,以评估 nC(60)纳米颗粒的运移和滞留。我们研究了将纳米材料引入地下环境的假设情景,包括从注入井和废物场的释放。在评估的条件下,nC(60)纳米颗粒的迁移转化能力对释放情景、释放浓度、聚集尺寸、碰撞效率因子以及纳米材料的分散性非常敏感。

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