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Transport and retention of colloidal particles in partially saturated porous media: Effect of ionic strength

机译:胶体颗粒在部分饱和多孔介质中的运输和保留:离子强度的影响

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摘要

We directly observed pore-scale attachment of fluorescent synthetic polystyrene colloids (1.0 μm diameter) in a partially saturated sand pack (pore space saturation ranging from 0.7 to 0.9) at four solution ionic strengths (0, 1, 100, 200 mmol NaCl). Sequential confocal laser microscope images were analyzed to quantify colloid retention, particularly at air-water meniscus-solid (AWmS) interfaces. We concurrently measured effluent colloid concentrations to determine overall matrix retention. Ionic strength had no effect on meniscus contact angles (26.7 ± 3.7 degrees) or surface tension (63-67 mN/m), both important components of the capillary forces thought to play the primary role in retention at the AW_mS interfaces. AW_mS interfaces attachment was greatest at 1 mmol, with the 0 mmol ionic strength reducing attachment by half. Increasing ionic strength to 100 and 200 mmol markedly decreased colloid retention at the AW_mS interfaces due to observed increased competing attachment at grain surfaces (solid/water interface) that reduced the number of colloids available for AW_mS interface attachment.
机译:我们直接观察到在四种溶液离子强度(0、1、100、200 mmol NaCl)下,部分饱和的沙包(孔隙空间饱和度在0.7到0.9之间)中的荧光合成聚苯乙烯胶体(直径1.0μm)的孔尺度附着。分析了连续共聚焦激光显微镜图像以量化胶体保留,特别是在空气-水半月板-固体(AWmS)界面处。我们同时测量了流出物的胶体浓度,以确定整体基质保留率。离子强度对弯液面接触角(26.7±3.7度)或表面张力(63-67 mN / m)均无影响,这两个毛细作用力的重要组成部分被认为在保持AW_mS界面中起主要作用。 AW_mS界面附着最大,为1 mmol,0 mmol离子强度使附着减少了一半。将离子强度提高到100和200 mmol会显着降低AW_mS界面处的胶体保留,这是由于观察到的在晶粒表面(固体/水界面)的竞争性附着增加,从而减少了可用于AW_mS界面附着的胶体的数量。

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  • 来源
    《Water resources research》 |2009年第12期|W12403.1-W12403.10|共10页
  • 作者单位

    Department of Biological and Environmental Engineering, Cornell University, Ithaca, New York, USA;

    rnDepartment of Biological and Environmental Engineering, Cornell University, Ithaca, New York, USA;

    rnDepartment of Biological and Environmental Engineering, Cornell University, Ithaca, New York, USA Department of Agricultural and Biological Engineering, University of Florida, Gainesville, Florida, USA;

    rnDepartment of Biological and Environmental Engineering, Cornell University, Ithaca, New York, USA;

    rnDepartment of Biological and Environmental Engineering, Cornell University, Ithaca, New York, USA;

    rnDepartment of Biological and Environmental Engineering, Cornell University, Ithaca, New York, USA;

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