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Colloid Mobilization and Transport during Capillary Fringe Fluctuations

机译:毛细血管波动期间的胶体动员和运输

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摘要

Capillary fringe fluctuations due to changing water tables lead to displacement of air-water interfaces in soils and sediments. These moving air-water interfaces can mobilize colloids. We visualized colloids interacting with moving air-water interlaces during capillary fringe fluctuations by confocal microscopy. We simulated capillary fringe fluctuations in a glass-bead-filled column. We studied four specific conditions: (1) colloids suspended in the aqueous phase, (2) colloids attached to the glass beads in an initially wet porous medium, (3) colloids attached to the glass beads in an initially dry porous medium, and (4) colloids suspended in the aqueous phase with the presence of a static air bubble. Confocal images confirmed that the capillary fringe fluctuations affect colloid transport behavior. Hydrophilic negatively charged colloids initially suspended in the aqueous phase were deposited at the solid-water interface after a drainage passage, but then were removed by subsequent capillary fringe fluctuations. The colloids that were initially attached to the wet or dry glass bead surface were detached by moving air-water interlaces in the capillary fringe. Hydrophilic negatively charged colloids did not attach to static air-bubbles, but hydrophobic negatively charged and hydrophilic positively charged colloids did. Our results demonstrate that capillary fringe fluctuations are an effective means for colloid mobilization.
机译:地下水位变化引起的毛细边缘波动导致土壤和沉积物中空气-水界面的位移。这些移动的空气-水界面可以动员胶体。我们通过共聚焦显微镜观察了毛细条纹波动期间胶体与移动的空气-水交错的相互作用。我们模拟了玻璃珠填充柱中的毛细条纹波动。我们研究了四个特定条件:(1)悬浮在水相中的胶体,(2)在最初湿的多孔介质中附着于玻璃珠的胶体,(3)在最初干燥的多孔介质中附着于玻璃珠的胶体,和( 4)在静态气泡存在下悬浮在水相中的胶体。共聚焦图像证实,毛细条纹波动会影响胶体的传输行为。最初悬浮在水相中的亲水性带负电荷的胶体在排水通道后沉积在固-水界面处,但随后因随后的毛细条纹波动而被去除。最初附着在湿玻璃珠或干玻璃珠表面上的胶体通过在毛细条纹中移动空气-水交错层而脱离。亲水的带负电的胶体不会附着在静态气泡上,而疏水的带负电的胶体和亲水的带正电荷的胶体会附着。我们的结果表明,毛细条纹波动是胶体动员的有效手段。

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  • 来源
    《Environmental Science & Technology》 |2014年第13期|7272-7279|共8页
  • 作者单位

    Department of Crop and Soil Sciences, Washington State University, Pullman, Washington 99164, United States,Department of Crop and Soil Sciences, Washington State University, Puyallup, Washington 98371, United States,Department of Soil Science, Faculty of Agriculture, Kasetsart University, Bangkok-10900, Thailand;

    Department of Crop and Soil Sciences, Washington State University, Puyallup, Washington 98371, United States;

    Department of Crop and Soil Sciences, Washington State University, Pullman, Washington 99164, United States;

    The Gene and Linda Voiland School of Chemical Engineering and Bioengineering, Washington State University, Pullman, Washington 99164, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 14:01:00

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