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首页> 外文期刊>Journal of Contaminant Hydrology >One-dimensional experimental investigation and simulation on the transport characteristics of heterogeneous colloidal Mg(OH)_2 in saturated porous media
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One-dimensional experimental investigation and simulation on the transport characteristics of heterogeneous colloidal Mg(OH)_2 in saturated porous media

机译:饱和多孔介质中非均质胶体Mg(OH)_2传输特性的一维实验研究与模拟

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Recent laboratory studies have shown the injection of colloidal Mg(OH)(2) could provide an effective and low cost alternative as a long term pH buffering system. In this study, Mg(OH)(2) was modified by Tween 80 and SDS and the modified suspension had the properties of high stability, small particle size (the average particle diameter D-50 was smaller than 1 mu m) and negative charge (zeta potential = -14.26 mV at pH = 10.54). All of these properties demonstrated that colloidal Mg(OH)(2) may have satisfactory transport performance in porous media. However, colloidal Mg(OH)(2) is heterogeneous colloids with a high concentration, the transport performance in porous media is significantly different from homogeneous colloids, and the model simulation is relatively complex. To solve these problems, method of calculus combined with colloid filtration theory (CFT), T-E equation and modified Maxwell theory was used to simulate the transport performance of high concentration of Mg(OH)(2) colloids. Results indicated that the observed experimental results matched well with the model simulations. Hydrodynamic force, DLVO attractive force and colloid diffusion are the major factors controlling the migration of colloidal Mg(OH)(2) in porous media and could quantitatively describe the influence of injection velocity, porous media size and ionic strength on colloidal Mg(OH)(2) transport properties by model calculation.
机译:最近的实验室研究表明,作为长期pH缓冲系统,胶体Mg(OH)(2)的注射可提供一种有效且低成本的替代品。本研究中,吐温80和SDS对Mg(OH)(2)进行了改性,改性后的悬浮液具有稳定性高,粒径小(平均粒径D-50小于1μm)和负电荷的特性。 (在pH = 10.54时,zeta电位= -14.26 mV)。所有这些性质表明,胶体Mg(OH)(2)在多孔介质中可能具有令人满意的传输性能。然而,胶体Mg(OH)(2)是高浓度的异质胶体,在多孔介质中的传输性能与均质胶体明显不同,并且模型模拟相对复杂。为了解决这些问题,采用微积分方法结合胶体过滤理论(CFT),T-E方程和改进的麦克斯韦理论来模拟高浓度Mg(OH)(2)胶体的传输性能。结果表明,观察到的实验结果与模型仿真吻合良好。流体动力,DLVO吸引力和胶体扩散是控制胶体Mg(OH)(2)在多孔介质中迁移的主要因素,可以定量描述注入速度,多孔介质尺寸和离子强度对胶体Mg(OH)的影响。 (2)通过模型计算运输性质。

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