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An explanation for differences in the process of colloid adsorption in batch and column studies

机译:批处理和色谱柱研究中胶体吸附过程差异的解释

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It is essential to understand the mechanisms that control virus and bacteria removal in the subsurface environment to assess the risk of groundwater contamination with fecal microorganisms. This study was conducted to explicitly provide a critical and systematic comparison between batch and column experiments. The aim was to investigate the underlying factors causing the commonly observed discrepancies in colloid adsorption process in column and batch systems. We examined the colloid adsorption behavior of four different sizes of carboxylate-modified latex (CML) microspheres, as surrogates for viruses and bacteria, on quartz sand in batch and column experiments over a wide range of solution ionic strengths (IS). Our results show that adsorption of colloids in batch systems should be considered as an irreversible attachment because the attachment/detachment model was found to be inadequate in describing the batch results. An irreversible attachment-blocking model was found to accurately describe the results of both batch and column experiments. The rate of attachment was found to depend highly on colloid size, solution IS and the fraction of the sand surface area favorable for attachment (S_f). The rate of attachment and S_f values were different in batch and column experiments due to differences in the hydrodynamic of the system, and the role of surface roughness and pore structure on colloid attachment. Results from column and batch experiments were generally not comparable, especially for larger colloids (≥0.5 μm). Predictions based on classical DLVO theory were found to inadequately describe interaction energies between colloids and sand surfaces.
机译:必须了解控制地下环境中病毒和细菌清除的机制,以评估粪便微生物污染地下水的风险。进行这项研究以明确提供批处理和色谱柱实验之间的关键和系统的比较。目的是研究引起色谱柱和间歇系统胶体吸附过程中普遍观察到的差异的潜在因素。我们在广泛的溶液离子强度(IS)范围内,通过分批和柱实验,研究了四种不同尺寸的羧酸盐修饰的乳胶(CML)微球体(作为病毒和细菌的替代物)在硅胶上的胶体吸附行为。我们的结果表明,批处理系统中胶体的吸附应视为不可逆的附着,因为发现附着/分离模型不足以描述批处理结果。发现不可逆的附件阻滞模型可以准确描述批处理和色谱柱实验的结果。发现附着速率很大程度上取决于胶体尺寸,溶液IS和有利于附着的砂表面积分数(S_f)。由于系统的流体动力学差异以及表面粗糙度和孔结构对胶体附着的作用,在批处理和柱实验中附着速率和S_f值不同。柱和批处理实验的结果通常不可比,尤其是对于较大的胶体(≥0.5μm)。发现基于经典DLVO理论的预测不足以描述胶体与沙面之间的相互作用能。

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