Progressive colloidal clogging mechanism by dendritic build-up in porous media†

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL
Soft Matter Pub Date : 2025-06-23 DOI:10.1039/D5SM00285K
Walid Okaybi, Sophie Roman and Cyprien Soulaine
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Abstract

Colloidal transport in porous media governs deposition and clogging mechanisms that critically influence flow behavior and impact the efficiency of both natural and industrial systems. However, the role of dendritic structures, a distinct deposition morphology, in this process remains unclear. Understanding the formation and growth of dendrites is essential for advancing clogging dynamics and assessing their impact on permeability. To address this, we perform microfluidic flow experiments and computational fluid analysis to observe and characterize dendrite formation in a heterogeneous tortuous porous domain. Our results reveal a novel clogging mechanism – dendrite clogging – where a single deposition site initiates a structure that extends across the pore space, bridging grains and causing complete clogging. Unlike previously described aggregation-based clogging, which involves multiple deposition sites, dendrite clogging evolves from a single-site deposition. We establish a flow-dependent criterion for dendrite formation by combining hydrodynamic-adhesive torque balance analysis with experimental deposition patterns. Our findings show that dendrites form when front cone stagnation regions are large enough to accommodate multilayer deposition. Moderate flow rates promote dendrite growth, leading to abrupt permeability loss. In contrast, higher flow rates suppress dendrite formation, resulting in a more gradual decline, as captured by the Verma–Pruess permeability–porosity model. Our results provide a predictive model for flow-induced colloidal deposition, with implications for improving filtration systems, groundwater flow, and biomedical microfluidics. Insights into dendrite-driven clogging could lead to methods for reducing clogging in porous systems and optimizing flow performance in diverse applications.

Abstract Image

枝晶在多孔介质中形成的渐进式胶体堵塞机制。
多孔介质中的胶体传输控制着沉积和堵塞机制,这些机制对流动行为和自然和工业系统的效率都有重要影响。然而,树突结构(一种独特的沉积形态)在这一过程中的作用尚不清楚。了解树突的形成和生长对于推进堵塞动力学和评估其对渗透率的影响至关重要。为了解决这个问题,我们进行了微流体流动实验和计算流体分析,以观察和表征非均质弯曲多孔域中枝晶的形成。我们的研究结果揭示了一种新的堵塞机制-枝晶堵塞-其中一个单一的沉积位点启动了一个延伸到孔隙空间的结构,桥接颗粒并导致完全堵塞。与先前描述的基于聚集的堵塞(涉及多个沉积位点)不同,枝晶堵塞是从单位点沉积演变而来的。我们将流体动力-黏附力矩平衡分析与实验沉积模式相结合,建立了一个依赖于流动的枝晶形成准则。我们的研究结果表明,当前锥体停滞区足够大以容纳多层沉积时,树突就会形成。适度的流量促进了枝晶的生长,导致渗透率的突然损失。相反,正如verma - press渗透率-孔隙度模型所描述的那样,更高的流量抑制了枝晶的形成,导致了更缓慢的下降。我们的研究结果为流动诱导的胶体沉积提供了一个预测模型,对改善过滤系统、地下水流动和生物医学微流体具有重要意义。对枝晶驱动的堵塞的深入了解可以帮助我们找到减少多孔系统堵塞的方法,并优化各种应用中的流动性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Soft Matter is an international journal published by the Royal Society of Chemistry using Engineering-Materials Science: A Synthesis as its research focus. It publishes original research articles, review articles, and synthesis articles related to this field, reporting the latest discoveries in the relevant theoretical, practical, and applied disciplines in a timely manner, and aims to promote the rapid exchange of scientific information in this subject area. The journal is an open access journal. The journal is an open access journal and has not been placed on the alert list in the last three years.
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