Freezing point depression and freeze-thaw damage by nanofluidic salt trapping

IF 3 3区 物理与天体物理 Q2 PHYSICS, FLUIDS & PLASMAS
Tingtao Zhou, M. Mirzadeh, R. Pellenq, M. Bazant
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引用次数: 10

Abstract

A remarkable variety of organisms and wet materials are able to endure temperatures far below the freezing point of bulk water. Cryo-tolerance in biology is usually attributed to "anti-freeze" proteins, and yet massive supercooling ($ 10$~MPa) required to damage concrete, the observed correlation between pavement damage and de-icing salts, or the damage of cement paste loaded with benzene (which contracts upon freezing). In this Letter, we propose a different mechanism -- nanofluidic salt trapping -- which can explain the observations, using simple mathematical models of dissolved ions confined to thin liquid films between growing ice and charged surfaces. Although trapped salt lowers the freezing point, ice nucleation in charged pores causes enormous disjoining pressures via the rejected ions, until their removal by precipitation or surface adsorption at a lower temperatures releases the pressure and allows complete freezing. The theory is able to predict the non-monotonic salt-concentration dependence of freeze-thaw damage in concreter and provides a general framework to understand the origins of cryo-tolerance.
纳米流体盐捕集的冰点降低和冻融损伤
种类繁多的生物体和湿物质能够忍受远低于大量水冰点的温度。生物学上的耐寒性通常归因于“防冻”蛋白质,但破坏混凝土需要大量的过冷(10美元~兆帕),观察到的路面损伤与除冰盐之间的关系,或含有苯的水泥浆的损伤(它在冻结时收缩)。在这封信中,我们提出了一种不同的机制——纳米流体盐捕获——它可以解释观察结果,使用简单的数学模型,将溶解离子限制在生长冰和带电表面之间的薄液体膜中。尽管被捕获的盐降低了冰点,但带电孔隙中的冰核通过被拒绝的离子产生巨大的分离压力,直到在较低温度下通过沉淀或表面吸附将其去除释放压力并允许完全冻结。该理论能够预测混凝土冻融损伤的非单调盐浓度依赖性,并为理解耐寒性的起源提供了一个总体框架。
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来源期刊
Physical Review Fluids
Physical Review Fluids Chemical Engineering-Fluid Flow and Transfer Processes
CiteScore
5.10
自引率
11.10%
发文量
488
期刊介绍: Physical Review Fluids is APS’s newest online-only journal dedicated to publishing innovative research that will significantly advance the fundamental understanding of fluid dynamics. Physical Review Fluids expands the scope of the APS journals to include additional areas of fluid dynamics research, complements the existing Physical Review collection, and maintains the same quality and reputation that authors and subscribers expect from APS. The journal is published with the endorsement of the APS Division of Fluid Dynamics.
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