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关于沉降和超速离心法中浮力的一般概念。

On the general concept of buoyancy in sedimentation and ultracentrifugation.

作者信息

Piazza Roberto, Buzzaccaro Stefano, Secchi Eleonora, Parola Alberto

机构信息

Dipartimento di Chimica, Materiali e Ingegneria Chimica, Politecnico di Milano, via Ponzio 34/3, I-20133 Milano, Italy.

出版信息

Phys Biol. 2013 Aug;10(4):045005. doi: 10.1088/1478-3975/10/4/045005. Epub 2013 Aug 2.

Abstract

Gravity or ultracentrifuge settling of colloidal particles and macromolecules usually involves several disperse species, either because natural and industrial colloids display a large size polydispersity, or because additives are put in on purpose to allow for density-based fractionation of the suspension. Such 'macromolecular crowding', however, may have surprising effects on sedimentation, for it strongly affects the buoyant force felt by a settling particle. Here we show that, as a matter of fact, the standard Archimedes' principle is just a limiting law, valid only for mesoscopic particles settling in a molecular fluid, and we obtain a fully general expression for the actual buoyancy force providing a microscopic basis to the general thermodynamic analysis of sedimentation in multi-component mixtures. The effective buoyancy also depends on the particle shape, being much more pronounced for thin rods and discs. Our model is successfully tested on simple colloidal mixtures, and used to predict rather unexpected effects, such as denser particles floating on top of a lighter fluid, which we actually observe in targeted experiments. This 'generalized Archimedes principle' may provide a tool to devise novel separation methods sensitive to particle size and shape.

摘要

胶体颗粒和大分子的重力沉降或超速离心沉降通常涉及多种分散物种,这要么是因为天然和工业胶体表现出较大的尺寸多分散性,要么是因为特意添加添加剂以便对悬浮液进行基于密度的分级分离。然而,这种“大分子拥挤”可能对沉降产生惊人的影响,因为它会强烈影响沉降颗粒所感受到的浮力。在此我们表明,事实上,标准的阿基米德原理只是一个极限定律,仅对在分子流体中沉降的介观颗粒有效,并且我们得到了实际浮力的完全通用表达式,为多组分混合物中沉降的一般热力学分析提供了微观基础。有效浮力还取决于颗粒形状,对于细棒和圆盘状颗粒更为显著。我们的模型在简单胶体混合物上得到了成功验证,并用于预测相当意想不到的效应,比如密度较大的颗粒漂浮在较轻流体的顶部,我们在有针对性的实验中实际观察到了这种现象。这种“广义阿基米德原理”可能提供一种工具,用于设计对颗粒大小和形状敏感的新型分离方法。

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