微重力下胶体-聚合物混合物的相场模拟。

IF 4.1 1区 物理与天体物理 Q1 MULTIDISCIPLINARY SCIENCES
Lauren Barnes, Boris Khusid, Lou Kondic, William V Meyer, Anand U Oza
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引用次数: 0

摘要

胶体-聚合物混合物是模拟相变过程的原型,因为它们表现出低密度气相,高密度结晶相和中间的液相。虽然它们的平衡行为已被广泛研究,但流体力学在驱动其相分离中的作用尚未被理解。我们提出了一个理论模型,描述了在微重力环境下胶体-聚合物混合物中的流体动力学相互作用。我们的相场模型由描述多组分混合物相分离过程的Cahn-Hilliard方程和描述粘性流体流动的Stokes方程组成。我们考虑了悬浮粘度对胶体浓度的依赖性,以及在胶体相界面上产生的所谓的Korteweg应力。我们处理来自美国宇航局二进制胶体合金测试(BCAT)实验的视频显微镜图像,该实验在国际空间站上进行。虽然地面实验将由重力和浮力驱动的流动主导,但BCAT实验的微重力环境允许通过低界面张力可视化相分离,从而可以在实验和我们的模型预测之间进行定量比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phase-field modeling of colloid-polymer mixtures in microgravity.

Colloid-polymer mixtures are an archetype for modeling phase transition processes, as they exhibit a low-density gas phase, high-density crystalline phase and an intervening liquid phase. While their equilibrium behavior has been studied extensively, the role of hydrodynamics in driving their phase separation is not yet understood. We present a theoretical model that describes hydrodynamic interactions in colloid-polymer mixtures in a microgravity environment. Our phase-field model consists of the Cahn-Hilliard equation, which describes phase separation processes in multicomponent mixtures, coupled with the Stokes equation for viscous fluid flow. We account for the dependence of the suspension viscosity on the colloid concentration, and the so-called Korteweg stresses that arise at the interfaces of colloidal phases. We process video microscopy images from NASA's Binary Colloid Alloy Test (BCAT) experiments, which were performed on the International Space Station. While terrestrial experiments would be dominated by gravitational forces and buoyancy-driven flows, the microgravity environment of the BCAT experiments allows for the visualization of phase separation by low interfacial tension, and thus enables a quantitative comparison between experiment and our model predictions.

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来源期刊
npj Microgravity
npj Microgravity Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
7.30
自引率
7.80%
发文量
50
审稿时长
9 weeks
期刊介绍: A new open access, online-only, multidisciplinary research journal, npj Microgravity is dedicated to publishing the most important scientific advances in the life sciences, physical sciences, and engineering fields that are facilitated by spaceflight and analogue platforms.
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