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Topological inversions in coalescing granular media control fluid-flow regimes.

机译:聚结颗粒介质中的拓扑反演控制流体流态。

摘要

Sintering—or coalescence—of viscous droplets is an essential process in many natural and industrial scenarios. Current physical models of the dynamics of sintering are limited by the lack of an explicit account of the evolution of microstructural geometry. Here, we use high-speed time-resolved x-ray tomography to image the evolving geometry of a sintering system of viscous droplets, and use lattice Boltzmann simulations of creeping fluid flow through the reconstructed pore space to determine its permeability. We identify and characterize a topological inversion, from spherical droplets in a continuous interstitial gas, to isolated bubbles in a continuous liquid. We find that the topological inversion is associated with a transition in permeability-porosity behavior, from Stokes permeability at high porosity, to percolation theory at low porosity. We use these findings to construct a unified physical description that reconciles previously incompatible models for the evolution of porosity and permeability during sintering.
机译:在许多自然和工业场景中,粘性液滴的烧结(或合并)是必不可少的过程。烧结动力学的当前物理模型由于缺乏对微观结构几何形状演变的明确说明而受到限制。在这里,我们使用高速时间分辨X射线断层扫描来成像粘性液滴烧结系统的演化几何,并使用蠕变流体流经重建的孔隙空间的晶格Boltzmann模拟来确定其渗透率。我们确定并表征拓扑反转,从连续间隙气体中的球形液滴到连续液体中的孤立气泡。我们发现拓扑反演与渗透率-孔隙率行为的转变有关,从高孔隙率的斯托克斯渗透率到低孔隙率的渗流理论。我们使用这些发现来构建统一的物理描述,以协调先前在烧结过程中孔隙率和渗透率演变不兼容的模型。

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