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湿泡沫中两个颗粒加速沉降和受阻沉降的起源

Origin of accelerated and hindered sedimentation of two particles in wet foam.

作者信息

Jing Zefeng, Feng Chenchen, Wang Shuzhong, Xu Donghai

机构信息

Key Laboratory of Thermo-Fluid Science and Engineering of MOE, School of Energy and Power Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, China.

出版信息

Eur Phys J E Soft Matter. 2018 Mar 20;41(3):33. doi: 10.1140/epje/i2018-11642-7.

Abstract

To explore the origin of interactional settling behaviors of multi-particles in wet foam, the sedimentation of two particles placed one above the other as well as placed side by side is studied. According to the average settling velocity in experiment and the average settling drag force of the two particles in numerical simulation, we show that the particles display accelerated sedimentation as placed one above the other while they display hindered sedimentation in the case of the ones positioned side by side. Furthermore, the evolution of structure and force parameters of the bubbles, such as T1 topological events, displacement vector and principal stress fields, shows that the reciprocal action between the foam and the settling particles placed side by side is more significant. The different levels of interplay for these two settling cases also give rise to the diverse changes of bubble pressure response. The bubble pressure component of the average drag force is higher for the particles placed side by side. Especially, for the first time, it reveals that these interactional sedimentation behaviors in the foam are mainly attributed to the changed pressure of bubbles caused by these settling particles at the mesoscopic level. The present results may suggest potential explanations to the cause of the complex accelerated or hindered sedimentation of more particles in wet foam.

摘要

为了探究湿泡沫中多颗粒相互作用沉降行为的起源,研究了两个颗粒上下放置以及并排放置时的沉降情况。根据实验中的平均沉降速度和数值模拟中两个颗粒的平均沉降阻力,我们发现,两个颗粒上下放置时会加速沉降,而并排放置时则会出现沉降受阻的情况。此外,气泡的结构和力参数的演变,如T1拓扑事件、位移矢量和主应力场,表明泡沫与并排放置的沉降颗粒之间的相互作用更为显著。这两种沉降情况的相互作用程度不同,也导致了气泡压力响应的不同变化。并排放置的颗粒的平均阻力的气泡压力分量更高。特别是,首次揭示了泡沫中的这些相互作用沉降行为主要归因于介观层面上这些沉降颗粒引起的气泡压力变化。目前的结果可能为湿泡沫中更多颗粒复杂的加速或受阻沉降原因提供潜在解释。

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