Tribological variable-friction coefficient models for the simulation of dense suspensions of rough polydisperse particles

IF 3 2区 工程技术 Q2 MECHANICS
J. A. Ruíz-López, S. S. Prasanna Kumar, A. Vázquez-Quesada, J. D. de Vicente, M. Ellero
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引用次数: 3

Abstract

The rheology of concentrated suspensions of particles is complex and typically exhibits a shear-thickening behavior in the case of repulsive interactions. Despite the recent interest arisen, the causes of the shear-thickening remain unclear. Frictional contacts have been able to explain the discontinuous shear thickening in simulations. However, the interparticle friction coefficient is considered to be constant in most simulations and theoretical works reported to date despite the fact that tribological experiments demonstrate that the friction coefficient can not only be constant (boundary regime) but also decrease (mixed regime) or even increase (full-film lubrication regime), depending on the normal force and the relative velocity between the particles and the interstitial liquid between them. Interestingly, the transition between the boundary regime and the full-lubrication regime is governed by the particle average roughness. Particle-level simulations of suspensions of hard spheres were carried out using short-range lubrication and roughness-dependent frictional forces describing the full Stribeck curve. Suspensions with different particle’s roughness were simulated to show that the particle roughness is a key factor in the shear-thickening behavior; for sufficiently rough particles, the suspension exhibits a remarkable shear-thickening, while for sufficiently smooth particles, the discontinuous shear-thickening disappears.
粗糙多分散颗粒密集悬浮液模拟的摩擦学变摩擦系数模型
颗粒浓缩悬浮液的流变学是复杂的,在排斥相互作用的情况下典型地表现为剪切增稠行为。尽管最近引起了人们的兴趣,但剪切增厚的原因仍不清楚。在模拟中,摩擦接触能够解释不连续剪切增厚。然而,尽管摩擦学实验表明,摩擦系数不仅可以是恒定的(边界状态),而且可以减小(混合状态)甚至增加(全膜润滑状态),这取决于法向力和颗粒之间的相对速度以及颗粒之间的间隙液体。有趣的是,在边界状态和完全润滑状态之间的过渡是由颗粒平均粗糙度决定的。对硬球悬浮液进行了颗粒级模拟,采用了短程润滑和粗糙度相关的摩擦力,描述了完整的Stribeck曲线。对不同颗粒粗糙度的悬浮液进行了模拟,结果表明颗粒粗糙度是影响剪切增稠行为的关键因素;对于足够粗糙的颗粒,悬浮液表现出显著的剪切增稠,而对于足够光滑的颗粒,不连续的剪切增稠消失。
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来源期刊
Journal of Rheology
Journal of Rheology 物理-力学
CiteScore
6.60
自引率
12.10%
发文量
100
审稿时长
1 months
期刊介绍: The Journal of Rheology, formerly the Transactions of The Society of Rheology, is published six times per year by The Society of Rheology, a member society of the American Institute of Physics, through AIP Publishing. It provides in-depth interdisciplinary coverage of theoretical and experimental issues drawn from industry and academia. The Journal of Rheology is published for professionals and students in chemistry, physics, engineering, material science, and mathematics.
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