Interparticle friction in sheared dense suspensions: Comparison of the viscous and frictional rheology descriptions

Wouter Peerbooms, Tim Nadorp, Antoine van der Heijden, W. Breugem
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Abstract

In the literature, two different frameworks exist for describing the rheology of solid/liquid suspensions: (1) the “viscous” framework in terms of the relative suspension viscosity, ηr, as a function of the reduced solid volume fraction, ϕ/ϕm, with ϕm the maximum flowable packing fraction, and (2) the “frictional” framework in terms of a macroscopic friction coefficient, μ, as a function of the viscous number, Iv, defined as the ratio of the viscous shear to the wall-normal particle stress. Our goal is to compare the two different frameworks, focusing on the effect of friction between particles. We have conducted a particle-resolved direct numerical simulation study of a dense non-Brownian suspension of neutrally buoyant spheres in slow plane Couette flow. We varied the bulk solid volume fraction from ϕb=0.1 to 0.6 and considered three different Coulomb friction coefficients: μc=0, 0.2, and 0.39. We find that ηr scales well with ϕ/ϕm, with ϕm obtained from fitting the Maron–Pierce correlation. We also find that μ scales well with Iv. Furthermore, we find a monotonic relation between ϕ/ϕm and Iv, which depends only weakly on μc. Since ηr=μ/Iv, we thus find that the two frameworks are largely equivalent and that both account implicitly for Coulomb friction. However, we find that the normal particle stress differences, N1 and N2, when normalized with the total shear stress and plotted against either ϕ/ϕm or Iv, remain explicitly dependent on μc in a manner that is not yet fully understood.
剪切致密悬浮液中的颗粒间摩擦:粘滞流变学和摩擦流变学描述的比较
在文献中,有两种不同的框架用于描述固/液悬浮液的流变性:(1) "粘性 "框架,以相对悬浮粘度 ηr 作为还原固体体积分数 ϕ/ϕm 的函数,其中 ϕm 为最大可流动堆积分数;(2) "摩擦 "框架,以宏观摩擦系数 μ 作为粘性数 Iv 的函数,粘性数 Iv 定义为粘性剪切力与颗粒壁面法向应力之比。我们的目标是比较这两种不同的框架,重点关注颗粒间摩擦的影响。我们对中性浮力球体在慢平面库特流中的致密非布朗悬浮液进行了粒子分辨直接数值模拟研究。我们将固体体积分数从 ϕb=0.1 变为 0.6,并考虑了三种不同的库仑摩擦系数:μc=0、0.2 和 0.39。我们发现 ηr 与 ϕ/ϕm 的比例关系很好,其中 ϕm 是通过拟合马龙-皮尔斯相关性得到的。我们还发现,μ 与 Iv 的关系也很好。此外,我们还发现 ϕ/ϕm 与 Iv 之间存在单调关系,而 Iv 只微弱地依赖于 μc。由于ηr=μ/Iv,我们发现这两个框架在很大程度上是等价的,而且都隐含地考虑了库仑摩擦。然而,我们发现,当将法向颗粒应力差 N1 和 N2 与总剪切应力进行归一化并绘制成 ϕ/ϕm 或 Iv 图时,它们仍然以一种尚未完全理解的方式明确依赖于 μc。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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