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Flow regime transitions in dense non-Brownian suspensions: Rheology, microstructural characterization, and constitutive modeling

机译:密集的非布朗悬浮液中的流态转变:流变学,微观结构表征和本构模型

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摘要

Shear flow of dense non-Brownian suspensions is simulated using the discrete element method taking particle contact and hydrodynamic lubrication into account. The resulting flow regimes are mapped in the parametric space of the solid volume fraction, shear rate, fluid viscosity, and particle stiffness. Below a critical volume fraction φc, the rheology is governed by the Stokes number, which distinguishes between viscous and inertial flow regimes. Above φc, a quasistatic regime exists for low and moderate shear rates. At very high shear rates, the φ dependence is lost, and soft-particle rheology is explored. The transitions between rheological regimes are associated with the evolving contribution of lubrication to the suspension stress. Transitions in microscopic phenomena, such as interparticle force distribution, fabric, and correlation length are found to correspond to those in the macroscopic flow. Motivated by the bulk rheology, a constitutive model is proposed combining a viscous pressure term with a dry granular model presented by Chialvo et al. [Phys. Rev. E 85, 021305 (2012)]. The model is shown to successfully capture the flow regime transitions.
机译:考虑颗粒接触和流体动力润滑,采用离散元法模拟了稠密的非布朗悬浮液的剪切流。产生的流动状态被映射在固体体积分数,剪切速率,流体粘度和颗粒刚度的参数空间中。低于临界体积分数φc时,流变学由斯托克斯数决定,斯托克斯数区分粘性流和惯性流态。在φc以上,对于低和中等剪切速率存在准静态状态。在非常高的剪切速率下,失去了φ依赖性,并探索了软颗粒流变学。流变状态之间的过渡与润滑对悬架应力的贡献有关。发现微观现象的转变(例如粒子间力分布,织物和相关长度)与宏观流中的转变相对应。受本体流变学的影响,提出了本构模型,该模型将粘性压力项与Chialvo等人提出的干颗粒模型相结合。 [物理Rev 85,021305(2012)]。该模型显示成功捕获了流态转换。

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  • 作者

    Ness, Christopher; Sun, Jin;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 eng
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