A Solid-Based Approach for Modeling Simple Yield-Stress Fluids: Rheological Transitions, Overshoot and Relaxation
Jehyeok Choi, Ju Min Kim, Kwang Soo Cho

TL;DR
This paper introduces a new constitutive model for simple yield-stress fluids that accurately predicts both steady and transient rheological behaviors, including stress overshoot, based on a solid-based viscoelastic framework.
Contribution
A novel viscoelastic solid-based constitutive equation is proposed, successfully capturing complex rheological phenomena in yield-stress fluids without relying on thixotropy.
Findings
Model reproduces experimental rheological behaviors qualitatively.
Accurately predicts stress overshoot during start-up shear.
Overshoot arises from normal stress differences, not microstructural heterogeneity.
Abstract
Yield-stress fluids are ubiquitous and encountered in diverse fields ranging from natural muddy flows to industrial applications such as secondary battery electrode slurries and direct ink writing. Despite the proposal of various constitutive equations, few models have been shown to successfully predict both steady and transient rheological behaviors in yield-stress fluids. In this study, a constitutive equation is hereby proposed, offering a comprehensive description of the rheological characteristics observed in simple yield-stress fluids, excluding thixotropy, such as the Carbopol dispersion. The constitutive equation is derived from a Zener-type viscoelastic solid element combined with an additional linear dashpot connected in parallel, together with a nonlinear viscosity model, a flow rule, an evolution equation for the back stress, and the Kroner-Lee decomposition. This…
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