English

Shear Stress Build-up Under Constant Strain Conditions in Soft Glassy Materials

Soft Condensed Matter 2025-04-02 v1 Mesoscale and Nanoscale Physics

Abstract

In this work, we investigate the transient rheological behavior of two soft glassy materials: a clay dispersion and a silica gel, emphasizing their unconventional shear stress build-up behavior under conditions of constant imposed strain. For both materials, the elastic modulus and static yield stress undergo time-dependent evolution or aging. In addition, following an intense period of pre-shearing (i.e. shear-melting or destructuration), the material relaxation time is observed to show a stronger than linear dependence on the sample age, suggestive of hyper-aging dynamics. We show that these features are consistent with non-monotonic steady-state shear stress/shear rate flow curves characterized by a local stress minimum. When a steady shear flow is suddenly ceased, and the total imposed sample strain is held constant, both materials show an initial relaxation of the shear stress followed by a period of shear stress buildup, resulting in a local minimum in the evolution of shear stress with time. For the clay dispersion, the intensity of these effects increases with higher pre-shear rates, whereas for the silica gel, the effects are largely independent of the pre-shear rate. We also propose a simple time-dependent linear Maxwell model, which qualitatively predicts the experimentally observed trends in which the shear stress build-up is directly related to a monotonic increase in the elastic modulus, giving keen insight into this peculiar phenomenon.

Keywords

Cite

@article{arxiv.2504.00806,
  title  = {Shear Stress Build-up Under Constant Strain Conditions in Soft Glassy Materials},
  author = {Vivek Kumar and Gareth H McKinley and Yogesh M Joshi},
  journal= {arXiv preprint arXiv:2504.00806},
  year   = {2025}
}

Comments

40 pages, 18 figures