English

Flow instability in Stokes layer of Carreau fluids

Fluid Dynamics 2026-05-06 v1

Abstract

This study investigates the influence of shear-thinning on the instability of a prototype time-periodic flow, the Stokes layer, in Carreau fluids. The time-dependent base flow was solved using a numerical method and a binomial expansion method. The expansion is conducted in terms of the nondimensional characteristic time (Λ\Lambda), which quantifies the fluid's response time in viscosity to changes in shear rate. The expansion method shows good agreement with the numerical solution, provided that Λ\Lambda remains small. To understand the effect of shear-thinning on time-periodic flow instability, a Floquet analysis was conducted to examine two key parameters of the Carreau model, i.e., Λ\Lambda and the power-law exponent nn. Our results show that decreasing nn, which signifies stronger shear-thinning behavior, has a monotonic stabilizing effect on the flow within the range of investigated nn. In contrast, increasing Λ\Lambda has a non-monotonic effect on the flow instability, which can be observed in both the weakly and strongly shear-thinning regimes. To clarify the instability mechanism, we perform an energy analysis showing that instability arises when the perturbation field is in phase with the oscillatory base flow, enabling efficient energy extraction from the time-dependent shear. A phase mismatch suppresses this transfer and stabilises the flow. This mechanism parallels the classical energy-production process in steady shear flows, where streamwise and wall-normal velocity perturbations exhibit a characteristic phase difference. Crucially, it is identified here for the first time in a time-periodic shear flow.

Keywords

Cite

@article{arxiv.2605.03417,
  title  = {Flow instability in Stokes layer of Carreau fluids},
  author = {Mengqi Zhang and Dongdong Wan and Huanshu Tan},
  journal= {arXiv preprint arXiv:2605.03417},
  year   = {2026}
}
R2 v1 2026-07-01T12:49:55.438Z