English

Inertial torque on a small spheroid in a stationary uniform flow

Fluid Dynamics 2021-02-09 v3

Abstract

How anisotropic particles rotate and orient in a flow depends on the hydrodynamic torque they experience. Here we compute the torque acting on a small spheroid in a uniform flow by numerically solving the Navier-Stokes equations. Particle shape is varied from oblate (aspect ratio λ=1/6\lambda = 1/6) to prolate (λ=6\lambda = 6), and we consider low and moderate particle Reynolds numbers (Re50{\rm Re} \le 50). We demonstrate that the angular dependence of the torque, predicted theoretically for small particle Reynolds numbers remains qualitatively correct for Reynolds numbers up to Re10{\rm Re} \sim 10. The amplitude of the torque, however, is smaller than the theoretical prediction, the more so as Re{\rm Re} increases. For Re larger than 1010, the flow past oblate spheroids acquires a more complicated structure, resulting in systematic deviations from the theoretical predictions. Overall, our numerical results provide a justification of recent theories for the orientation statistics of ice-crystals settling in a turbulent flow.

Keywords

Cite

@article{arxiv.2005.05634,
  title  = {Inertial torque on a small spheroid in a stationary uniform flow},
  author = {F. Jiang and L. Zhao and H. I. Andersson and K. Gustavsson and A. Pumir and B. Mehlig},
  journal= {arXiv preprint arXiv:2005.05634},
  year   = {2021}
}

Comments

11 pages, 4 figures