Orientation dynamics of a spheroidal particle settling in a simple shear flow

ORAL

Abstract

In a viscous simple shear flow, a force-free, torque-free spheroid executes a periodic rotary motion - known as Jeffery orbits. However, the orientation of a sedimenting axisymmetric particle is indeterminate in the Stokesian regime. The indeterminacy is removed with the inclusion of fluid inertia, wherein an inertial torque leads to a spheroid falling with a broadside-on orientation. In the current study, we explore the competition of the two torques, shear and inertial, for a spheroid settling in a simple shear flow. Two non-dimensional quantities span the parameter space - the ratio of flow to settling time-scale (SF) and the angles subtended by the vorticity axis of the flow to gravity (α, β). The orientation phase-space exhibits a rich dynamical behavior as we scan through SF, α, and β values. The bifurcation diagrams reveal the transition from an oscillating orientation angle to a constant fixed angle predicted from larger sedimentation torques.

*The authors acknowedge support from a) IIT Madras for its support of the 'Geophysical Flows Lab' research initiative under the Institute of Eminence framwork, and b) the Prime Minister Research fellowship, Ministry of education, Government of India.

Presenters

  • Himanshu Mishra

    • Indian Institute of Technology Madras

Authors

  • Himanshu Mishra

    • Indian Institute of Technology Madras
  • Anubhab Roy

    • Indian Institute of Technology Madras