On fluid flows in precessing narrow annular channels: asymptotic analysis and numerical simulation

Author:

ZHANG KEKE,KONG DALI,LIAO XINHAO

Abstract

We consider a viscous, incompressible fluid confined in a narrow annular channel rotating rapidly about its axis of symmetry with angular velocity Ω that itself precesses slowly about an axis fixed in an inertial frame. The precessional problem is characterized by three parameters: the Ekman number E, the Poincaré number ε and the aspect ratio of the channel Γ. Dependent upon the size of Γ, precessionally driven flows can be either resonant or non-resonant with the Poincaré forcing. By assuming that it is the viscous effect, rather than the nonlinear effect, that plays an essential role at exact resonance, two asymptotic expressions for ε ≪ 1 and E ≪ 1 describing the single and double inertial-mode resonance are derived under the non-slip boundary condition. An asymptotic expression describing non-resonant precessing flows is also derived. Further studies based on numerical integrations, including two-dimensional linear analysis and direct three-dimensional nonlinear simulation, show a satisfactory quantitative agreement between the three asymptotic expressions and the fuller numerics for small and moderate Reynolds numbers at an asymptotically small E. The transition from two-dimensional precessing flow to three-dimensional small-scale turbulence for large Reynolds numbers is also investigated.

Publisher

Cambridge University Press (CUP)

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. On the thermal flow through a porous annular region;Journal of Engineering Mathematics;2024-07-04

2. Precession effects on a liquid planetary core;Research in Astronomy and Astrophysics;2018-02

3. Theory and Modeling of Rotating Fluids;CAMB MG MEC;2017

4. Experimental study of fluid flows in a precessing cylindrical annulus;Physics of Fluids;2014-04

5. On the completeness of inertial wave modes in rotating annular channels;Geophysical & Astrophysical Fluid Dynamics;2013-09-11

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