Mode coupling analysis and differential rotation in a flow driven by a precessing cylindrical container

We present a theoretical weakly nonlinear analysis of the dynamics of an inviscid flow submitted to both rotation and precession of an unbounded cylindrical container, by considering the coupling of two Kelvin (inertial) waves. The parametric centrifugal instability known for this system is shown to...

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Published inGeophysical and astrophysical fluid dynamics Vol. 104; no. 4; pp. 369 - 401
Main Authors Lehner, Thierry, Mouhali, Waleed, Leorat, Jacques, Mahalov, Alex
Format Journal Article
LanguageEnglish
Published Abingdon Taylor & Francis Group 01.08.2010
Taylor & Francis Ltd
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Abstract We present a theoretical weakly nonlinear analysis of the dynamics of an inviscid flow submitted to both rotation and precession of an unbounded cylindrical container, by considering the coupling of two Kelvin (inertial) waves. The parametric centrifugal instability known for this system is shown to saturate when one expands the Navier-Stokes equation to higher order in the assumed small precession parameter (ratio of precession to rotation frequencies) with the derivation of two coupled Landau equations suitable to describe the dynamics of the modes. It is shown that an azimuthal mean flow with differential rotation is generated by this modes coupling. The time evolution of the associated dynamical system is studied. These theoretical results can be compared with water experiments and also to some numerical simulations where viscosity and finite length effects cannot be neglected.
AbstractList We present a theoretical weakly nonlinear analysis of the dynamics of an inviscid flow submitted to both rotation and precession of an unbounded cylindrical container, by considering the coupling of two Kelvin (inertial) waves. The parametric centrifugal instability known for this system is shown to saturate when one expands the Navier-Stokes equation to higher order in the assumed small precession parameter (ratio of precession to rotation frequencies) with the derivation of two coupled Landau equations suitable to describe the dynamics of the modes. It is shown that an azimuthal mean flow with differential rotation is generated by this modes coupling. The time evolution of the associated dynamical system is studied. These theoretical results can be compared with water experiments and also to some numerical simulations where viscosity and finite length effects cannot be neglected.
We present a theoretical weakly nonlinear analysis of the dynamics of an inviscid flow submitted to both rotation and precession of an unbounded cylindrical container, by considering the coupling of two Kelvin (inertial) waves. The parametric centrifugal instability known for this system is shown to saturate when one expands the Navier-Stokes equation to higher order in the assumed small precession parameter (ratio of precession to rotation frequencies) with the derivation of two coupled Landau equations suitable to describe the dynamics of the modes. It is shown that an azimuthal mean flow with differential rotation is generated by this modes coupling. The time evolution of the associated dynamical system is studied. These theoretical results can be compared with water experiments and also to some numerical simulations where viscosity and finite length effects cannot be neglected. [PUBLICATION ABSTRACT]
Author Leorat, Jacques
Mouhali, Waleed
Mahalov, Alex
Lehner, Thierry
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  fullname: Mahalov, Alex
  organization: Center for Environmental Fluid Dynamics , Arizona State University Tempe
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Snippet We present a theoretical weakly nonlinear analysis of the dynamics of an inviscid flow submitted to both rotation and precession of an unbounded cylindrical...
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SubjectTerms Differential rotation
Dynamical systems
Fluid dynamics
Fluid mechanics
Hydrodynamics
Joining
Mathematical analysis
Mathematical models
Mode coupling
Navier-Stokes equations
Nonlinear dynamics
Nonlinear systems
Precession
Rotation, Precessing flows
Simulation
Viscosity
Weakly nonlinear analysis
Title Mode coupling analysis and differential rotation in a flow driven by a precessing cylindrical container
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