Published December 2017 | Version v1
Journal article

Low-Dimensional Analysis and Numerical Simulation of the Incompressible Flow Between Two Concentric Rotating Cylinders

  • 1. Liaoning University of Technology, College of Sciences (China)
  • 2. Liaoning University of Technology (China)

Description

There has been a very large number of experimental and theoretical studies of flow between concentric rotating cylinders in the century, since these pioneering works, the instability of Couette flow and Taylor vortex flow, now known as the "Couette–Taylor problem" is a paradigm of nonlinear problem. In order to explore the transition way of Couette–Taylor flow from laminar to turbulence and the characteristics of chaotic attractors in the turbulent regime of Couette–Taylor flow, dynamical behaviors and numerical simulation of Couette–Taylor flow have been studied by using low-dimensional model analysis method in this paper. Dynamical behaviors of a three-model Lorenz-like system of Couette–Taylor flow have been discussed, such as the stability of equilibrium, presence of limit cycles, occurrence of bifurcation and chaos, as well as the analysis of global stability etc. Moreover, using these results we explain successive transitions of Couette–Taylor flow from Laminar flow to turbulence in the experiment. By means of numerical simulation results of bifurcation diagram, Lyapunov exponent spectrum and Poincare map we analyze complex dynamic behaviors of the system from the bifurcation transition to chaos.

Additional details

Identifiers

Publishing Information

Journal Title
International Journal of Applied and Computational Mathematics
Journal Volume
3
Journal Issue
4
Journal Page Range
p. 3021-3034
ISSN
2349-5103

INIS

Country of Publication
India
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
50016573
Subject category
S97: MATHEMATICAL METHODS AND COMPUTING;
Descriptors DEI
BIFURCATION; CHAOS THEORY; COMPUTERIZED SIMULATION; COUETTE FLOW; DIAGRAMS; EQUILIBRIUM; INCOMPRESSIBLE FLOW; LAMINAR FLOW; LIMIT CYCLE; LYAPUNOV METHOD; NONLINEAR PROBLEMS; TURBULENCE; VORTEX FLOW
Descriptors DEC
ATTRACTORS; CALCULATION METHODS; FLUID FLOW; INFORMATION; MATHEMATICS; SIMULATION; VISCOUS FLOW

Optional Information

Copyright
Copyright (c) 2016 Springer India Pvt. Ltd.