Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved Ducts

<p>A numerical study is made on the fully developed bifurcation structure and stability of the mixed convection in rotating curved ducts of square cross-section with the emphasis on the effect of buoyancy force. The rotation can be positive or negative. The fluid can be heated or cooled. The s...

Full description

Bibliographic Details
Main Authors: Wang Liqiu, Yang Tianliang
Format: Article
Language:English
Published: Hindawi Limited 2005-01-01
Series:International Journal of Rotating Machinery
Online Access:http://www.hindawi.net/access/get.aspx?journal=ijrm&volume=2005&pii=S1023621X02505030
id doaj-4059a881aa3544f3a423a98afd5b879a
record_format Article
spelling doaj-4059a881aa3544f3a423a98afd5b879a2020-11-24T21:04:11ZengHindawi LimitedInternational Journal of Rotating Machinery1023-621X2005-01-0120052168178Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved DuctsWang LiqiuYang Tianliang<p>A numerical study is made on the fully developed bifurcation structure and stability of the mixed convection in rotating curved ducts of square cross-section with the emphasis on the effect of buoyancy force. The rotation can be positive or negative. The fluid can be heated or cooled. The study reveals the rich solution and flow structures and complicated stability features. One symmetric and two symmetric/asymmetric solution branches are found with seventy five limit points and fourteen bifurcation points. The flows on these branches can be symmetric, asymmetric, 2-cell, and up to 14-cell structures. Dynamic responses of the multiple solutions to finite random disturbances are examined by the direct transient computation. It is found that possible physically realizable fully developed flows evolve, as the variation of buoyancy force, from a stable steady multicell state at a large buoyancy force of cooling to the coexistence of three stable steady multicell states, a temporal periodic oscillation state, the coexistence of periodic oscillation and chaotic oscillation, a chaotic temporal oscillation, a subharmonic-bifurcation-driven asymmetric oscillating state, and a stable steady 2-cell state at large buoyancy force of heating.</p> http://www.hindawi.net/access/get.aspx?journal=ijrm&volume=2005&pii=S1023621X02505030
collection DOAJ
language English
format Article
sources DOAJ
author Wang Liqiu
Yang Tianliang
spellingShingle Wang Liqiu
Yang Tianliang
Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved Ducts
International Journal of Rotating Machinery
author_facet Wang Liqiu
Yang Tianliang
author_sort Wang Liqiu
title Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved Ducts
title_short Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved Ducts
title_full Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved Ducts
title_fullStr Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved Ducts
title_full_unstemmed Numerical Simulation of Multiplicity and Stability of Mixed Convection in Rotating Curved Ducts
title_sort numerical simulation of multiplicity and stability of mixed convection in rotating curved ducts
publisher Hindawi Limited
series International Journal of Rotating Machinery
issn 1023-621X
publishDate 2005-01-01
description <p>A numerical study is made on the fully developed bifurcation structure and stability of the mixed convection in rotating curved ducts of square cross-section with the emphasis on the effect of buoyancy force. The rotation can be positive or negative. The fluid can be heated or cooled. The study reveals the rich solution and flow structures and complicated stability features. One symmetric and two symmetric/asymmetric solution branches are found with seventy five limit points and fourteen bifurcation points. The flows on these branches can be symmetric, asymmetric, 2-cell, and up to 14-cell structures. Dynamic responses of the multiple solutions to finite random disturbances are examined by the direct transient computation. It is found that possible physically realizable fully developed flows evolve, as the variation of buoyancy force, from a stable steady multicell state at a large buoyancy force of cooling to the coexistence of three stable steady multicell states, a temporal periodic oscillation state, the coexistence of periodic oscillation and chaotic oscillation, a chaotic temporal oscillation, a subharmonic-bifurcation-driven asymmetric oscillating state, and a stable steady 2-cell state at large buoyancy force of heating.</p>
url http://www.hindawi.net/access/get.aspx?journal=ijrm&volume=2005&pii=S1023621X02505030
work_keys_str_mv AT wangliqiu numericalsimulationofmultiplicityandstabilityofmixedconvectioninrotatingcurvedducts
AT yangtianliang numericalsimulationofmultiplicityandstabilityofmixedconvectioninrotatingcurvedducts
_version_ 1716771674339147776