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Extensional channel flow revisited: a dynamical systems perspective

机译:再探延伸通道流:动力学系统的角度

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摘要

Extensional self-similar flows in a channel are explored numerically for arbitrary stretching–shrinking rates of the confining parallel walls. The present analysis embraces time integrations, and continuations of steady and periodic solutions unfolded in the parameter space. Previous studies focused on the analysis of branches of steady solutions for particular stretching–shrinking rates, although recent studies focused also on the dynamical aspects of the problems. We have adopted a dynamical systems perspective, analysing the instabilities and bifurcations the base state undergoes when increasing the Reynolds number. It has been found that the base state becomes unstable for small Reynolds numbers, and a transitional region including complex dynamics takes place at intermediate Reynolds numbers, depending on the wall acceleration values. The base flow instabilities are constitutive parts of different codimension-two bifurcations that control the dynamics in parameter space. For large Reynolds numbers, the restriction to self-similarity results in simple flows with no realistic behaviour, but the flows obtained in the transition region can be a valuable tool for the understanding of the dynamics of realistic Navier–Stokes solutions.
机译:数值研究了通道中的扩展自相似流,以获取封闭平行壁的任意拉伸-收缩率。本分析包含时间积分,以及在参数空间中展开的稳定和周期解的延续。先前的研究集中于对特定拉伸收缩率的稳态解的分支进行分析,尽管最近的研究也集中于问题的动力学方面。我们采用动力学系统的观点,分析了增加雷诺数时基态所经历的不稳定性和分叉。已经发现,对于小的雷诺数,基本状态变得不稳定,并且取决于壁加速度值,在中间的雷诺数处发生包括复杂动力学的过渡区域。基本流不稳定性是控制参数空间动力学的不同余维的两个分叉的本构部分。对于较大的雷诺数,自相似性的限制导致没有实际行为的简单流动,但是在过渡区域中获得的流动可能是了解实际Navier–Stokes解动力学的有价值的工具。

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