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首页> 外文期刊>Journal of Fluid Mechanics >Linear and weakly nonlinear analyses of cylindrical Couette flow with axial and radial flows
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Linear and weakly nonlinear analyses of cylindrical Couette flow with axial and radial flows

机译:轴向和径向流动圆柱耦合流动的线性和弱非线性分析

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Extending previous linear stability analyses of the instabilities developing in permeable Taylor-Couette-Poiseuille flows where axial and radial throughflows are superimposed on the usual Taylor-Couette flow, we further examine the linear behaviour and expand the analysis to consider the weakly nonlinear behaviour of convective-type instabilities by means of the derivation of the fifth-order amplitude equation together with direct numerical simulations. Special attention is paid to the influence of the radius ratio eta = r(in)/r(out), and particularly to wide gaps (small eta) and how they magnify the effects of the radial flow. The instabilities take the form of pairs of counter-rotating toroidal vortices superseded by helical ones as the axial flow is increased. Increasing the radial inflow draws these vortices near the inner cylinder, where they shrink relative to the annular gap, when this gap is wide. Strong axial and radial flows in a narrow annular gap lead to a very large azimuthal wavenumber with steeply sloped helical vortices. Strong radial outflow in a wide annular gap results in very large helical vortices. The analytical and numerical saturated vortices match quite well. In addition, radial inflows or outflows can turn the usually supercritical bifurcation from laminar to vortical flow into a subcritical one. The radial flow above which this change occurs decreases as the radius ratio eta decreases. A practical motivation for this weakly nonlinear analysis is found in modelling dynamic filtration devices, which rely on vortical instabilities to reduce the processes of accumulation on their membranes.
机译:延伸以前的线性稳定性分析在透过的泰勒 - 汤 - Poiseuille流动中发育的不稳定性,其中轴向和径向通孔叠加在通常的泰勒 - 汤流量上,我们进一步检查了线性行为并扩大了分析,以考虑对流的弱非线性行为-Type借助于第五阶幅度方程的推导与直接数值模拟。特别注意的是半径比Eta = R(in)/ r(out)的影响,尤其是宽间隙(小eta)以及它们如何放大径向流动的影响。由于轴向流量增加,因此不稳定性采用由螺旋流量取代的反向旋转环形涡流的成对形式。增加径向流入在内筒附近绘制这些涡流,当该间隙宽时,它们相对于环形间隙缩小。在狭窄的环形间隙中强的轴向和径向流动导致具有陡峭倾斜的螺旋涡流的非常大的方位角波数。在宽环形间隙中强大的径向流出导致非常大的螺旋涡流。分析和数值饱和涡旋匹配良好。另外,径向流入或外流可以将通常的超临界分叉从层状转向涡流到亚临界人物中。随着半径比Eta降低,出现该变化的径向流量降低。在模拟动态过滤装置中发现了这种弱非线性分析的实用动力,依赖于涡流不稳定性来减少其膜上积累的过程。

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