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首页> 外文期刊>Journal of Fluid Mechanics >On the global nonlinear stability of a near-critical swirling flow in a long finite-length pipe and the path to vortex breakdown
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On the global nonlinear stability of a near-critical swirling flow in a long finite-length pipe and the path to vortex breakdown

机译:长有限长管中近临界旋流的整体非线性稳定性和涡旋破坏的路径

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摘要

The dynamics of a perturbed incompressible, inviscid, axisymmetric, near-critical swirling flow in a long, finite-length, straight, circular pipe is studied through a weakly nonlinear analysis. The flow is subjected to non-periodic inlet and outlet conditions. The long-wave approach involves a rescaling of the axial distance and time. It results in a separation of the perturbation's structure into a critical standing wave in the radial direction and an evolving wave in the axial direction, that is described by a nonlinear model problem. The approach is first validated by establishing the bifurcation of non-columnar states from the critical swirl and the linear stability modes of these states. Examples of the flow dynamics at various near-critical swirl levels in response to different initial perturbations demonstrate the important role of the nonlinear steepening terms in perturbation dynamics. The computed dynamics shows quantitative agreement with results from numerical simulations that are based on the axisymmetric Euler equations for various swirl levels and as long as perturbations are small, thereby verifying the accuracy of each computation and capturing the essence of flow dynamics. Results demonstrate the various stages of the flow dynamics, specifically during the transition to vortex breakdown states. They reveal the evolution of faster-than-exponential and shape-changing modes as perturbations grow into the vortex breakdown process. These explosive modes provide the sudden and abrupt nature of the vortex breakdown phenomenon. Further analysis of the model problem shows the important role of the nonlinear evolution of perturbations and its relevance to the transfer of the perturbation's kinetic energy between the boundaries and flow bulk, the evolution of perturbations in practical concentrated vortex flows, and the design of control methods of vortex flows. A robust feedback control method to stabilize a solid-body rotation flow in a pipe at a wide range of swirl levels above critical is developed. The applicability of this method to stabilizing medium and small core-size vortices is also discussed.
机译:通过微弱的非线性分析,研究了在有限长的直圆形管中扰动的不可压缩,无粘性,轴对称,近临界旋流的动力学。流动受到非周期性的入口和出口条件的影响。长波方法涉及重新调整轴向距离和时间。它将扰动的结构分解为径向上的临界驻波和轴向上的演化波,这由非线性模型问题描述。首先通过根据临界涡旋和这些状态的线性稳定性模式建立非列状态的分叉来验证该方法。响应于不同的初始扰动而在各种接近临界涡旋水平的流动动力学的例子证明了非线性变陡项在扰动动力学中的重要作用。计算得出的动力学结果与基于数值模拟的结果的定量一致性,数值结果基于轴对称欧拉方程,适用于各种旋涡,并且扰动很小,从而验证了每种计算的准确性并掌握了流动动力学的本质。结果证明了流体动力学的各个阶段,特别是在向涡流破裂状态过渡期间。它们揭示了随着扰动发展到涡旋破坏过程中,速度快于指数和形状改变的模式的演变。这些爆炸模式提供了涡旋破坏现象的突然和突然性质。对模型问题的进一步分析显示了扰动的非线性演化的重要作用及其与边界和流体积之间的扰动动能的传递,实际集中涡流中扰动的演化以及控制方法的设计涡流。开发了一种鲁棒的反馈控制方法,该方法可在高于临界值的大范围旋流水平下稳定管道中的固体旋转流。还讨论了该方法对稳定中小型核心尺寸涡旋的适用性。

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