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EN The wave model of secondary flows and coherent structures in pipes

机译:在管道中的二次流动和相干结构的波模型

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摘要

In this article, a theoretical analysis of the flows arising in the cross sections of fluid and gas flows is performed. Such flows are subdivided into secondary flows and coherent structures. From experimental studies it is known that both types of flows are long-lived large-scale movements (LSM) stretched along the flow. The relative stability of the vortices is traditionally explained by the fact that the viscous friction forces that inhibit the rotation are compensated by the intensification of the swirl when moving slowly rotating peripheral layers to the center of the vortex due to longitudinal tension. An analysis of this mechanism made it possible to develop a relatively simple model of vortex structures in which the viscous friction forces and axial expansion are considered to be infinitesimal. Under these assumptions, one can use the equations of motion of an ideal fluid in the variables “stream function - vorticity”. It is shown that under certain assumptions these equations take the form of a wave equation, and the boundary conditions are the condition that the stream function on the solid walls of the flow equals zero. The obtained solutions of the wave equation describe the following special cases: Goertler’s vortices between rotating cylinders, secondary flows in a pipe with a square cross section, swirling flow in a round pipe, paired vortex after bend of the pipe. The physical sense of more complex solutions of the wave equation has become clear relatively recently. Very similar structures were found in experimental studies using orthogonal decomposition (POD) of a turbulent pulsations field. This may mean that the eigenfunctions in the POD correspond to coherent structures that really arise in the flow. The results obtained confirm the hypothesis that secondary flows and coherent structures have a common nature. The solutions obtained in this paper can be used in processing the experiment as eigenfunctions for the orthogonal decomposition method. In addition, they can be used in direct numerical simulation (DNS) of turbulent flows
机译:在本文中,进行了流体和气流横截面中产生的流动的理论分析。这种流量被细分为二次流动和相干结构。从实验研究来看,已知两种类型的流动是沿着流动拉伸的长寿大规模运动(LSM)。传统上解释了涡流的相对稳定性,即通过纵向张力将缓慢旋转外围层的强化来补偿旋转旋转的粘性摩擦力通过涡旋的强化来补偿。对该机制的分析使得可以开发一种相对简单的涡旋结构模型,其中粘性摩擦力和轴向膨胀被认为是无穷无尽的。在这些假设下,人们可以使用理想流体在变量“流函数 - 涡度”中的运动方程。结果表明,在某些假设下,这些等式采用波动方程的形式,边界条件是流量在流的实心壁上等于零的条件。所获得的波浪方程的解决方案描述了以下特殊情况:Goerller之间的旋转气缸之间的涡流,次级流动在带有方形横截面的管道中,在圆形管道中旋转流动,管道弯曲后的配对涡流。最近的波动方程的更复杂解决方案的物理意义已经清晰。在使用湍流脉动场的正交分解(POD)的实验研究中发现了非常相似的结构。这可能意味着POD中的特征碰撞对应于在流动中真正出现的相干结构。得到的结果证实了二次流动和相干结构具有共同性质的假设。本文获得的溶液可用于处理实验作为正交分解方法的特征函数。此外,它们可用于湍流流动的直接数值模拟(DNS)

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    S. Surkov;

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  • 年度 2020
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  • 正文语种 rus;ukr;eng
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