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首页> 外文期刊>Journal of Fluid Mechanics >Velocity profiles, flow structures and scalings in a wide-gap turbulent Taylor-Couette flow
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Velocity profiles, flow structures and scalings in a wide-gap turbulent Taylor-Couette flow

机译:速度型材,流动结构和宽隙湍流泰勒 - 汤流量的缩放

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摘要

Fully turbulent Taylor-Couette flow between independently rotating cylinders is investigated experimentally in a wide-gap configuration (eta = 0.5) around the maximum transport of angular momentum. In that regime turbulent Taylor vortices are present inside the gap, leading to a pronounced axial dependence of the flow. To account for this dependence, we measure the radial and azimuthal velocity components in horizontal planes at different cylinder heights using particle image velocimetry. The ratio of angular velocities of the cylinder walls mu, where the torque maximum appears, is located in the low counter-rotating regime (mu(max) (eta - 0.5) = - 0.2). This point coincides with the smallest radial gradient of angular velocity in the bulk and the detachment of the neutral surface from the outer cylinder wall, where the azimuthal velocity component vanishes. The structure of the flow is further revealed by decomposing the flow field into its large-scale and turbulent contributions. Applying this decomposition to the kinetic energy, we can analyse the formation process of the turbulent Taylor vortices in more detail. Starting at pure inner cylinder rotation, the vortices are formed and strengthened until mu = 0.2 quite continuously, while they break down rapidly for higher counter-rotation. The same picture is shown by the decomposed Nusselt number, and the range of rotation ratios, where turbulent Taylor vortices can exist, shrinks strongly in comparison to investigations at much lower shear Reynolds numbers. Moreover, we analyse the scaling of the Nusselt number and the wind Reynolds number with the shear Reynolds number, finding a communal transition at approximately Re-S approximate to 10(5) from classical to ultimate turbulence with a transitional regime lasting at least up to Re-S >= 2 x 10(5). Including the axial dispersion of the flow into the calculation of the wind amplitude, we can also investigate the wind Reynolds number as a function of the rotation ratio mu, finding a maximum in the low counter-rotating regime slightly larger than mu(max). Based on our study it becomes clear that the investigation of counter-rotating Taylor-Couette flows strongly requires an axial exploration of the flow.
机译:在最大角动量的最大传输周围实验地研究独立旋转圆柱体之间的完全湍流泰勒槽流动。在这种政权湍流泰勒涡旋存在于间隙内,导致流动的发音轴向依赖性。要考虑这种依赖性,我们使用粒子图像VENECIMETRY测量在不同的汽缸高度处的水平平面中的径向和方位角速度分量。出现扭矩最大值的圆柱壁的角速度与扭矩最大值的比率位于低反向旋转状态(mu(mu(mu)(Eta-0.5)= -0.2)中。这一点与大块角度速度的最小径向梯度与外筒壁的中性表面分离,其中方位角速度分量消失。通过将流场分解成其大规模和湍流贡献,进一步揭示了流动的结构。将这种分解应用于动能,我们可以更详细地分析湍流泰勒涡流的形成过程。从纯内筒旋转开始,形成涡流并加强,直到mu = 0.2完全连续,同时它们迅速分解以进行更高的反旋转。同样的图像由分解的营养数表示,并且旋转比率范围,其中湍流泰勒涡流可以存在,相比之下,与低得多的剪切雷诺数进行调查相比,强烈缩小。此外,我们用剪切雷诺数分析篮区纽约州的缩放和风雷诺数,在大致Re-s的近似到10(5)到从经典到最终湍流,过渡制度至少持续到Re-s> = 2 x 10(5)。包括流量进入风幅的计算的轴向分散,我们还可以研究风雷诺数作为旋转比mu的函数,在低反向旋转状态下略大于mu(max)的最大值。基于我们的研究,清楚的是,反向旋转泰勒 - 汤煤沟的调查强烈需要轴向勘探。

著录项

  • 来源
    《Journal of Fluid Mechanics》 |2017年第2017期|共28页
  • 作者单位

    Brandenburg Univ Technol Cottbus Senftenberg Dept Aerodynam &

    Fluid Mech Siemens Halske Ring 14 D-03046 Cottbus Germany;

    Brandenburg Univ Technol Cottbus Senftenberg Dept Aerodynam &

    Fluid Mech Siemens Halske Ring 14 D-03046 Cottbus Germany;

    Brandenburg Univ Technol Cottbus Senftenberg Dept Aerodynam &

    Fluid Mech Siemens Halske Ring 14 D-03046 Cottbus Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

    rotating turbulence; Taylor-Couette flow; turbulent flows;

    机译:旋转湍流;泰勒汤流;湍流;

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