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They represent the ratio of the magnitudes of two types of forces in the outer region, using the Reynolds shear stress gradient (apparent turbulent force) as the reference force: inertia to apparent turbulent forces for the inertial parameter, pressure to apparent turbulent forces for the pressure gradient parameter and apparent turbulent to viscous forces for the Reynolds number. We determine under what conditions they retain their meaning, depending on the outer velocity scale that is considered, with the help of seven boundary layer databases. We find the impressive result that if the Zagarola-Smits velocity is used as the outer velocity scale, the streamwise evolution of the three ratios of forces in the outer region can be accurately followed with these non-dimensional parameters in all these flows — not just the order of magnitude of these ratios. This cannot be achieved with three other outer velocity scales commonly used for pressure gradient turbulent boundary layers. 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引用次数: 0

摘要

我们对湍流边界层方程进行了仔细的无量纲分析,以便在不假设任何自相似行为的情况下,得出具有任意压力梯度的湍流边界层外部区域的一组一致的无量纲参数。这些无量纲参数包括压力梯度参数、雷诺数(不同于常用的雷诺数)和惯性参数。它们是在没有先验地假设外长度和速度尺度的情况下得到的。它们表示外区两种力的大小之比,以雷诺剪切应力梯度(表观湍流力)为参考力:惯性参数为惯性与表观湍流力,压力参数为压力梯度与表观湍流力,雷诺数为表观湍流与粘性力。在七个边界层数据库的帮助下,我们根据所考虑的外速度尺度确定它们在什么条件下保持其意义。我们发现了令人印象深刻的结果,如果使用Zagarola-Smits速度作为外部速度尺度,那么在所有这些流动中,可以精确地遵循外部区域三种力比的流向演变,而不仅仅是这些比率的数量级。这不能用通常用于压力梯度湍流边界层的其他三种外速度尺度来实现。因此,当用Zagarola-Smits速度表示时,这三个新的无维参数可以用于在全局意义上跟踪外区域的流向平均动量平衡的流向演变。该研究为逆压力梯度湍流边界层外区分析提供了一个清晰一致的框架。
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Governing Parameters of Adverse Pressure Gradient Turbulent Boundary Layers
We perform a careful nondimensional analysis of the turbulent boundary layer equations in order to bring out, without assuming any self-similar behaviour, a consistent set of nondimensional parameters characterizing the outer region of turbulent boundary layers with arbitrary pressure gradients. These nondimensional parameters are a pressure gradient parameter, a Reynolds number (different from commonly used ones) and an inertial parameter. They are obtained without assuming a priori the outer length and velocity scales. They represent the ratio of the magnitudes of two types of forces in the outer region, using the Reynolds shear stress gradient (apparent turbulent force) as the reference force: inertia to apparent turbulent forces for the inertial parameter, pressure to apparent turbulent forces for the pressure gradient parameter and apparent turbulent to viscous forces for the Reynolds number. We determine under what conditions they retain their meaning, depending on the outer velocity scale that is considered, with the help of seven boundary layer databases. We find the impressive result that if the Zagarola-Smits velocity is used as the outer velocity scale, the streamwise evolution of the three ratios of forces in the outer region can be accurately followed with these non-dimensional parameters in all these flows — not just the order of magnitude of these ratios. This cannot be achieved with three other outer velocity scales commonly used for pressure gradient turbulent boundary layers. Consequently, the three new nondimensional parameters, when expressed with the Zagarola-Smits velocity, can be used to follow — in a global sense — the streamwise evolution of the stream-wise mean momentum balance in the outer region. This study provides a clear and consistent framework for the analysis of the outer region of adverse-pressure-gradient turbulent boundary layers.
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