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Accuracy of boundary layer treatments at different Reynolds scales

机译:不同Reynolds尺度的边界层处理的准确性

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Resistive forces associated to boundary layers (‘friction’) are usually out of scale in physical models of hydraulic structures, especially in the case of hydraulically smooth walls, generating distortions in the model results known as scale effects, that can be problematic in some relevant engineering problems. These scale effects can be quantified and corrected using suitable numerical models. In this paper the accuracy of using numerical simulation through the Reynolds Averaged Navier-Stokes (RANS) approximation in order to represent the head losses introduced by friction in hydraulically smooth walls is evaluated for a wide range of Reynolds scales. This is performed by comparing the numerical results for fully developed flow on circular pipes and between parallel plates against experimental results, using the most popular wall treatments. The associated numerical errors, mesh requirements and ranges of application are established for each treatment. It is shown that, when properly applied, RANS models are able to simulate the head losses produced by smooth wall friction accurately enough as to quantify the scale effects present in physical models. A methodology for upscaling physical model results to prototype scale, free of scale effects, is proposed.
机译:与边界层相关的电阻力('摩擦')通常在液压结构的物理模型中不合适,特别是在液体光滑壁的情况下,在型号的模型中产生扭曲,称为比例效应,这在一些相关中可能存在问题工程问题。可以使用合适的数值模型来量化和校正这些比例效果。在本文中,通过雷诺的数值模拟通过reynolds平均的Navier-Stokes(RANS)近似以表示通过液压平滑壁中摩擦引入的头部损耗进行了评估了各种雷诺鳞片。这是通过比较圆形管道上完全发育的流动的数值结果以及使用最受欢迎的壁处理来进行圆形管道上完全发育的流量的数值结果和平行板。为每个治疗建立相关的数值误差,网格要求和应用范围。结果表明,当适当应用时,RAN模型能够精确地模拟光滑壁摩擦力产生的头部损耗,以便量化物理模型中存在的规模效果。提出了一种提升物理模型的方法,从而提出了原型刻度,没有比例效应。

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