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首页> 外文期刊>Experiments in Fluids: Experimental Methods and Their Applications to Fluid Flow >Modification of near-wall turbulence sturcture in a shear-driven three-dimensional turbulent boundary layer
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Modification of near-wall turbulence sturcture in a shear-driven three-dimensional turbulent boundary layer

机译:剪切驱动三维湍流边界层中近壁湍流结构的修正

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Most high Reynolds number flows of engineering interest are three-dimensional in nature. Key features of three-dimensional turbulent boundary layers (3DTBLs) include: non-colateral shear stress and strain rate vectors, and decreasing ratio of the shear stresses to the turbulent kinetic energy with increasing three-dimensionality. These are indicators that the skewing has a significant effect on the structure of turbulence. In order to further investigate the flow physics and turbulence structure of these complex flows, an innovative method for generating a planar shear-driven 3DTBL was developed. A specialized facility incorporating a relatively simple geometry and allowing for varying strengths of cross-flow was constructed to facilitate studies where the skewing is decoupled from the confounding effects of streamwise pressure gradient and curvature. On-line planar particle image velocimetry (PIV) measurements and flow visualization results indicate that the experimental configuration generates the desired complex flow, which exhibits typical characteristics associated with 3DTBLs. Furthermore, spanwise shear results in modification of the near-wall turbulence structure. Analysis of near-wall flow visualization photographs revealed a reduction of mean streak length with increasing spanwise shear, while streak spacing remained relatively constant. In the most strongly sheared case, where the belt velocity is twice that of the freestream velocity, the mean streak length was reduced by approximately 50%.
机译:大多数具有工程学意义的高雷诺数流本质上都是三维的。三维湍流边界层(3DTBLs)的关键特征包括:非侧向剪切应力和应变率矢量,以及随着三维尺寸的增加,剪切应力与湍流动能之比减小。这些是偏斜对湍流结构有重要影响的指标。为了进一步研究这些复杂流的流动物理和湍流结构,开发了一种产生平面剪切驱动的3DTBL的创新方法。建造了一个专门的机构,该机构结合了相对简单的几何形状并允许不同的错流强度,以方便进行研究,其中将偏斜与流向压力梯度和曲率的混杂影响分开。在线平面粒子图像测速(PIV)测量和流动可视化结果表明,实验配置可生成所需的复杂流动,该流动具有与3DTBL相关的典型特征。此外,翼展方向的剪切导致近壁湍流结构的改变。对近壁流动可视化照片的分析表明,随着翼展方向剪力的增加,平均条纹长度会减小,而条纹间距则保持相对恒定。在最强烈剪切的情况下,皮带速度是自由流速度的两倍,平均条纹长度减少了大约50%。

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