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Characteristic turbulent structure of a modified drag-reduced surfactant solution flow via dosing water from channel wall

机译:改进的减阻表面活性剂溶液通过从通道壁加入水的流动的湍流结构

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The modification of the near-wall structure is very important for the control of wall turbulence. To ascertain the effect of near-wall modulation on the viscoelastic drag-reduced flow, the modified characteristics of a surfactant solution channel flow were investigated experimentally. The modulation was conducted on the boundary of the channel flow by injecting water from the whole surface of one side of the channel wall. The diffusion process of the injected water was observed by using the planar laser-induced fluorescence technique. The velocity statistics and characteristic structure including the spatial distributions of instantaneous streamwise velocity, swirling strength, and Reynolds shear stress were analyzed based on the velocity vectors acquired in the streamwise wall-normal plane by using the particle imaging velocimetry technique. The results indicated that the disturbance of the injected water was constricted within a finite range very near the dosing wall, and the Reynolds shear stress was increased in this region. However, the eventual drag reduction rate was found to be increased due to a relatively large decrement of viscoelastic shear stress in this near-wall region. Moreover, the flow structure under this modulation presented obvious regional characteristics. In the unstable disturbed region, the mixing of high-speed and low-speed fluids and the motions of ejection and sweep occurred actively. Many clockwise vortex cores were also found to be generated. This characteristic structure was similar to that in the ordinary turbulence of Newtonian fluid. Nevertheless, outside this disturbed region, the structure still maintained the characteristics of the drag-reduced flow with non-Newtonian viscoelastic additives. These results proved that the injected Newtonian fluid associated with the modified stress distribution creates a diverse characteristic structure and subsequent enhanced drag reduction. This investigation can provide the experimental basis for further study of turbulence control. (C) 2015 Elsevier Inc. All rights reserved.
机译:近壁结构的修改对于控制壁湍流非常重要。为了确定近壁调制对粘弹性减阻流的影响,实验研究了表面活性剂溶液通道流的改性特性。通过从通道壁一侧的整个表面注入水,在通道流动的边界上进行调制。使用平面激光诱导荧光技术观察注入水的扩散过程。利用粒子成像测速技术,基于在流壁法线平面上获得的速度矢量,分析了流场瞬时速度,旋流强度和雷诺剪切应力的速度统计和特征结构。结果表明,注入水的扰动被限制在非常靠近计量壁的有限范围内,并且该区域的雷诺剪应力增加了。然而,由于在该近壁区域中粘弹性剪切应力相对较大的减小,发现最终的减阻率增加了。而且,在这种调制下的流动结构呈现出明显的区域特征。在不稳定的扰动区域中,高速和低速流体的混合以及喷射运动和扫掠运动活跃地发生​​。还发现许多顺时针涡旋核。该特征结构类似于牛顿流体的普通湍流中的结构。然而,在该扰动区域之外,该结构仍保持了具有非牛顿粘弹性添加剂的减阻流的特性。这些结果证明,注入的牛顿流体与改变的应力分布相关联,产生了多样化的特征结构并随后增强了减阻效果。该研究可为进一步研究湍流控制提供实验依据。 (C)2015 Elsevier Inc.保留所有权利。

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