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首页> 外文期刊>Experiments in Fluids: Experimental Methods and Their Applications to Fluid Flow >Optical measurements of bottom shear stresses by means of ferrofluids
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Optical measurements of bottom shear stresses by means of ferrofluids

机译:借助于铁磁流体的底部剪切应力的光学测量

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The research is focused on the development and on the assessment of a measurement technique for bottom shear stresses. In particular, the wall-fluid interaction is analyzed adopting ferrofluids and using an optical readout system. The principle of operation of this technique is based on the capability of ferrofluids to react to external magnetic field changing their shape and their viscosity. The proposed magneto-rheological sensor, consisting in a magnetized drop of ferrofluid located at the channel bottom, is exposed to different flow conditions and its deformations are video-recorded. Thanks to the application of image analyses processes, the relation between shear stresses and magneto-rheological sensor deformation is investigated. The assessment of the measuring technique is carried out in the presence of different sandy bottoms and by considering several hydraulic (steady current) conditions. The range of measured bottom shear stress is 0.01-0.20 N/ m 2. Tests carried out with different sandy bottoms characterized by different roughness provide insights about the high sensitivity of the sensor, which is able to detect slight changes in the sandy bottom mixture (less than 10% concentration in volume). Statistical analysis on the ferrofluid deformation shows that the sensor deformation is strictly related to the local hydrodynamics. For higher Re number we observed larger mean displacement in the direction of the flow and bigger oscillations. Power spectral densities of the ferrofluid displacement and of the velocity fluctuations measured at the ferrofluid apex point show how the two signals are characterized by the same slope in log-log graph for intermediate and high frequencies (> 0.2 Hz) representative of small-scale eddies.
机译:该研究专注于开发和底部剪切应力测量技术的评估。特别地,分析了采用铁磁流体并使用光学读出系统进行分析壁流体相互作用。该技术的操作原理基于铁磁流体的能力,以改变其形状及其粘度的外部磁场反应。所提出的磁流变传感器,其在位于通道底部的磁化下降,由不同的流动条件暴露于不同的流动条件,其变形是视频记录的。由于图像分析过程的应用,研究了剪切应力与磁流变传感器变形之间的关系。测量技术的评估在不同的砂质底部的存在下进行,并考虑几种液压(稳定电流)条件。测量的底部剪切应力的范围为0.01-0.20 n / m 2.用不同的砂质底部进行的测试,其特征在于不同的粗糙度,提供了关于传感器的高灵敏度的见解,这能够检测砂质底部混合物的轻微变化(体积小于10%)。对铁磁流体变形的统计分析表明,传感器变形严格与局部流体动力学相关。对于更高的RE编号,我们观察到在流动方向和更大振荡方向上的平均位移。铁磁流体位移的功率谱密度和在Ferrofluid Apex Point测量的速度波动示出了两个信号的特征在于,用于中间和高频(> 0.2Hz)代表小规模漩涡的逻辑和高频率的相同斜率。

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