Velocity and Volume Fraction Measurements of Granular Flows in a Steep Flume

IF 1 4区 工程技术 Q4 ENGINEERING, ENVIRONMENTAL
L. Sarno, M. Papa, L. Carleo, P. Villani
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引用次数: 0

Abstract

Laboratory experiments on granular flows remain essential tools for gaining insight into several aspects of granular dynamics that are inaccessible from field-scale investigations. Here, we report an experimental campaign on steady dry granular flows in a flume with inclination of 35°. Different flow rates are investigated by adjusting an inflow gate, while various kinematic boundary conditions are observed by varying the basal roughness. The flume is instrumented with high-speed cameras and a no-flicker LED lamp to get reliable particle image velocimetry measurements in terms of both time averages and second-order statistics (i.e., granular temperature). The same measuring instruments are also used to obtain concurrent estimations of the solid volume fraction at the sidewall by employing the stochastic-optical method (SOM). This innovative approach uses a measurable quantity, called two-dimensional volume fraction, which is correlated with the near-wall volume fraction and is obtainable from digital images under controlled illumination conditions. The knowledge of this quantity allows the indirect measurement of the near-wall volume fraction thanks to a stochastic transfer function previously obtained from numerical simulations of distributions of randomly dispersed spheres. The combined measurements of velocity and volume fraction allow a better understanding of the flow dynamics and reveal the superposition of different flow regimes along the flow depth, where frictional and collisional mechanisms exhibit varying relative magnitudes.
陡水槽中颗粒流的速度和体积分数测量
颗粒流动的实验室实验仍然是深入了解颗粒动力学几个方面的重要工具,这些方面是现场调查无法实现的。在这里,我们报告了一个实验运动稳定干颗粒流在水槽倾斜35°。通过调节入流闸门来研究不同的流量,而通过改变基底粗糙度来观察不同的运动边界条件。水槽配备了高速摄像机和无闪烁LED灯,以获得可靠的粒子图像测速测量,包括时间平均值和二阶统计量(即颗粒温度)。采用相同的测量仪器,采用随机光学法(SOM)对侧壁处的固体体积分数进行了同步估计。这种创新的方法使用了一个可测量的量,称为二维体积分数,它与近壁体积分数相关,并且可以在受控照明条件下从数字图像中获得。由于之前从随机分散球体分布的数值模拟中获得了随机传递函数,因此对这个量的了解可以间接测量近壁体积分数。速度和体积分数的组合测量可以更好地理解流动动力学,并揭示沿流动深度不同流动形式的叠加,其中摩擦和碰撞机制表现出不同的相对量级。
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来源期刊
Environmental & Engineering Geoscience
Environmental & Engineering Geoscience 地学-地球科学综合
CiteScore
2.10
自引率
0.00%
发文量
25
审稿时长
>12 weeks
期刊介绍: The Environmental & Engineering Geoscience Journal publishes peer-reviewed manuscripts that address issues relating to the interaction of people with hydrologic and geologic systems. Theoretical and applied contributions are appropriate, and the primary criteria for acceptance are scientific and technical merit.
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