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Transient drag coefficients from a freely rising and falling solid sphere at moderate particle Reynolds numbers

机译:在中等粒子雷诺数下自由上升和下降的固体球体的瞬态阻力系数

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We performed numerical experiments on a freely rising and falling sphere in stagnant water for moderate particle Reynolds numbers (130Re(p)1091) using spheres of various diameters and various sphere-water density ratios (0.0016mD(p)0.004m and 0.08p/f1.92). The methodology to carry out the arbitrary Lagrangian-Eulerian (ALE) moving mesh simulation technique was developed using ANSYS CFX (R) CFD software and the results obtained were validated with the experimental results published in the literature. The sphere trajectories, dynamics of sphere movement, and angular velocities play a significant role in transient drag coefficient. We observed that after maintaining a sphere diameter and dimensionless density difference (/f) between water and a sphere at the same level as in the rising and falling sphere, the rising sphere attained terminal velocity faster than the falling sphere. The time required to keep the sphere inside the domain at a fixed distance from the rising and falling sphere decreased with increasing sphere diameter at a given /f.
机译:我们使用各种直径和各种球水密度比(0.0016mD(p)0.004m和0.08p // f1.92)。使用ANSYS CFX(R)CFD软件开发了用于执行任意Lagrangian-Eulerian(ALE)移动网格模拟技术的方法,并使用文献中发表的实验结果验证了所获得的结果。球的轨迹,球的运动动力学和角速度在瞬态阻力系数中起着重要的作用。我们观察到,在水和球体的球直径和无量纲密度差(/ f)保持与上升球和下降球相同的水平之后,上升球的最终速度比下降球快。在给定的/ f下,将球体保持在与上升和下降球体相距固定距离的区域中所需的时间随球体直径的增加而减少。

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