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首页> 外文期刊>International Journal of Multiphase Flow >Interface-resolved direct numerical simulation of the erosion of a sediment bed sheared by laminar channel flow
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Interface-resolved direct numerical simulation of the erosion of a sediment bed sheared by laminar channel flow

机译:层流通道剪切作用下沉积物侵蚀的界面解析直接数值模拟

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A numerical method based upon the immersed boundary technique for the fluid-solid coupling and on a soft-sphere approach for solid-solid contact is used to perform direct numerical simulation of the flowinduced motion of a thick bed of spherical particles in a horizontal plane channel. The collision model features a normal force component with a spring and a damper, as well as a damping tangential component, limited by a Coulomb friction law. The standard test case of a single particle colliding perpendicularly with a horizontal wall in a viscous fluid is simulated over a broad range of Stokes numbers, yielding values of the effective restitution coefficient in close agreement with experimental data. The case of bedload particle transport by laminar channel flow is simulated for 24 different parameter values covering a broad range of the Shields number. Comparison of the present results with reference data from the experiment of Aussillous et al. (2013) yields excellent agreement. It is confirmed that the particle flow rate varies with the third power of the Shields number once the known threshold value is exceeded. The present data suggests that the thickness of the mobile particle layer (normalized with the height of the clear fluid region) increases with the square of the normalized fluid flow rate.
机译:使用基于浸入边界技术进行流固耦合和基于软球方法进行固固接触的数值方法,对水平面通道中厚球形颗粒床的流致运动进行直接数值模拟。 。碰撞模型的特征是具有弹簧和减震器的法向力分量以及受库仑摩擦定律限制的减震切向分量。在广泛的斯托克斯数范围内模拟了单个粒子与粘性流体中的水平壁垂直碰撞的标准测试情况,得出的有效恢复系数值与实验数据非常吻合。针对24个不同的参数值(通过广泛的Shields数范围),模拟了通过层状通道流进行的床荷颗粒运输的情况。本结果与Aussillous等人实验的参考数据的比较。 (2013年)得出了极好的协议。可以确定的是,一旦超过已知阈值,颗粒流速就会随Shields数的三次方变化。当前数据表明,可移动颗粒层的厚度(根据透明流体区域的高度进行归一化)随归一化流体流速的平方而增加。

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