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3D numerical simulation of flow field with incompletely flaring gate pier in large unit discharge and deep tail water project

机译:大型单位放电和深尾水项目中对不完全辐射门墩流域的三维数值模拟

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Limited by large unit discharge above the overflow weir and deep tail water inside the stilling basin, the incoming flow inside stilling basin is seriously short of enough energy dissipation and outgoing flow still carries much energy with large velocity, bound to result in secondary hydraulic jump outside stilling basin and scour downstream river bed. Based on the RNG k-ε turbulence model and the VOF method, this paper comparatively studies flow field between the conventional flat gate pier program and the incompletely flaring gate pier program to reveal energy dissipation mechanism of incomplete flaring gate pier. Results show that incompletely flaring gate pier can greatly promote the longitudinally stretched water jet to laterally diffuse and collide in the upstream region of stilling basin due to velocity gradients between adjacent inflow from each chamber through shrinking partial overflow flow chamber weir chamber, which would lead to large scale vertical axis vortex from the bottom to the surface and enhance mutual shear turbulence dissipation. This would significantly increase energy dissipation inside stilling basin to reduce outgoing velocity and totally solve the common hydraulic problems in large unit discharge and deep tail water projects.
机译:受到大型单位放电的限制在溢流堰和深尾水中,静脉盆地的进入流量严重短缺,传出流程仍然具有大的能量,速度很大,必须导致次级液压跳跃外部静脉盆地和下游河床。基于RNG K-ε湍流模型和VOF方法,本文比较了传统的平板码头程序和不完全辐射栅极墩程序之间的流场,以揭示不完全辐射栅极墩的能量耗散机制。结果表明,由于来自每个腔室之间的速度梯度,通过收缩部分溢流流量室堰室,不完全升高的栅极码头可以极大地促进纵向拉伸水射流,以横向漫射和沿着静脉盆地的上游区域碰撞。大型垂直轴涡旋从底部到表面,增强相互剪切湍流耗散。这将显着提高静脉盆地内部的能量耗散,以降低输出速度,并完全解决大型单位排放和深尾水项目中的常见水力问题。

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