陆上
弗劳德数
地质学
流体体积法
岩滑
山崩
分离涡模拟
湍流
消散
自由面
机械
花花公子
大涡模拟
岩土工程
气象学
流量(数学)
地貌学
地震学
物理
热力学
雷诺平均Navier-Stokes方程
作者
Debashis Basu,Steve Green,Kaushik Das,Ron Janetzke,John Stamatakos
出处
期刊:Volume 4: Ocean Engineering; Ocean Renewable Energy; Ocean Space Utilization, Parts A and B
日期:2009-01-01
卷期号:: 369-382
被引量:10
标识
DOI:10.1115/omae2009-79595
摘要
This paper presents preliminary results of a computational study conducted to analyze the impulse waves generated by the subaerial landslide at Lituya Bay, Alaska. The volume of fluid (VOF) method is used to track the free surface and shoreline movements. The Renormalization Group (RNG) turbulence model and Detached Eddy Simulation (DES) multiscale model were used to simulate turbulence dissipation. The subaerial landslide is simulated using a sliding mass. Results from the two-dimensional (2-D) simulations are compared with results from a scaled-down experiment. The experiment is carried out at a 1:675 scale. In the experimental setup, the subaerial rockslide impact into the Gilbert Inlet, wave generation, propagation, and runup on the headland slope are considered in a geometrically undistorted Froude similarity model. The rockslide is simulated by a granular material driven by a pneumatic acceleration mechanism so that the impact characteristics can be controlled. Simulations are performed for different values of the landslide density to estimate the influence of slide deformation on the generated tsunami characteristics. Simulated results show the complex flow patterns in terms of the velocity field, shoreline evolution, and free surface profiles. The predicted wave runup height is in close agreement with both the observed wave runup height and that obtained from the scaled-down experimental model.
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