Coupled Time-Domain Hydro-Elastic Simulation for Submerged Floating Tunnel Under Wave Excitations

Chungkuk Jin, Sung-Jae Kim, Moo-Hyun Kim
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引用次数: 2

Abstract

We develop a fully-coupled time-domain hydro-elasticity model for the Submerged Floating Tunnel (SFT) based on the Discrete-Module-Beam (DMB) method. Frequency-domain simulation based on 3D potential theory results in multibody’s hydrodynamic coefficients and excitation forces for tunnel sections. Subsequently, we build the time-domain model with the multibody Cummins equation and external stiffness matrix from the Euler-Bernoulli and Saint-Venant torsion theories. We establish the mooring line model with rod theory and couple components with translational springs at their respective connection locations. We then compare the dynamic motions, wave forces, and mooring tensions between the present and Morison-equation-based elastic models under regular wave excitations at different submergence depths. The present model is especially important for the shallowly submerged tunnel in which the Morison model shows exaggerated motions, especially at high-frequency range.
波浪作用下沉浮隧道耦合时域水弹模拟
基于离散模梁(DMB)方法,建立了沉浮隧道(SFT)的全耦合时域水弹性模型。基于三维位势理论的频域模拟得到了隧道断面的多体水动力系数和激励力。随后,利用多体康明斯方程和基于欧拉-伯努利和圣维南扭转理论的外刚度矩阵建立了时域模型。利用杆理论建立了系泊线模型,并在各自的连接位置建立了带有平移弹簧的耦合元件。然后,我们比较了当前模型和基于morrison方程的弹性模型在不同淹没深度的规则波激励下的动力运动、波浪力和系泊张力。该模型对浅埋隧道尤其重要,因为在浅埋隧道中,莫里森模型表现出较大的运动,特别是在高频范围。
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