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Dynamic response analysis for submerged floating tunnel with anchor-cables subjected to sudden cable breakage

机译:锚索在电缆突然断裂下的水下浮式隧道的动力响应分析

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Anchor-cables are critical bearing components of the submerged floating tunnel (SFT). As the accidental cable-breakage incident will seriously threaten the public safety, this paper investigates the global dynamic response of a SFT subjected to an abrupt anchor-cable failure by focusing on the post-breakage behavior. Firstly, an approximate theoretical approach is proposed, in which the analysis model of SFT is simplified and the alternate load path method (AP method) is adopted to simulate the cable-breakage process. Then, the differential equations of the SFT tube are established based on the Hamilton principle, and solved through the fourth order Runge-Kutta method. A finite element analysis in ABAQUS is also performed as a verification of the theoretical results, in which the VUSDFLD subroutine and ABAQUS/Aqua is employed to simulate the stiffness loss of the cable and apply the fluid loads respectively. A good agreement exists between the simplified theoretical model and FE simulation. Finally, the effects of some key parameters are discussed, such as the gravity-buoyance ratio and the damping ratio of the SFT, the breakage time and position of the broken cable, etc. The results show that the structural vibration is intensive after the sudden cable breakage. Also, the remaining anchor-cables close to the cable-loss position are most affected by the cable rupture. The change of gravity-buoyance ratio and damping ratio have notable effects on structural deformation. The SFT is most unfavorable when the cable breakage happens at the mid-span or near the two ends of the tunnel. The vibration amplitude attenuates significantly with the increase of the failure time of anchor-cable.
机译:锚索是潜水浮道(SFT)的关键轴承组件。由于意外的电缆断裂事件将严重威胁公共安全,因此本文将重点研究断裂后的行为,从而研究遭受锚索突然断裂的SFT的整体动力响应。首先,提出了一种近似的理论方法,简化了SFT的分析模型,并采用了交替荷载路径法(AP法)来模拟电缆的断裂过程。然后,基于汉密尔顿原理建立了SFT管的微分方程,并通过四阶Runge-Kutta方法求解。还对ABAQUS进行了有限元分析以验证理论结果,其中使用VUSDFLD子例程和ABAQUS / Aqua分别模拟电缆的刚度损失和施加流体载荷。简化的理论模型与有限元仿真之间存在良好的一致性。最后,讨论了SFT的重力浮力比和阻尼比,断裂电缆的断裂时间和位置等关键参数的影响。结果表明,突然发生结构振动是强烈的电缆断裂。另外,靠近电缆丢失位置的其余锚索受电缆断裂的影响最大。重力浮力比和阻尼比的变化对结构变形有显着影响。当电缆断裂发生在隧道的中跨或两端附近时,SFT是最不利的。振动幅度随着锚索失效时间的增加而显着衰减。

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