Free vibration analysis of large sag catenary with application to catenary jumper

IF 0.7 Q4 ENGINEERING, OCEAN Ocean Systems Engineering-An International Journal Pub Date : 2020-03-01 DOI:10.12989/OSE.2020.10.1.067
Karun Klaycham, Panisara Nguantud, Chainarong Athisakul, S. Chucheepsakul
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Abstract

The main goal of this study is to investigate the free vibration analysis of a large sag catenary with application to the jumper in hybrid riser system. The equation of motion is derived by using the variational method based on the virtual work principle. The finite element method is applied to evaluate the numerical solutions. The large sag catenary is utilized as an initial configuration for vibration analysis. The nonlinearity due to the large sag curvature of static configuration is taken into account in the element stiffness matrix. The natural frequencies of large sag catenary and their corresponding mode shapes are determined by solving the eigenvalue problem. The numerical examples of a large sag catenary jumpers are presented. The influences of bending rigidity and large sag shape on the free vibration behaviors of the catenary jumper are provided. The results indicate that the increase in sag reduces the jumper natural frequencies. The corresponding mode shapes of the jumper with large sag catenary shape are comprised of normal and tangential displacements. The large sag curvature including in the element stiffness matrix increases the natural frequency especially for a case of very large sag shape. Mostly, the mode shapes of jumper are dominated by the normal displacement, however, the tangential displacement significantly occurs around the lowest point of sag. The increase in degree of inclination of the catenary tends to increase the natural frequencies.
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大弧垂悬链线的自由振动分析及其在架线中的应用
本研究的主要目的是研究大弧垂悬链线的自由振动分析,并将其应用于混合立管系统中的跳线。运用基于虚功原理的变分法导出了运动方程。应用有限元方法对数值解进行了评价。大弧垂悬链线被用作振动分析的初始配置。在单元刚度矩阵中考虑了由于静态结构的大弧垂曲率引起的非线性。通过求解特征值问题,确定了大弧垂悬链线的固有频率及其相应的振型。给出了一个大弧垂悬链线跳线的数值算例。给出了弯曲刚度和大弧垂形状对接触网跳线自由振动特性的影响。结果表明,弧垂的增加降低了跳线的固有频率。具有大弧垂悬链线形状的跳线的相应振型包括法向位移和切向位移。包括在单元刚度矩阵中的大弧垂曲率增加了固有频率,尤其是在弧垂形状非常大的情况下。跳线的振型大多以法向位移为主,切向位移主要发生在弧垂最低点附近。悬链线倾斜度的增加往往会增加固有频率。
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期刊介绍: The OCEAN SYSTEMS ENGINEERING focuses on the new research and development efforts to advance the understanding of sciences and technologies in ocean systems engineering. The main subject of the journal is the multi-disciplinary engineering of ocean systems. Areas covered by the journal include; * Undersea technologies: AUVs, submersible robot, manned/unmanned submersibles, remotely operated underwater vehicle, sensors, instrumentation, measurement, and ocean observing systems; * Ocean systems technologies: ocean structures and structural systems, design and production, ocean process and plant, fatigue, fracture, reliability and risk analysis, dynamics of ocean structure system, probabilistic dynamics analysis, fluid-structure interaction, ship motion and mooring system, and port engineering; * Ocean hydrodynamics and ocean renewable energy, wave mechanics, buoyancy and stability, sloshing, slamming, and seakeeping; * Multi-physics based engineering analysis, design and testing: underwater explosions and their effects on ocean vehicle systems, equipments, and surface ships, survivability and vulnerability, shock, impact and vibration; * Modeling and simulations; * Underwater acoustics technologies.
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