风浪作用下弯曲浮桥时域耦合分析

IF 0.7 Q4 ENGINEERING, OCEAN Ocean Systems Engineering-An International Journal Pub Date : 2020-01-01 DOI:10.12989/OSE.2020.10.4.399
Chungkuk Jin, Moo-Hyun Kim, W. Chung, Do-Soo Kwon
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引用次数: 3

摘要

浮桥是一种创新的解决方案,用于深水和长途穿越。本文研究了弯曲浮桥在风、浪、流荷载作用下的动力特性。由于目前的曲线桥不需要系泊线,因此它在深水中的应用比传统的有系泊线的直线浮桥更直接。我们在时域上求解了桥梁梁、浮桥和柱之间的耦合相互作用,并考虑了各种荷载组合来评估每种力对整体动力响应的贡献。离散浮桥均匀间隔,利用基于位势理论的三维衍射/辐射程序在频域计算浮桥的水动力系数和激振力。在连续时域仿真中,采用康明斯方程求解浮桥的动力学,采用梁理论和有限元模型对桥的梁和柱进行建模。然后,对各部件进行全耦合,求解全耦合运动方程。随后,确定了各种弯曲模态的湿固有频率。然后,给出了梁的动力响应时程和谱,并进行了系统的分析。当桥梁侧弯刚度不充分时,二阶差频波浪力和缓变风力会显著影响梁的横向共振响应。另一方面,一阶波频力在竖向响应中起关键作用。
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Time-domain coupled analysis of curved floating bridge under wind and wave excitations
A floating bridge is an innovative solution for deep-water and long-distance crossing. This paper presents a curved floating bridge's dynamic behaviors under the wind, wave, and current loads. Since the present curved bridge need not have mooring lines, its deep-water application can be more straightforward than conventional straight floating bridges with mooring lines. We solve the coupled interaction among the bridge girders, pontoons, and columns in the time-domain and to consider various load combinations to evaluate each force's contribution to overall dynamic responses. Discrete pontoons are uniformly spaced, and the pontoon’s hydrodynamic coefficients and excitation forces are computed in the frequency domain by using the potential-theory-based 3D diffraction/radiation program. In the successive time-domain simulation, the Cummins equation is used for solving the pontoon's dynamics, and the bridge girders and columns are modeled by the beam theory and finite element formulation. Then, all the components are fully coupled to solve the fully-coupled equation of motion. Subsequently, the wet natural frequencies for various bending modes are identified. Then, the time histories and spectra of the girder's dynamic responses are presented and systematically analyzed. The second-order difference-frequency wave force and slowly-varying wind force may significantly affect the girder's lateral responses through resonance if the bridge’s lateral bending stiffness is not sufficient. On the other hand, the first-order wave-frequency forces play a crucial role in the vertical responses.
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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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