双铰铰接装载平台的气动特性

IF 0.7 Q4 ENGINEERING, OCEAN
M. M. Zaheer, S. D. Hasan, Nazrul Islam, M. Aslam
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引用次数: 1

摘要

铰接式装载平台(ALP)属于一类被称为柔性的海上结构。ALP运动由于其顺应性行为而具有落在风激励频率范围内的时间周期。本文研究了双铰链ALP在低频风力和随机波浪作用下的动力学行为。在分析中考虑了由可变淹没度、浮动浮力、可变附加质量和水动力引起的非线性效应。随机海况的特征是皮尔逊-莫斯科维茨(P-M)谱。利用Morison方程和Airy线性波理论,忽略衍射效应,计算了平台竖井淹没元件上的波浪力。使用Ochi和Shin海上结构物的风速谱来估计波动风荷载。用Wilson-e方法在时域中求解非线性动力学运动方程。研究了风与结构的相互作用,以及各种其他参数对平台响应的影响。还研究了气动中心(A.C.)与平台上部结构重心(C.G.)偏移的影响。分析结果表明,低频风力在很大程度上影响ALP的响应,否则在只有波浪的情况下,ALP的反应不会增强。平均风将平台浪涌响应的平均位置修改为正侧,从而导致偏移。高海况和中等海况下的各种功率谱密度(PSD)表明,除了出现在两个固有频率的显著峰值外,其他显著峰值也出现在非常低的频率,表明风对响应的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aerodynamic behaviour of double hinged articulated loading platforms
Articulated loading platforms (ALPs) belongs to a class of offshore structures known as compliant. ALP motions have time periods falling in the wind excitation frequency range due to their compliant behaviour. This paper deals with the dynamic behavior of a double hinged ALP subjected to low-frequency wind forces with random waves. Nonlinear effects due to variable submergence, fluctuating buoyancy, variable added mass, and hydrodynamic forces are considered in the analysis. The random sea state is characterized by the Pierson-Moskowitz (P-M) spectrum. The wave forces on the submerged elements of the platform's shaft are calculated using Morison's Equation with Airy's linear wave theory ignoring diffraction effects. The fluctuating wind load has been estimated using Ochi and Shin wind velocity spectrum for offshore structures. The nonlinear dynamic equation of motion is solved in the time domain by the Wilson-e method. The wind-structure interactions, along with the effect of various other parameters on the platform response, are investigated. The effect of offset of aerodynamic center (A.C.) with the center of gravity (C.G.) of platform superstructure has also been investigated. The outcome of the analyses indicates that low-frequency wind forces affect the response of ALP to a large extent, which otherwise is not enhanced in the presence of only waves. The mean wind modifies the mean position of the platform surge response to the positive side, causing an offset. Various power spectral densities (PSDs) under high and moderate sea states show that apart from the significant peak occurring at the two natural frequencies, other prominent peaks also appear at very low frequencies showing the influence of wind on the response.
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来源期刊
自引率
22.20%
发文量
0
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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