Influence of surface roughness on vibration response characteristics of flexible structures on offshore floating platforms

Zecheng Jiang , Guanghua He , Hassan Ghassemi , Hangwei Zhang
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Abstract

The expanding interest in floating offshore renewable energy technologies, including floating wind turbines and solar platforms, is attributed to their multifarious benefits. One pivotal factor influencing the power generation efficiency of these technologies is the vibration response of the flexible structures connected to the platforms, such as mooring systems, dynamic power cables, and flexible pipelines. In this research, a numerical investigation is conducted on the response characteristics of vortex-induced vibration (VIV) of cylinders with varying surface roughness in oscillatory flow. The unsteady Reynolds-averaged Navier-Stokes (URANS) equations and dynamic equation are used for fluid-structure interaction. The results reveal that for rough cylinders, multiple frequencies are involved in the vibration. For most simulated cases, the vibration frequency in the cross-flow (CF) direction is an integer multiple of the frequency of the oscillatory flow and associated with the quantity of shedding vortex pairs during a single period of the oscillatory flow. For rough cylinders, the CF vibration frequency differs by one from the number of shedding vortex pairs within one period of the oscillatory flow. With the increase of surface roughness, the maximum vibration amplitude shows an increasing trend (12%), then a decreasing trend (21%). Furthermore, the vortex shedding flow pattern presents C + S mode or S mode. This study offers valuable insights for analyzing the vibration response characteristics of authentic flexible structures.

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表面粗糙度对海上浮式平台柔性结构振动响应特性的影响
浮式海上可再生能源技术(包括浮式风力涡轮机和太阳能平台)之所以受到越来越多的关注,是因为它们具有多种优势。影响这些技术发电效率的一个关键因素是与平台相连的柔性结构(如系泊系统、动态电力电缆和柔性管道)的振动响应。本研究对振荡流中具有不同表面粗糙度的圆柱体的涡流诱导振动(VIV)响应特性进行了数值研究。流固耦合采用了雷诺平均纳维-斯托克斯(URANS)非稳态方程和动力学方程。结果表明,粗糙圆柱体的振动涉及多个频率。在大多数模拟情况下,横流(CF)方向的振动频率是振荡流频率的整数倍,与振荡流单个周期内脱落涡对的数量有关。对于粗糙的圆柱体,CF 振动频率与振荡流一个周期内脱落涡旋对的数量相差 1。随着表面粗糙度的增加,最大振幅呈先增加(12%)后减小(21%)的趋势。此外,涡流脱落的流动模式呈现 C + S 模式或 S 模式。这项研究为分析真实柔性结构的振动响应特性提供了有价值的见解。
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