Numerical investigation on rotation accumulation and natural frequency degradation for offshore wind turbine in clays

IF 4.6 2区 工程技术 Q1 ENGINEERING, CIVIL
Xinglei Cheng , Jianyu Xing , Guosheng Wang , Dechun Lu , Xiuli Du
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引用次数: 0

Abstract

Prolonged lateral cyclic loading leads to soil stiffness degradation around offshore wind turbine (OWT) foundations, which reduces the system's natural frequency and increases the accumulation of foundation rotation angle. Proper evaluation of natural frequency and rotation angle is crucial for the design of OWT foundations. This study develops a two-stages numerical approach to calculate the fundamental frequency of OWT systems considering the foundation stiffness degradation by integrating a stiffness degradation model of soft clays with a simplified three-spring model. Subsequently, it investigates the evolution of accumulated rotation and natural frequency for three foundation types—monopile, monopod bucket, and hybrid monopile-bucket—throughout their service life. It is observed that the hybrid foundation shows the smallest rotation in the first cycle, attributable to its relatively high initial stiffness compared to the other two foundations with the same steel consumption. However, it also exhibits the highest rate of cumulative rotation growth. At the same load level, the monopod bucket foundation exhibits the largest cumulative rotation angle due to its lower bearing capacity, and the degradation of natural frequency is most pronounced for monopod bucket OWT. For all three foundation configurations, increasing either the pile diameter or the bucket diameter is the most effective approach to reduce the cumulative rotation angle and improve natural frequency degradation, while maintaining the same steel consumption. These findings should be considered in the design of OWT foundations.
粘土中海上风力涡轮机旋转累积和固有频率衰减的数值研究
长期的横向循环荷载会导致海上风力涡轮机(OWT)地基周围的土壤刚度下降,从而降低系统的固有频率并增加地基旋转角的累积。正确评估固有频率和旋转角对于海上风力涡轮机地基的设计至关重要。本研究开发了一种两阶段数值方法,通过将软粘土的刚度退化模型与简化的三弹簧模型相结合,计算考虑地基刚度退化的 OWT 系统基频。随后,研究了三种地基类型--单桩地基、单桩斗式地基和单桩斗式混合地基--在整个使用寿命期间的累积旋转和固有频率的演变情况。研究发现,混合地基在第一个周期内的旋转最小,这是因为在相同用钢量的情况下,混合地基的初始刚度比其他两种地基相对较高。不过,混合地基的累计旋转增长率也最高。在相同荷载水平下,单柱斗式地基的累计旋转角度最大,这是因为其承载能力较低,而且单柱斗式 OWT 的固有频率下降最为明显。对于所有三种地基结构,增加桩径或斗径是减少累积旋转角和改善固有频率退化的最有效方法,同时还能保持相同的钢材消耗量。在设计 OWT 地基时应考虑这些发现。
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来源期刊
Ocean Engineering
Ocean Engineering 工程技术-工程:大洋
CiteScore
7.30
自引率
34.00%
发文量
2379
审稿时长
8.1 months
期刊介绍: Ocean Engineering provides a medium for the publication of original research and development work in the field of ocean engineering. Ocean Engineering seeks papers in the following topics.
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