zhenbo

ISSN 2096-7780 CN 10-1665/P

考虑桩-土相互作用的海上风机单桩基础自振频率演化机制及参数影响研究

Evolution mechanism of natural frequency and parameter sensitivity of offshore wind turbine monopile foundations considering pile-soil interaction

  • 摘要: 我国沿海风电场多位于地震活跃区,地震作用下桩-土相互作用易导致基础刚度退化及自振频率偏移,诱发结构共振与疲劳损伤,精准预测单桩基础的自振频率并评估其抗震性能,对于保障风机的长期运行安全至关重要。本文以海上风机单桩基础为研究对象,采用数值模拟与理论分析相结合的方法,系统开展了自振频率演化机制及参数影响研究;基于Boulanger模型,考虑桩-土相互作用,利用OpenSees建立单桩基础简化数值模型,系统开展了均质砂土与粘土条件下土质参数及桩基参数对长桩与短桩自振频率的敏感性分析,引入“上砂下粘”,“上粘下砂”“上砂中粘下砂”与“上粘中砂下粘”四种分层地基条件,探讨了土层组合顺序对参数敏感性的调控机制。本研究可为海上风机单桩基础在地震区的动力响应预测与抗震设计提供理论依据,对提升风机结构的地震安全性与韧性具有重要参考价值。

     

    Abstract: Many offshore wind farms in China are situated in seismically active regions. Under seismic loading, pile–soil interaction can lead to reduced foundation stiffness and shifts in natural frequencies, which may induce structural resonance and fatigue damage. Accurate prediction of the natural frequencies of monopile foundations and assessment of their structural seismic performance are therefore essential for ensuring the long-term operational safety of wind turbines. This study focuses on monopile foundations for offshore wind turbines. By combining numerical simulation with theoretical analysis, the evolution mechanism of natural frequencies and the influence of various parameters were systematically investigated. Based on the Boulanger foundation model, which accounts for pile–soil interaction, a simplified numerical model of the monopile foundation was developed in OpenSees. A comprehensive sensitivity analysis was conducted to examine the influence of soil and pile parameters on the natural frequencies of both long and short piles in sand and clay. Furthermore, by considering four stratified soil scenarios— “sand over clay”, “clay over sand”, “sand-clay-sand” and “clay-sand-clay”— how the sequence of soil layers affects parameter sensitivity was explored. This study provides a theoretical foundation for predicting the dynamic behavior and guiding the seismic design of monopile foundations for offshore wind turbines in seismic regions, offering valuable insights for improving the seismic safety and resilience of wind turbine structures.

     

/

返回文章
返回