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Investigation of nonlinear wave-induced seabed response around mono-pile foundation

机译:桩基周围非线性波浪引起的海床响应研究

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摘要

Stability and safety of offshore wind turbines with mono-pile foundations, affected by nonlinear wave effect and dynamic seabed response, are the primary concerns in offshore foundation design. In order to address these problems, the effects of wave nonlinearity on dynamic seabed response in the vicinity of mono-pile foundation is investigated using an integrated model, developed using OpenFOAM, which incorporates both wave model (waves2Foam) and Biot's poro-elastic model. The present model was validated against several laboratory experiments and promising agreements were obtained. Special attention was paid to the systematic analysis of pore water pressure as well as the momentary liquefaction in the proximity of mono-pile induced by nonlinear wave effects. Various embedded depths of mono-pile relevant for practical engineering design were studied in order to attain the insights into nonlinear wave effect around and underneath the mono-pile foundation. By comparing time-series of water surface elevation, inline force, and wave-induced pore water pressure at the front, lateral, and lee side of mono-pile, the distinct nonlinear wave effect on pore water pressure was shown. Simulated results confirmed that the presence of mono-pile foundation in a porous seabed had evident blocking effect on the vertical and horizontal development of pore water pressure. Increasing embedded depth enhances the blockage of vertical pore pressure development and hence results in somewhat reduced momentary liquefaction depth of the soil around the mono-pile foundation.
机译:具有单桩基础的海上风力涡轮机的稳定性和安全性受到非线性波浪效应和动态海床响应的影响,是海上基础设计的主要考虑因素。为了解决这些问题,使用OpenFOAM开发的集成模型研究了波浪非线性对单桩基础附近动态海床响应的影响,该模型结合了波浪模型(waves2Foam)和Biot的孔隙弹性模型。通过几个实验室实验验证了本模型并获得了有希望的协议。特别注意对孔隙水压力以及非线性波浪效应引起的单桩附近瞬时液化的系统分析。研究了与实际工程设计有关的各种单桩埋入深度,以便深入了解单桩基础周围和下方的非线性波浪效应。通过比较单桩正面,侧面和背风面的水面高度,轴向力和波浪引起的孔隙水压力的时间序列,显示了对孔隙水压力的明显非线性波浪效应。模拟结果证实,多孔海床中单桩基础的存在对孔隙水压力的垂直和水平发展具有明显的阻断作用。增大埋入深度会增大垂直孔隙压力的形成,从而导致单桩基础周围土壤的瞬时液化深度有所减小。

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