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Effective soil-stiffness validation: Shaker excitation of an in-situ monopile foundation

机译:有效的土壤刚度验证:原位单桩基础的振动器激发

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In an attempt to decrease the modelling uncertainty associated with the soil-structure interaction of large-diameter monopile foundations, a hydraulic shaker was used to excite a real-sized, in-situ monopile foundation in stiff, sandy soil in a near-shore wind farm. The response in terms of natural frequency and damping of a pile-only system is significantly more influenced by the soil than a full offshore wind turbine structure, and therefore ensures a higher degree of certainty regarding the assessment of the soil reaction. Steady-state vibration amplitudes with frequencies between 1 and 9 Hz were retrieved from strain gauges vertically spaced along the embedded pile, and accelerometers attached to the top of the pile and to the shaker. The measured response is used to validate an effective 1D stiffness method, which is applied as a smart initial guess for a model-based identification of the effective soil-structure interaction properties in terms of stiffness, damping and soil inertia. The performance of the stiffness method is compared to the currently employed p-y stiffness design method. While the effective stiffness method seems to overestimate the actual low-frequency stiffness with about 20%, the p-y method appears to underestimate this stiffness with 140%. The assumption of linear soil behaviour for most of the occurring pile displacements is shown to be acceptable. A damping ratio of 20% (critical) is identified as effective soil damping for the monopile, which is estimated to correspond to a 0.14% damping ratio contribution from the soil for the full structure. The unique measurement setup yielded a 'first-off opportunity to validate a soil-structure interaction model for a rigidly behaving pile. We have shown that indeed such a pile reacts stiffer than predicted by the p-y curve method, and that its response can be modeled more accurately with our recently developed effective stiffness method.
机译:为了减少与大直径单桩基础的土-结构相互作用相关的建模不确定性,使用液压振动器在近岸风中在坚硬的沙质土壤中激发真实尺寸的原位单桩基础农场。相对于完整的海上风力涡轮机结构,仅桩系统的固有频率和阻尼方面的响应受土壤的影响要大得多,因此可以确保对土壤反应的评估具有更高的确定性。从沿嵌入式桩垂直间隔的应变仪中获取频率在1到9 Hz之间的稳态振动振幅,加速度计连接到桩的顶部和振动器。所测得的响应用于验证有效的一维刚度方法,该方法可用作基于刚度,阻尼和土壤惯性的基于模型的有效土-结构相互作用特性基于模型的识别的智能初始猜测。将刚度方法的性能与当前采用的p-y刚度设计方法进行比较。尽管有效刚度​​方法似乎高估了实际的低频刚度约20%,但p-y方法似乎低估了该刚度140%。对于大多数发生的桩位移,线性土壤行为的假设被证明是可以接受的。 20%(临界)的阻尼比被确定为单桩的有效土壤阻尼,估计相当于整个结构对土壤的0.14%阻尼比。独特的测量设置产生了“首次尝试机会”,以验证刚性桩的土-结构相互作用模型。我们已经证明,这种桩的刚度确实比p-y曲线法所预测的刚度大,并且可以使用我们最近开发的有效刚度法更准确地模拟其响应。

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