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Numerical model for dynamic installation of large diameter monopiles

机译:大直径单桩动态安装数值模型

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This paper presents the numerical code VibPile for simulation of the nonlinear dynamic response of large monopiles under harmonic loading and installation by vibration or impact driving. VibPile is based on a nonlinear FE model of the pile-soil interaction along the shaft and the tip by elasto-plastic springs representing the near field and elasto-dynamic elements (spring and dashpot) for the far field. While for the shaft friction and tip resistance the classical engineering solutions, such as those by standards or guidelines (e.g. API) and literature, are used in the numerical simulations, new computational models are developed for the dynamic response of the soil inside the pile and the far-field elasto-dynamic springs. What primarily differentiates the present model from the existing ones is the treatment of the soil inside the monopile together with the stiffness at the pile tip. Most existing models are based on the solutions for piles with solid sections or pipe piles in which the soil inside the pile follows the pile vibrations like a solid section. For large diameter monopiles commonly used for offshore wind turbines, both the soil response inside the pile and the stiffness of the pile tip are different. The developed model is verified against the vibro-pile test data collected at Altenwalde, Germany. The results include axial pile strains, accelerations, and shear stresses along the pile shaft and at the pile tip. Both the strains and accelerations as well as the rate of pile driving measured at Altenwalde are reproduced by VibPile with reasonable accuracy. Sensitivity analyses are presented to highlight the effects of the shear wave velocity and shear strength at the pile-soil interface on the pile driving rate. Moreover, the effect of the natural period of the inner soil on the pile driving is investigated.
机译:本文提出了振动或冲击驱动下大型单桩在谐波荷载和安装下非线性动力响应的数值规范振动桩。VibPile 基于非线性有限元模型,该模型通过代表近场的弹塑性弹簧和代表远场的弹塑性弹簧和沿竖井和尖端的桩-土相互作用的非线性有限元模型。在数值模拟中使用了经典的工程解决方案,例如标准或指南(例如API)和文献中的解决方案,同时为桩内土体和远场弹性动力弹簧的动力响应开发了新的计算模型。现有模型与现有模型的主要区别在于单桩内部的土壤处理以及桩尖的刚度。大多数现有模型都基于实心截面桩或管桩的解决方案,其中桩内的土壤像实心截面一样跟随桩振动。对于海上风力发电机组常用的大直径单桩,桩内土体响应和桩尖刚度均不同。所开发的模型与在德国Altenwalde收集的振动桩测试数据进行了验证。结果包括沿桩轴和桩尖的轴向桩应变、加速度和剪应力。VibPile 以合理的精度再现了在 Altenwalde 测量的应变和加速度以及打桩速率。通过敏感性分析,突出了桩-土界面处的剪切波速度和抗剪强度对打桩速率的影响。此外,还研究了内土自然周期对打桩的影响。

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