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The Effect of Stress Wave Dispersion on the Drivability Analysis of Large-Diameter Monopiles

机译:应力波分散对大直径单岩旋转性分析的影响

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Due to the increasing need for energy from renewable resources, a large number of offshore wind farms are planned to be constructed in the near future. Despite the plethora of available foundation concepts for offshore wind turbines, the monopile foundation is the most widely adopted concept in practice. To predict the installation process for a monopile a so-called drivability study is performed. Such a study allows one to decide on a number of key parameters for the installation process, such as, the appropriate size of the hydraulic hammer, the number of hammer blows and energy input needed to reach the final penetration depth, and the induced stresses in the system. The latter is important for the prediction of the fatigue life of the pile. Currently, drivability studies are based on one-dimensional wave equation models as first proposed by Smith in the 1950s. These models are valid as long as the diameter of the pile is small compared to the excited wavelengths in the structure due to the hammer impact. For large-diameter monopiles that are currently being used in the offshore wind industry, the latter condition is not met and the effect of stress wave dispersion can no longer be neglected. In this paper the classical wave equation model is amended by an extra term which accounts for the lateral inertia of the cross-section, resulting in the so-called Rayleigh-Love rod theory. With this new model, a parametric study is performed in which the effect of stress wave dispersion on the induced stresses and the number of hammer blows needed to reach the final penetration depth are assessed. A comparison with the results obtained from the classical model is also included in order to define the applicability range of the models. It is shown that the effect of stress wave dispersion can not be neglected for a drivability study of large-diameter monopiles.
机译:由于可再生资源的能源需求日益增加,计划在不久的将来建造大量的海上风电场。尽管近海风力涡轮机的普遍基础概念,但莫丹利基金会是在实践中最广泛采用的概念。为了预测Monopile的安装过程,执行所谓的驾驶性研究。这样的研究允许人们决定用于安装过程的许多关键参数,例如,液压锤的适当尺寸,锤击的数量和能量输入所需的最终穿透深度,以及诱导的应力系统。后者对于预测桩的疲劳寿命非常重要。目前,驾驶性研究基于史密斯在20世纪50年代首次提出的一维波浪方程模型。这些型号有效,只要由于锤击撞击的结构中的兴奋波长相比,桩的直径小。对于目前在海上风力行业使用的大直径单纲,后一种条件不符合后一种条件,并且应忽略应力波分散的效果。在本文中,经典波动方程模型由额外的术语修改,该术语占横截面的横向惯性,导致所谓的瑞利 - 爱杆理论。利用这种新模型,进行了参数研究,其中评估应力波分散对诱导应力的影响和达到最终穿透深度所需的锤击的数量。还包括与从经典模型获得的结果的比较,以便定义模型的适用性范围。结果表明,对于大直径单岩的驱动性研究,不能忽视应力波分散的效果。

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