Scale Model Investigations on Vibro Pile Driving

P. Stein, Nils Hinzmann, J. Gattermann
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引用次数: 1

Abstract

Monopiles installed by impact driving are the preferred system for the foundation of offshore wind turbines in water depths up to 40 m. The vibration technique as alternative installation method has big advantages regarding piling noise and installation time. Much experience exists for the design and installation of impact driven piles. Within the research project ZykLaMP, the lack of experience concerning vibrated monopiles shall be faced by means of large-scaled model investigations regarding the lateral load-bearing behavior. Therefore, open ended steel pipe piles (L = 2.4 m, Dpile = 0.6 m) are installed into dense sand by means of impact and vibratory pile driving and then subjected to cyclic lateral loading. This paper focusses on pile driving predictions and measurements during the installation process. Pile driving post-predictions were carried out based on a simple force equilibrium approach. Model piles were installed using two different vibro hammers with different eccentric moments and one impact hammer. Measurements of strains and accelerations were carried out to investigate dynamic movements during pile driving. Earth pressure transducers were used to investigate the development of soil stresses due to the installation process. Measurements show that even at high acceleration amplitudes a refusal to vibratory driving may occur at a certain penetration depth. Soil stresses in the vicinity of the pile decrease to about 50 % due to vibratory driving which is one reason for the friction fatigue phenomenon. Drivability studies using the force equilibrium model give rough predictions about whether or not a pile can be driven to a certain penetration depth but are quite sensitive to input parameters. For the model tests, post-predictions gave reasonable results.
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振动打桩的比例模型研究
通过冲击驱动安装的单桩是水深达40米的海上风力涡轮机基础的首选系统。振动技术作为一种替代的安装方法,在桩噪声和安装时间方面有很大的优势。冲击灌注桩的设计与安装已有很多经验。在ZykLaMP研究项目中,应通过对横向承载行为的大规模模型研究来解决振动单桩缺乏经验的问题。因此,采用冲击和振动打桩的方式将L = 2.4 m, Dpile = 0.6 m的开端钢管桩安装在密砂中,然后进行循环侧向荷载。本文着重介绍了在安装过程中的打桩预测和测量。基于简单的力平衡方法进行了打桩后预测。模型桩采用两种不同偏心弯矩的振动锤和一种冲击锤安装。进行了应变和加速度测量,以研究打桩过程中的动力运动。土压力传感器用于研究安装过程中土体应力的变化。测量表明,即使在高加速度幅值的情况下,在一定的侵彻深度也可能出现振动驱动的拒绝。振动驱动使桩附近土体应力降低50%左右,这是产生摩擦疲劳现象的原因之一。利用力平衡模型进行的可打性研究对桩能否打入一定的贯深给出了粗略的预测,但对输入参数相当敏感。对于模型测试,后预测给出了合理的结果。
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