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Fatigue assessment of offshore wind turbines on monopile foundations using multi-band modal expansion

机译:基于多频带模态展开的单桩基础海上风力发电机疲劳评估

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Offshore wind turbines (OWTs) are subjected to both quasi-static loads originating from variations in the thrust force and dynamic loads linked to turbulence, waves and turbine dynamics. Both types of loads contribute to fatigue life progression and thus define the turbine's age. As a structural health monitoring solution, one could thus directly measure the stress history at fatigue critical locations. However, for OWTs on monopile foundations some fatigue critical locations are located below the seabed. Installing strain sensors at these hotspots is therefore impossible for existing wind turbines. This measurement restriction is overcome by reconstructing the full-field response of the structure based on the limited number of accelerometers and strain sensors (installed at a few easily accessible locations) and a calibrated finite element model of the system. The system model uses a multi-band modal expansion approach constituted of the quasi-static and dynamic contributions. These contributions are superimposed to reconstruct the stress history at all degrees of freedom of the finite element model, and the subsequent assess fatigue life consumption at all fatigue hot spots of the OWT. In this paper, the proposed virtual sensing technique is validated by predicting the stresses in the transition piece with 12 days of consecutive measurements from an operational OWT. The data set contains both variations in environmental and operating conditions as well as extreme events. Finally, a full-field strain assessment in the tower and foundation system of the OWT is demonstrated. Copyright (C) 2017 John Wiley & Sons, Ltd.
机译:离岸风力涡轮机(OWT)既承受源自推力变化的准静态载荷,又承受与湍流,波浪和涡轮机动力学相关的动态载荷。两种类型的载荷都有助于疲劳寿命的发展,从而确定了涡轮机的寿命。作为一种结构健康监测解决方案,因此可以直接测量疲劳关键位置的应力历史记录。但是,对于单桩基础上的OWT,一些疲劳关键位置位于海床下方。因此,对于现有的风力涡轮机来说,不可能在这些热点处安装应变传感器。通过基于有限数量的加速度计和应变传感器(安装在几个易于访问的位置)和系统的校准有限元模型来重建结构的全场响应,可以克服这种测量限制。系统模型使用由准静态和动态分量构成的多频带模态扩展方法。这些贡献被叠加以重建有限元模型在所有自由度下的应力历史,并随后评估OWT所有疲劳热点处的疲劳寿命消耗。在本文中,通过从运行的OWT连续进行12天的测量来预测过渡件中的应力,从而验证了所提出的虚拟传感技术。数据集包含环境和操作条件以及极端事件的变化。最后,演示了OWT塔架和基础系统中的全场应变评估。版权所有(C)2017 John Wiley&Sons,Ltd.

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