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Dynamic analysis of floating wind turbines during pitch actuator fault, grid loss, and shutdown

机译:变桨执行器故障、失网和停机期间浮式风力涡轮机的动态分析

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Coupled non-linear aero-hydro-servo-elastic simulations of three types of floating wind turbines (spar, semi- submersible, and tension leg platform) are carried out for several fault cases over a range of environmental conditions based on correlated wind and wave data from the North Sea. Three particular fault scenarios are considered: 1) blade seize, where the pitch actuator of one blade is blocked, 2) blade seize, recognized by the controller and followed by shutdown (grid disconnection and aerodynamic braking), and 3) grid loss followed by shutdown. The platform motions and structural loads caused by fault events are compared to loads encountered during normal operation and during selected extreme weather conditions. Although the global motions and mooring line loads tend to be largest during storm conditions, selected platforms experience large pitch or yaw motions due to blade seize and shutdown. Imbalance loads due to blade seize can lead to particularly large loads on the blades and tower, and the shutdown process can impose relatively large edgewise blade loads.
机译:基于北海的相关风浪数据,对三种类型的浮式风力涡轮机(spar、半潜式和张力腿平台)在各种环境条件下的几种故障情况进行了非线性气动-液动伺服弹性耦合模拟。考虑了三种特定的故障情况:1)叶片卡住,其中一个叶片的变桨执行器被阻塞;2)叶片卡住,控制器识别,然后停机(电网断开和空气动力制动);3)电网丢失,然后停机。将故障事件引起的平台运动和结构荷载与正常运行和选定极端天气条件下遇到的荷载进行比较。尽管在风暴条件下,整体运动和系泊缆负载往往最大,但由于叶片卡住和关闭,选定的平台会经历较大的俯仰或偏航运动。由于叶片卡住而产生的不平衡负载可能会导致叶片和风塔上的负载特别大,停机过程可能会施加相对较大的边缘叶片负载。

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