1. 上海理工大学能源与动力工程学院
2. 上海市动力工程多相流动与传热重点实验室
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牛凯伦, 闫阳天, 李春, 等. 地震诱导紧急停机状态下近海风力机动力特性研究[J]. 机械强度, 2023,(2):438-446.
NIU KaiLun, YAN YangTian, LI Chun, et al. RESEARCH ON THE DYNAMIC CHARACTERISTICS OF OFFSHORE WIND TURBINES UNDER SEISMIC INDUCED EMERGENCY SHUTDOWN (MT)[J]. Journal of Mechanical Strength , 2023,(2):438-446.
牛凯伦, 闫阳天, 李春, 等. 地震诱导紧急停机状态下近海风力机动力特性研究[J]. 机械强度, 2023,(2):438-446. DOI: 10.16579/j.issn.1001.9669.2023.02.025.
NIU KaiLun, YAN YangTian, LI Chun, et al. RESEARCH ON THE DYNAMIC CHARACTERISTICS OF OFFSHORE WIND TURBINES UNDER SEISMIC INDUCED EMERGENCY SHUTDOWN (MT)[J]. Journal of Mechanical Strength , 2023,(2):438-446. DOI: 10.16579/j.issn.1001.9669.2023.02.025.
为研究超大型单桩式近海风力机在紧急停机状态下的动力学特性,以DTU 10 MW单桩式近海风力机为研究对象,建立风浪相关的湍流风-波浪-地震载荷多物理场模型,通过p-y曲线法、Q-z曲线法及Winkler模型构建土-构耦合模型,对比研究其在正常运行、停机及紧急停机状态下的动力学特性。结果表明,风力机在停机状态下受地震载荷影响最大,较未发生地震,其塔顶前后向及侧向位移极差分别增加249.22%及1 869.14%,支撑结构剪应力峰值增加约333.33%。在进行紧急停机操作时,由于叶片变桨作用,致使支撑结构剪应力及塔架应变能大于同时刻正常运行状态。紧急停机操作,加大了塔顶位移范围,使塔顶振动中心向湍流风来流方向偏移,同时有效缓解风力机在外部载荷作用下所造成的支撑结构剪切力激增及塔架前后向应变能集聚现象。
In order to study the dynamics of a very large monopile offshore wind turbine under emergency shutdown, the DTU 10 MW monopile offshore wind turbine is used as the research object to establish a turbulent wind-wave-earthquake load multi-physics field model with wind and wave correlation and construction of soil-structure coupling model by p-y curve method, Q-z curve method and Winkler model. The dynamics of the wind turbine under normal operation, shutdown and emergency shutdown were studied. The results show that the wind turbine is most affected by the seismic load under the shutdown condition, and the extreme differences of the forward-backward and lateral displacements of the tower top increase by 249.22% and 1 869.14%, respectively, and the peak shear stress of the support structure increases by 333.33% compared with that without the earthquake. During the emergency shutdown operation, the shear stress of the support structure and the strain energy of the tower were greater than the normal operation at the same time due to the blade pitch effect. The emergency shutdown operation increased the displacement range of the tower top and shifted the vibration center to the direction of turbulent wind flow, and effectively relieved the shear force surge of the support structure and the strain energy gathering in the front and rear of the tower caused by the external load.
紧急停机近海风力机地震载荷风浪相关土-构耦合效应
Emergency shutdownOffshore wind turbineSeismic loadWind and wave relatedSoil-structure coupling effect
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