基于多体系统传递矩阵法和振动抑制的风力机叶片-塔耦合系统动力学建模

IF 5.5 2区 工程技术 Q1 ENGINEERING, CIVIL Ocean Engineering Pub Date : 2025-05-15 Epub Date: 2025-03-11 DOI:10.1016/j.oceaneng.2025.120821
Dongyang Chen , Xinsheng Zhang , Genjin Dong , Yang Luo , Guang Pan
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引用次数: 0

摘要

风力发电机组是典型的薄壁柱状结构,易受强风影响,产生流固耦合振动。对于以风力机为代表的多刚柔体系统,准确、快速地预测其振动特性具有重要意义。基于多体系统传递矩阵法(MSTMM)建立了风力机叶片-塔架耦合系统的动力学模型。通过与文献的对比,验证了模型的准确性。在此基础上,在模型中加入非线性能量汇(NES),建立具有非线性能量汇的风力机塔架动力学模型。结合风荷载模型对结构尾迹运动进行模拟,利用NES对结构涡激振动进行抑制。结果表明,对于高雷诺数的三维圆柱结构涡激振动,NES比TMD具有更好的抑振效果。在一定范围内,NES的质量比、阻尼比和刚度比越高,其减振效果越显著。当ne质量比为3%,阻尼比为5%时,风力机的抑制效果最好。塔越高,效果越明显,可达20%。刚度比的影响较小。基于MSTMM提出的风力机动力学模型建立过程简单,只需要对各单元的传递矩阵进行组装,同时具有计算精度高、速度快的优点。可为多刚柔体系统和旋转机械系统的动力学建模提供参考。
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Dynamics modeling of wind turbine blade-tower coupled system based on multibody system transfer matrix method and vibration suppression
As a typical thin-walled column structure, wind turbines are susceptible to strong wind, resulting in fluid-structure coupled vibration. For multi-rigid-flexible body systems represented by wind turbines, predicting vibration characteristics accurately and quickly is of great significance. This paper establishes the dynamic model of the wind turbine blade-tower coupled system based on the Multibody System Transfer Matrix Method (MSTMM). The accuracy of the model is verified through comparison with references. On this basis, the Nonlinear Energy Sink (NES) is added to the model to establish the dynamic model of the tower of the wind turbine with NES. By combining the wind load model to simulate the wake motion of the structure, the suppression of vortex-induced vibration of the structure with NES is conducted. The results show that for vortex-induced vibration of three-dimension cylinder structures at high Reynolds numbers, NES has better vibration suppression effects compared to TMD. Within a certain range, the higher the mass ratio, damping ratio, and stiffness ratio of NES, the more significant the vibration suppression effect. When the NES mass ratio is 3%, the damping ratio is 5%, the suppression effect of wind turbine is best. The higher the tower, the more obvious the effect, up to 20%. The stiffness ratio has little influence. The process of establishing the dynamic model of wind turbines proposed based on MSTMM is simple, only requiring the assembly of the transfer matrices of each element, while also having the advantages of high computational accuracy and speed. It can provide reference for the dynamic modeling of multi-rigid-flexible body systems and rotating machinery systems.
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来源期刊
Ocean Engineering
Ocean Engineering 工程技术-工程:大洋
CiteScore
7.30
自引率
34.00%
发文量
2379
审稿时长
8.1 months
期刊介绍: Ocean Engineering provides a medium for the publication of original research and development work in the field of ocean engineering. Ocean Engineering seeks papers in the following topics.
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