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作 者:牛牧华[1] 陈程[2,3] 李倩 Niu Muhua;Chen Cheng;Li Qian(College of Intelligent Construction,Wuxi Taihu University,Wuxi 214064,China;College of Aerospace Engineering,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,China;School of Intelligent Equipment Engineering,Wuxi Taihu University,Wuxi 214064,China)
机构地区:[1]无锡太湖学院智能建造学院,无锡214064 [2]南京航空航天大学航空学院,南京210016 [3]无锡太湖学院智能装备工程学院,无锡214064
出 处:《太阳能学报》2023年第6期461-468,共8页Acta Energiae Solaris Sinica
基 金:2019年度江苏省高校自然科学研究面上项目(19KJB130008)。
摘 要:为更深入考查叶片刚度对风力机气弹响应的影响,对叶片截面的刚度矩阵中的主对角线刚度系数在稳态风和湍流风况下的风力机气弹响应的影响以及敏感性进行系统研究。气弹模型中的气动模块采用基于叶素动量理论,并采用几何精确梁理论对叶片的结构动力学响应进行仿真。选用美国可再生能源实验室(NREL)5 MW风力机组作为基准模型,调整叶片各截面刚度矩阵的主对角线刚度系数,利用敏感性影响因子评估刚度系数变化对叶片载荷的影响。结果表明:主对角线上挥舞方向的剪切刚度、挥舞弯曲刚度、摆振弯曲刚度、扭转刚度对气弹响应具有中高的敏感性。研究结果对掌握风力机气弹响应规律,发掘更深层次的风力机叶片设计方法提供了一定的指导意义。该方法能进一步扩展至研究叶片刚度对风力机机组气弹响应的敏感性研究。In order to deeply understand the influence of each blade stiffness parameter on the aeroelastic responses of wind turbine,this paper systematically studies the influences and sensitivity of each stiffness parameter in the diagonal of the matrix of the blade sections on the aeroelastic responses of wind turbine under steady and turbulence wind condition.The aerodynamic module in aeroelastic model is calculated based on blade element momentum(theory).The structural dynamic tesponse of the blade is simulated by geometric exact beam theory.The National Renewable Energy Laboratory(NREL)5 MW wind turbine and blade properties are used as standard model in this study,in which the diagonal stiffness coefficients of each blade section are adjusted according to certain principles.The results show that the axial stiffness,the flapping stiffness,the edgewise stiffness and the torsional stiffness in the main diagonal are moderately and highly sensitive to the aeroelastic response.The research results provide certain guiding significance for further mastering the aeroelastic response law of wind turbine and developing blade optimization design method.This method can be further extended to study the sensitivity of blade stiffness to the aeroelastic response of wind turbines.
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