基于风力机组机舱振动预测的风电场功率可靠调度研究
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重庆工业职业技术大学电子与物联网工程学院 重庆 401122

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TM315;TN911.7

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2024年度重庆市教育委员会科学技术研究计划项目(KJQN202403221)资助


Research on reliable dispatch of wind farm power based on wind turbine nacellen vibration prediction
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School of Electronics and Internet of Things Engineering, Chongqing Industry Polytechnic University,Chongqing 401120, China

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    摘要:

    传统风电场功率调度实现主要采用偏航控制方式,然而风力发电机组的偏航过程实际执行可否依赖于机组安全状态(机舱振动测量)评估效果,这就导致实际风力发电场功率可靠调度不准确。为此提出了基于风力发电机组机舱振动加速度预测的风电场功率可靠调度方法。首先针对机组偏航过程的机舱振动机理建模困难的问题,利用深度神经网络构建机舱振动加速度模型,然后在预测控制框架下,结合机舱振动加速度预测,提出风力发电场功率可靠调度方法,提升风电场功率安全调度的3%。最后利用Fast.Farm 构建12个风力发电机组的风力发电场,验证所提方法的有效性。

    Abstract:

    The traditional implementation of power scheduling in wind farms mainly adopts yaw control methods. However, whether the yaw process of wind turbine generators can be actually carried out depends on the assessment effect of the safety status of the units (nacelle vibration measurement), which leads to inaccurate reliable power scheduling in actual wind farms. For this purpose, this paper proposes a reliable power scheduling method for wind farms based on the prediction of the vibration acceleration of the nacelle of wind turbine generators. Firstly, aiming at the difficulty in modeling the nacelle vibration mechanism during the yaw process of the unit, a deep neural network is utilized to construct the nacelle vibration acceleration model. Then, under the predictive control framework, combined with the prediction of nacelle vibration acceleration, a reliable power scheduling method for wind farms is proposed to improve the accuracy of power safety scheduling in wind farms by 3%. Finally, a wind farm with 12 wind turbine generators was constructed using Fast.Farm to verify the effectiveness of the method proposed in this paper.

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刘楠.基于风力机组机舱振动预测的风电场功率可靠调度研究[J].电子测量技术,2026,49(10):60-68

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  • 在线发布日期: 2026-08-25
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