Modelling and Control to Mitigate Dynamic Effects of Unbalanced Masses in Wind Turbine Systems

Jishnu Kavil Kambrath, Yoon Changwoo, Youyi Wang, Y. Yoon
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Abstract

Structural disequilibrium in wind power generating system occurs due to a tolerance in manufacturing, installation defects, and also from an extreme torsional stress that may bring an irreversible displacement in the mechanical structure such as hard stop, extreme wind conditions, and grid faults etc. The unbalanced masses in wind turbine excites vibration forces that affect the life expectancy of the mechanical system as well as the performance of the wind turbine. Hence, the exploration of new control solution for the dynamic torque reduction will be necessary to achieve a more reliable wind power generation. In this paper, a 2.5 MW wind turbine experiencing a mechanical unbalance is modelled and its performance is analysed. A new control algorithm based on generator and planetary gear speed differences is proposed for the dynamic torque reduction. The proposed solution provides a virtual material damping in the system and helps to protect the sensitive driveline components. Simulation results, under 3 different operating regions, illustrate the performance of the control in reducing the dynamic torque amplitudes in wind turbines. The proposed algorithm is experimentally verified in an unbalanced multi-inertia test set up operating under critical speed.
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风力发电系统不平衡质量动态影响的建模与控制
风力发电系统的结构不平衡是由于制造上的容差、安装上的缺陷造成的,也可能是由于极端扭转应力造成的机械结构的不可逆位移,如硬停、极端风况、电网故障等。风力机的不平衡质量所产生的激振力不仅影响风力机的性能,而且影响机械系统的寿命。因此,为实现更可靠的风力发电,探索新的动态转矩减小控制方案将是必要的。本文对某2.5 MW风力发电机组进行了机械不平衡建模,并对其性能进行了分析。提出了一种基于发电机和行星齿轮转速差的动态减矩控制算法。提出的解决方案为系统提供了虚拟材料阻尼,有助于保护敏感的传动系统部件。在3种不同工况下的仿真结果说明了该控制方法在减小风力机动态转矩幅值方面的效果。在临界转速下运行的不平衡多惯性试验装置上对该算法进行了实验验证。
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