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Power extraction efficiency optimization of horizontal-axis wind turbines through optimizing control parameters of yaw control systems using an intelligent method

机译:通过使用智能方法优化偏航控制系统的控制参数来优化水平轴风力发电机的功率提取效率

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To optimize the power extraction from the wind, horizontal-axis wind turbines are normally manipulated by the yaw control system to track the wind direction. How is the potential power extraction efficiency of such wind turbines related to the parameter optimization of a yaw control system? We intend to answer this question in this study. First, we develop two control systems, a direct measurement-based conventional logic control (Control system 1), and a soft measurement-based advanced model predictive control (Control system 2). Then, a multi objective Particle Swarm Optimization-based method is introduced to optimize control parameters and search for the Pareto Front, which represents different potential performance. On this basis, result investigation and analysis are carried out on an electrical yaw system of China Ming Yang 1.5 MW wind turbines based on three wind directions with different variations. Experimental results show that, under a large wind direction variation and with a 14% yaw actuator usage, 0.32% and 0.8% more power extraction efficiency are gained by Control system 1 and 2, respectively, after optimization. The achievable power extraction efficiency for the two yaw control systems goes down when the allowable yaw actuator usage is reduced. For instance, when the yaw actuator usage is 14%, 4.9% and 2%, the efficiency is 97.19%, 96.76% and 96.37% for Control system 1, and is 97.73%, 96.76% and 95.45% for Control system 2, respectively. Therefore, Control system 2 takes precedence over Control system 1 for having higher efficiency when the allowable yaw actuator usage is more than 4.9%. We also find that the potential power extraction efficiency of the two control systems is significantly influenced by the wind direction variation, that is, the optimized efficiency under small wind direction variation is 1.5% higher than that under large wind direction variation. In addition, the parameters of Control system 1 need to be re-optimized according to the wind condition, whereas the ones of Control system 2 may not. Finally, a novel yaw control strategy employing the optimized parameters as the query tables is suggested for the real applications.
机译:为了优化从风力中提取功率,通常使用偏航控制系统来操纵水平轴风力涡轮机,以跟踪风向。这种风力涡轮机的潜在功率提取效率与偏航控制系统的参数优化有何关系?我们打算在这项研究中回答这个问题。首先,我们开发了两个控制系统,一个是基于直接测量的常规逻辑控制(控制系统1),另一个是基于软测量的高级模型预测控制(控制系统2)。然后,引入了一种基于多目标粒子群优化的方法来优化控制参数并搜索代表不同潜在性能的Pareto Front。在此基础上,基于三个变化方向不同的风向,对中国明阳1.5 MW风力发电机组的电动偏航系统进行了研究和分析。实验结果表明,在风向变化较大且偏航执行器使用率为14%的情况下,优化后,控制系统1和2分别获得了0.32%和0.8%的功率提取效率。当减少偏航执行器的允许使用量时,两个偏航控制系统可实现的功率提取效率就会下降。例如,当偏航执行器的使用率为14%,4.9%和2%时,控制系统1的效率为97.19%,96.76%和96.37%,控制系统2的效率分别为97.73%,96.76%和95.45%。 。因此,当偏航致动器的允许使用量大于4.9%时,控制系统2优先于控制系统1以具有更高的效率。我们还发现,两个控制系统的潜在功率提取效率受风向变化的影响很大,也就是说,在小风向变化情况下的优化效率比大风向变化情况下的优化效率高1.5%。此外,控制系统1的参数需要根据风况进行重新优化,而控制系统2的参数则不需要。最后,针对实际应用,提出了一种采用优化参数作为查询表的新型偏航控制策略。

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