Wind turbine control design

A. Wright, P. Fleming, A. Scholbrock, K. Johnson, L. Pao, J. Wingerden
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Abstract

In this chapter, the author introduced wind turbine control, discussing sensors and actuators, operating regions, and the operational controller loops. The author then described the different levels of models needed in the controller development process, emphasizing that the models needed for control design are a simplification of the detailed models used in control simulation testing. Scripts used in conjunction with MATLAB are used to synthesize the controller, and detailed models are used for controller simulations. We described the design of the basic operational controller based on simplified models, including the generator torque controller for optimizing energy capture, and the blade pitch controller for regulating turbine speed (or power). The author described how to account for the effects of turbine nonlinearities and actuator dynamics and saturation. We then gave an overview of modern state-space control design methods, which are useful when designing a controller to meet multiple control objectives. The author also described a variety of advanced multivariable control methods. The author gave an overview of the use of advanced sensors (such as lidar sensors for upwind wind-speed measurements) and actuators (outboard blade aerodynamic devices used in "smart" blade technology). The use of individual blade pitch, although not considered an advanced actuator, was also described. The author concluded with some special control issues for offshore floating systems.
风力机控制设计
在本章中,作者介绍了风力发电机的控制,讨论了传感器和执行器、运行区域和运行控制器回路。然后,作者描述了控制器开发过程中需要的不同层次的模型,强调控制设计所需的模型是控制仿真测试中使用的详细模型的简化。结合MATLAB使用脚本对控制器进行综合,并使用详细的模型对控制器进行仿真。我们描述了基于简化模型的基本运行控制器的设计,包括用于优化能量捕获的发电机转矩控制器和用于调节涡轮转速(或功率)的桨距控制器。作者描述了如何考虑涡轮非线性、作动器动力学和饱和的影响。然后,我们概述了现代状态空间控制设计方法,这些方法在设计控制器以满足多个控制目标时非常有用。作者还介绍了各种先进的多变量控制方法。作者概述了先进传感器(如用于逆风风速测量的激光雷达传感器)和致动器(用于“智能”叶片技术的舷外叶片气动装置)的使用情况。使用单独的叶片间距,虽然不被认为是一个先进的执行器,也进行了描述。最后提出了海上浮式系统的一些特殊控制问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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