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Fault-tolerant control design to enhance damping of inter-area oscillations in power grids

机译:容错控制设计可增强对电网区域间振荡的阻尼

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摘要

In this paper, passive and active approaches for the design of fault-tolerant controllers (FTCs) are presented. The FTCs are used to improve the damping of inter-area oscillations in a power grid. The effectiveness of using a combination of local and remote (wide area) feedback signals is first demonstrated. The challenge is then to guarantee a minimum level of dynamic performance following a loss of remote signals. The designs are based on regional pole placement using linear matrix inequalities. First, a passive FTC is proposed. It is shown that the computation of the controller reduces to the solution of bilinear matrix inequalities. An iterative procedure is then used to design the controller. Next, as an alternative to active, time-varying controllers, one for each fault scenario, we propose an approach for the design of a 'minimal switching' FTC in which only one controller is designed, but where a simple switch is incorporated into the controller structure. A case study in a linear and nonlinear Nordic equivalent system is presented to show that the closed-loop response using a conventional control design could deteriorate the performance or even destabilize the system if the remote signals are lost and to demonstrate the effectiveness of the proposed FTC designs.
机译:在本文中,提出了用于容错控制器(FTC)设计的被动和主动方法。 FTC用于改善电网中区域间振荡的阻尼。首先展示了结合使用本地和远程(广域)反馈信号的有效性。因此,面临的挑战是在丢失远程信号后确保最低水平的动态性能。设计基于使用线性矩阵不等式的区域极点布置。首先,提出了无源FTC。结果表明,控制器的计算可简化为双线性矩阵不等式的解。然后使用迭代过程来设计控制器。接下来,作为一种主动的,时变的控制器的替代方案,针对每种故障情况,我们提出了一种“最小切换” FTC的设计方法,其中仅设计了一个控制器,但是将简单的开关并入了控制器中。控制器结构。提出了一个在线性和非线性北欧等效系统中的案例研究,以表明使用常规控制设计的闭环响应可能会导致性能下降甚至在失去远程信号的情况下使系统不稳定,并证明拟议FTC的有效性设计。

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