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A distributed scheme for secondary frequency control with stability guarantees and optimal power allocation

机译:具有稳定性保证和最佳功率分配的二次频率控制的分布式方案

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摘要

We consider the problem of distributed secondary frequency regulation in power networks such that stability and an optimal power allocation are guaranteed. This is a problem that has been widely studied in the literature, where two main control schemes have been proposed, usually referred to as 'Primal-Dual' and 'distributed averaging proportional-integral (DAPI)' respectively. However, each has its limitations, with the former incorporating additional information flow requirements which may limit its applicability, and with the existing literature on the latter relying on static models for generation and demand, which is restrictive. We propose a novel control scheme that aims to overcome these issues by making use of generation measurements in the control policy. In particular, our controller relies on practical measurements and allows distributed stability and optimality guarantees to be deduced for a broad range of linear generation dynamics, that can be of higher order. We show how the controller parameters can be selected in a computationally efficient way by solving appropriate linear matrix inequalities (LMIs). Furthermore, we demonstrate how the proposed analysis applies to various examples of turbine governor dynamics by using realistic numerical data. The practicality of our analysis is demonstrated with numerical simulations on the Northeast Power Coordinating Council (NPCC) 140-bus system that verify that our proposed controller achieves convergence to the nominal frequency, an economically optimal power allocation, and improved performance compared to existing schemes used in the literature. (C) 2020 Elsevier B.V. All rights reserved.
机译:我们考虑在电网中的分布式二次调频的问题,从而保证了稳定性和最优功率分配。这是文献中广泛研究的一个问题,其中提出了两种主要控制方案,通常分别称为“原始-对偶”和“分布式平均比例积分(DAPI)”。然而,每种方法都有其局限性,前者包含额外的信息流要求,这可能会限制其适用性,而关于后者的现有文献依赖于发电和需求的静态模型,这是有限制的。我们提出了一种新的控制方案,旨在通过在控制策略中使用发电测量来克服这些问题。特别是,我们的控制器依赖于实际测量值,并允许对大范围的线性发电动态(可能是高阶)推导分布式稳定性和最优性保证。我们展示了如何通过求解适当的线性矩阵不等式(LMI)以计算高效的方式选择控制器参数。此外,我们还通过使用真实的数值数据,演示了所提出的分析如何应用于涡轮调速器动力学的各种示例。通过对东北电力协调委员会(NPCC)140总线系统的数值模拟,证明了我们分析的实用性。与文献中使用的现有方案相比,我们提出的控制器实现了收敛到标称频率、经济最优的功率分配和改进的性能。(C) 2020爱思唯尔B.V.版权所有。

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