Distributed Optimal Secondary Frequency Control in Power Networks with Delay Independent Stability
Mengmou Li, Jeremy Watson, Ioannis Lestas

TL;DR
This paper introduces a new distributed control algorithm for power network frequency regulation that guarantees stability regardless of communication delays, incorporating operational constraints and demand observation.
Contribution
It presents a novel primal-dual control scheme with delay-independent stability guarantees, addressing a gap in existing literature.
Findings
The proposed algorithm ensures stability under arbitrary communication delays.
It can incorporate operational constraints and demand observation.
Simulations validate effectiveness on standard power system models.
Abstract
Distributed secondary frequency control for power systems, is a problem that has been extensively studied in the literature, and one of its key features is that an additional communication network is required to achieve optimal power allocation. Therefore, being able to provide stability guarantees in the presence of communication delays is an important requirement. Primal-dual and distributed averaging proportional-integral (DAPI) protocols, respectively, are two main control schemes that have been proposed in the literature. Each has its own relative merits, with the former allowing to incorporate general cost functions and additional operational constraints, and the latter being more straightforward in its implementation. Although delays have been addressed in DAPI schemes, there are currently no theoretical guarantees for the stability of primal-dual schemes for frequency control,…
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