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Published July 2020 | public
Journal Article

Distributed Optimal Voltage Control with Asynchronous and Delayed Communication

Abstract

The increased penetration of volatile renewable energy into distribution networks necessities more efficient distributed voltage control. In this paper, we design distributed feedback control algorithms where each bus can inject both active and reactive power into the grid to regulate the voltages. The control law on each bus is only based on local voltage measurements and communication to its physical neighbors. Moreover, the buses can perform their updates asynchronously without receiving information from their neighbors for periods of time. The algorithm enforces hard upper and lower limits on the active and reactive powers at every iteration. We prove that the algorithm converges to the optimal feasible voltage profile, assuming linear power flows. This provable convergence is maintained under bounded communication delays and asynchronous communications. We further numerically test the performance of the algorithm using the full nonlinear AC power flow model. Our simulations show the effectiveness of our algorithm on realistic networks with both static and fluctuating loads, even in the presence of communication delays.

Additional Information

© 2020 IEEE. Manuscript received July 4, 2019; revised November 2, 2019 and January 22, 2020; accepted January 22, 2020. Date of publication January 31, 2020; date of current version June 19, 2020. This work was supported in part by NSF under Grant 1608509, NSF CAREER under Grant 1553407, and ARPA-E through the NODES program, and in part by the Harvard Climate Change Solution Funds. Paper no. TSG-00949-2019.

Additional details

Created:
August 19, 2023
Modified:
October 19, 2023