4.7 Article

Distributed Optimal Conservation Voltage Reduction in Integrated Primary-Secondary Distribution Systems

Journal

IEEE TRANSACTIONS ON SMART GRID
Volume 12, Issue 5, Pages 3889-3900

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TSG.2021.3088010

Keywords

Voltage control; Reactive power; Inverters; Load modeling; Voltage measurement; Distribution networks; Convex functions; Alternating direction method of multipliers (ADMM); asynchronous update; conservation voltage reduction (CVR); feedback-based linear approximation; integrated primary-secondary distribution networks

Funding

  1. U.S. Department of Energy Wind Energy Technologies Office [DE-EE0008956]
  2. National Science Foundation [ECCS 1929975, TSG-01674-2020]

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This paper proposes an asynchronous distributed leader-follower control method for conservation voltage reduction in unbalanced distribution systems. It considers integrated primary-secondary distribution networks and voltage dependent loads, with a feedback-based linear approximation and partitioning of control zones to address computational complexity. The asynchronous implementations of leader-follower controllers enable fast tracking of system variations and robustness against communication delays and failures.
This paper proposes an asynchronous distributed leader-follower control method to achieve conservation voltage reduction (CVR) in three-phase unbalanced distribution systems by optimally scheduling smart inverters of distributed energy resources (DERs). One feature of the proposed method is to consider integrated primary-secondary distribution networks and voltage dependent loads. To ease the computational complexity introduced by the large number of secondary networks, we partition a system into distributed leader-follower control zones based on the network connectivity. To address the non-convexity from the nonlinear power flow and load models, a feedback-based linear approximation using instantaneous power and voltage measurements is proposed. This enables the online implementation of the proposed method to achieve fast tracking of system variations led by DERs. Another feature of the proposed method is the asynchronous implementations of the leader-follower controllers, which makes it compatible with non-uniform update rates and robust against communication delays and failures. Numerical tests are performed on a real distribution feeder in Midwest U. S. to validate the effectiveness and robustness of the proposed method.

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