Affinely Adjustable Robust Volt/VAr Control without Centralized Computations
Energy
Reactive power decision rules
Volt/VAr control
006
02 engineering and technology
Network partitioning
7. Clean energy
0906 Electrical and Electronic Engineering
Power
0202 electrical engineering, electronic engineering, information engineering
Energy and Industry Applications
Second order conic relaxation
Robust optimization
DOI:
10.36227/techrxiv.16432329.v1
Publication Date:
2021-08-30T09:41:03Z
AUTHORS (3)
ABSTRACT
<div>This paper proposes a completely non-centralized Volt/VAr control (VVC) algorithm for active distribution networks which are faced with voltage magnitude violations due to the high penetration of solar photovoltaics (PVs). The proposed VVC algorithm employs a two-stage architecture where the settings of the classical voltage control devices (VCDs) are decided in the first stage through a distributed optimization engine powered by the alternating direction method of multipliers (ADMM). In contrast, the PV smart inverters are instructed in the second stage through linear Q(P) decision rules - which are computed in a decentralized manner by leveraging robust optimization theory. The key to this non-centralized VVC routine is a proposed network partition methodology (NPM) which uses an electrical distance metric based on node QjV j2 sensitivitiesfor computing an intermediate reduced graph of the network, which is subsequently divided into the final partitions using the spectral clustering technique. As a result, the final network partitions are connected, stable, close in cardinality, contain at least one PV inverter for zonal reactive power support, and are sufficiently decoupled from each other. Numerical results on the UKGDS-95 bus system show that the non-centralized solutions match closely with the centralized robust VVC schemes, thereby significantly reducing the voltage violations compared to the traditional deterministic VVC routines.</div>
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