A convex approximation for optimal DER scheduling on unbalanced power distribution networks

Journal Article (2019)
Author(s)

I.D. Serna-Suárez (Industrial University of Santander)

Gilberto Carrillo-Caicedo (Gerente General)

G. Morales-Espana (TNO - Energy Transition)

MM Weerdt (TU Delft - Algorithmics)

Gabriel Ordónẽz-Plata (Industrial University of Santander)

Research Group
Algorithmics
Copyright
© 2019 I.D. Serna Suarez, Gilberto Carrillo-Caicedo, G. Morales-Espana, M.M. de Weerdt, Gabriel Ordóñez-Plata
DOI related publication
https://doi.org/10.15446/dyna.v86n208.72886
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 I.D. Serna Suarez, Gilberto Carrillo-Caicedo, G. Morales-Espana, M.M. de Weerdt, Gabriel Ordóñez-Plata
Research Group
Algorithmics
Issue number
208
Volume number
86
Pages (from-to)
281-291
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Abstract

The increase of solar photovoltaic penetration poses several challenges for distribution network operation, mainly because such high penetration might cause reliability problems like protection malfunctioning, accelerated decay of voltage regulators and voltage violations. Existing solutions based on mathematical programming solve a 3-phase ACOPF to optimally exploit the available energy, however, this might increase all reliability problems above if done carelessly. As a solution to optimally exploit DERs (like local photovoltaic and storage systems) without compromising the network reliability, this paper presents a novel algorithm to solve the 3-phase ACOPF as a sequence of convex Quadratically Constrained Quadratic Programs. Results show that this solution has a lower voltage unbalance and computation time than its non-linear counterpart, furthermore, it converges to a primal feasible point for the non-linear formulation without major sacrifices on optimal DER active power injections.