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  4. Performance Assessment of Linearized OPF-based Distributed Real-time Predictive Control
 
conference paper

Performance Assessment of Linearized OPF-based Distributed Real-time Predictive Control

Guptal, Rahul
•
Sossan, Fabrizio
•
Paolone, Mario  
August 26, 2019
Proceedings of the 2019 IEEE Milan PowerTech
2019 IEEE Milan PowerTech

We consider the problem of controlling heteroge-neous controllable resources of a distribution network with the objective of achieving a certain power flow at the grid connection point while respecting local grid constraints. The problem is formulated as a model predictive control (MPC), where a linearized grid model, to retain convexity, based on sensitivity coefficients (SCs) is used to model the grid constraints. We consider and compare the modelling performance of three different update policies for the SCs: when they are updated once per day considering static injections, updated once per day considering point prediction of the nodal injections, and recursively estimated using on-line measurements. Simulations are performed considering the CIGRÉ low voltage benchmark network. Performance is evaluated in terms of convergence speed, tracking error, and constraints modeling errors. Further, we perform a sensitivity analysis on the dominant model w.r.t. the length of the predictive horizon and number of controllable units.

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Type
conference paper
DOI
10.1109/PTC.2019.8810532
Author(s)
Guptal, Rahul
Sossan, Fabrizio
Paolone, Mario  
Date Issued

2019-08-26

Publisher

IEEE

Publisher place

Milan, Italy

Published in
Proceedings of the 2019 IEEE Milan PowerTech
ISBN of the book

978-1-5386-4722-6

Total of pages

6

Volume

1

Issue
Start page

1

End page

6

Subjects

Distributed control

•

energy storage

•

photovoltaic

•

linear programming

•

optimal power flow

•

sensitivity coefficients

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
DESL  
Event nameEvent placeEvent date
2019 IEEE Milan PowerTech

Milan

June 23-27, 2019

Available on Infoscience
February 7, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/165185
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