Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic Algorithm

Penetration of the power grid by renewable energy sources, distributed storage, and distributed generators is becoming increasingly common. Increased utilization of these distributed energy resources (DERs) has given rise to additional protection coordination concerns, particularly where they are ut...

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Main Authors: Ronald C. Matthews, Trupal R. Patel, Adam K. Summers, Matthew J. Reno, Shamina Hossain-McKenzie
Format: Article
Language:English
Published: MDPI AG 2021-03-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/6/1699
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spelling doaj-f4ab4be43eec4af6a951a3ac293f56cc2021-03-19T00:05:14ZengMDPI AGEnergies1996-10732021-03-01141699169910.3390/en14061699Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic AlgorithmRonald C. Matthews0Trupal R. Patel1Adam K. Summers2Matthew J. Reno3Shamina Hossain-McKenzie4Sandia National Laboratories, P.O. Box 5800 MS 1033, Albuquerque, NM 87185, USASandia National Laboratories, P.O. Box 5800 MS 1033, Albuquerque, NM 87185, USASandia National Laboratories, P.O. Box 5800 MS 1033, Albuquerque, NM 87185, USASandia National Laboratories, P.O. Box 5800 MS 1033, Albuquerque, NM 87185, USASandia National Laboratories, P.O. Box 5800 MS 1033, Albuquerque, NM 87185, USAPenetration of the power grid by renewable energy sources, distributed storage, and distributed generators is becoming increasingly common. Increased utilization of these distributed energy resources (DERs) has given rise to additional protection coordination concerns, particularly where they are utilized in an unbalanced manner or where loading among phases is unbalanced. Digital relays such as the SEL-751 (produced by Schweitzer Engineering Laboratories, Pullman, WA, USA) series have the capability of being set on a per-phase basis. This capability is underutilized in common practice. Additionally, in optimization algorithms for determining relay settings, the time-overcurrent characteristics (TOCs) of relays are generally not treated as variables and are assigned before running the optimization algorithm. In this paper, TOC options themselves are treated as discrete variables to be considered in the optimization algorithm. A mixed integer nonlinear programming problem (MINLP) is set up where the goal is to minimize relay operating times. A genetic algorithm (GA) approach is implemented in MATLAB where two cases are considered. In the first case, the TOC and Time dial setting (TDS) of each relay is set on a three-phase basis. In the second case, per-phase settings are considered. Relay TDSs and TOCs are both considered as simultaneous discrete control variables. Despite the stochastic nature of using per-phase settings for unbalanced systems is found to generally allow for shorter operating times. However, for relatively balanced systems, it is best to use three-phase settings if computation time is of importance.https://www.mdpi.com/1996-1073/14/6/1699inverse time overcurrent relaygenetic algorithm (GA)time overcurrent characteristic (TOC)time dial settings (<i>TDS</i>)coordination time interval (CTI)per-phase relay coordination
collection DOAJ
language English
format Article
sources DOAJ
author Ronald C. Matthews
Trupal R. Patel
Adam K. Summers
Matthew J. Reno
Shamina Hossain-McKenzie
spellingShingle Ronald C. Matthews
Trupal R. Patel
Adam K. Summers
Matthew J. Reno
Shamina Hossain-McKenzie
Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic Algorithm
Energies
inverse time overcurrent relay
genetic algorithm (GA)
time overcurrent characteristic (TOC)
time dial settings (<i>TDS</i>)
coordination time interval (CTI)
per-phase relay coordination
author_facet Ronald C. Matthews
Trupal R. Patel
Adam K. Summers
Matthew J. Reno
Shamina Hossain-McKenzie
author_sort Ronald C. Matthews
title Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic Algorithm
title_short Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic Algorithm
title_full Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic Algorithm
title_fullStr Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic Algorithm
title_full_unstemmed Per-Phase and 3-Phase Optimal Coordination of Directional Overcurrent Relays Using Genetic Algorithm
title_sort per-phase and 3-phase optimal coordination of directional overcurrent relays using genetic algorithm
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2021-03-01
description Penetration of the power grid by renewable energy sources, distributed storage, and distributed generators is becoming increasingly common. Increased utilization of these distributed energy resources (DERs) has given rise to additional protection coordination concerns, particularly where they are utilized in an unbalanced manner or where loading among phases is unbalanced. Digital relays such as the SEL-751 (produced by Schweitzer Engineering Laboratories, Pullman, WA, USA) series have the capability of being set on a per-phase basis. This capability is underutilized in common practice. Additionally, in optimization algorithms for determining relay settings, the time-overcurrent characteristics (TOCs) of relays are generally not treated as variables and are assigned before running the optimization algorithm. In this paper, TOC options themselves are treated as discrete variables to be considered in the optimization algorithm. A mixed integer nonlinear programming problem (MINLP) is set up where the goal is to minimize relay operating times. A genetic algorithm (GA) approach is implemented in MATLAB where two cases are considered. In the first case, the TOC and Time dial setting (TDS) of each relay is set on a three-phase basis. In the second case, per-phase settings are considered. Relay TDSs and TOCs are both considered as simultaneous discrete control variables. Despite the stochastic nature of using per-phase settings for unbalanced systems is found to generally allow for shorter operating times. However, for relatively balanced systems, it is best to use three-phase settings if computation time is of importance.
topic inverse time overcurrent relay
genetic algorithm (GA)
time overcurrent characteristic (TOC)
time dial settings (<i>TDS</i>)
coordination time interval (CTI)
per-phase relay coordination
url https://www.mdpi.com/1996-1073/14/6/1699
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