Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway Applications

In this paper, a decoupled model of a train including an on-board hybrid accumulation system is presented to be used in DC traction networks. The train and the accumulation system behavior are modeled separately, and the results are then combined in order to study the effect of the whole system on t...

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Main Authors: Pablo Arboleya, Islam El-Sayed, Bassam Mohamed, Clement Mayet
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/11/2199
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spelling doaj-1b9ad703330445799475e6ba95390c412020-11-25T01:16:08ZengMDPI AGEnergies1996-10732019-06-011211219910.3390/en12112199en12112199Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway ApplicationsPablo Arboleya0Islam El-Sayed1Bassam Mohamed2Clement Mayet3LEMUR Research Group, Department of Electrical Engineering, University of Oviedo, Campus of Gijón, 33204 Gijón, SpainLEMUR Research Group, Department of Electrical Engineering, University of Oviedo, Campus of Gijón, 33204 Gijón, SpainLEMUR Research Group, Department of Electrical Engineering, University of Oviedo, Campus of Gijón, 33204 Gijón, SpainSATIE—UMR CNRS 8020, Conservatoire National des Arts et Métiers, HESAM University, F-75003 Paris, FranceIn this paper, a decoupled model of a train including an on-board hybrid accumulation system is presented to be used in DC traction networks. The train and the accumulation system behavior are modeled separately, and the results are then combined in order to study the effect of the whole system on the traction electrical network. The model is designed specifically to be used with power flow solvers for planning purposes. The validation has been carried out comparing the results with other methods previously developed and also with experimental measurements. A detailed description of the power flow solver is beyond the scope of this work, but it must be remarked that the model must by used with a solver able to cope with the non-linear and non-smooth characteristics of the model. In this specific case, a modified current injection-based power flow solver has been used. The solver is able to incorporate also non-reversible substations, which are the most common devices used currently for feeding DC systems. The effect of the on-board accumulation systems on the network efficiency will be analyzed using different real scenarios.https://www.mdpi.com/1996-1073/12/11/2199rail transportation power systemsDC power systemsload flow analysispower systems modelingload modeling
collection DOAJ
language English
format Article
sources DOAJ
author Pablo Arboleya
Islam El-Sayed
Bassam Mohamed
Clement Mayet
spellingShingle Pablo Arboleya
Islam El-Sayed
Bassam Mohamed
Clement Mayet
Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway Applications
Energies
rail transportation power systems
DC power systems
load flow analysis
power systems modeling
load modeling
author_facet Pablo Arboleya
Islam El-Sayed
Bassam Mohamed
Clement Mayet
author_sort Pablo Arboleya
title Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway Applications
title_short Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway Applications
title_full Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway Applications
title_fullStr Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway Applications
title_full_unstemmed Modeling, Simulationand Analysis of On-Board Hybrid Energy Storage Systems for Railway Applications
title_sort modeling, simulationand analysis of on-board hybrid energy storage systems for railway applications
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-06-01
description In this paper, a decoupled model of a train including an on-board hybrid accumulation system is presented to be used in DC traction networks. The train and the accumulation system behavior are modeled separately, and the results are then combined in order to study the effect of the whole system on the traction electrical network. The model is designed specifically to be used with power flow solvers for planning purposes. The validation has been carried out comparing the results with other methods previously developed and also with experimental measurements. A detailed description of the power flow solver is beyond the scope of this work, but it must be remarked that the model must by used with a solver able to cope with the non-linear and non-smooth characteristics of the model. In this specific case, a modified current injection-based power flow solver has been used. The solver is able to incorporate also non-reversible substations, which are the most common devices used currently for feeding DC systems. The effect of the on-board accumulation systems on the network efficiency will be analyzed using different real scenarios.
topic rail transportation power systems
DC power systems
load flow analysis
power systems modeling
load modeling
url https://www.mdpi.com/1996-1073/12/11/2199
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