Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid System
To deal with the intermittency of renewable energy resources, hydrogen as an energy carrier is a good solution. The Polymer Electrolyte Membrane Fuel Cell (PEMFC) as a device that can directly convert hydrogen energy to electricity is an important part of this solution. However, durability and cost...
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doaj-714843654b094922afa5c775c294d4952020-11-25T02:05:21ZengMDPI AGMathematics2227-73902020-05-01873973910.3390/math8050739Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid SystemMilad Bahrami0Jean-Philippe Martin1Gaël Maranzana2Serge Pierfederici3Mathieu Weber4Farid Meibody-Tabar5Majid Zandi6University of Lorraine, CNRS, LEMTA, 54000 Nancy, FranceUniversity of Lorraine, CNRS, LEMTA, 54000 Nancy, FranceUniversity of Lorraine, CNRS, LEMTA, 54000 Nancy, FranceUniversity of Lorraine, CNRS, LEMTA, 54000 Nancy, FranceUniversity of Lorraine, CNRS, LEMTA, 54000 Nancy, FranceUniversity of Lorraine, CNRS, LEMTA, 54000 Nancy, FranceRenewable Energies Engineering Department, Shahid Beheshti University, Tehran 1983969411, IranTo deal with the intermittency of renewable energy resources, hydrogen as an energy carrier is a good solution. The Polymer Electrolyte Membrane Fuel Cell (PEMFC) as a device that can directly convert hydrogen energy to electricity is an important part of this solution. However, durability and cost are two hurdles that must be overcome to enable the mass deployment of the technology. In this paper, a management system is proposed for the fuel cells that can cope with the durability issue by a suitable distribution of electrical power between cell groups. The proposed power electronics architecture is studied in this paper. A dynamical average model is developed for the proposed system. The validation of the model is verified by simulation and experimental results. Then, this model is used to prove the stability and robustness of the control method. Finally, the energy management system is assessed experimentally in three different conditions. The experimental results validate the effectiveness of the proposed topology for developing a management system with which the instability of cells can be confronted. The experimental results verify that the system can supply the load profile even during the degradation mode of one stack and while trying to cure it.https://www.mdpi.com/2227-7390/8/5/739multi-stackPolymer Electrolyte Membrane Fuel Cell (PEMFC)energy managementpower electronicsstability analysis |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Milad Bahrami Jean-Philippe Martin Gaël Maranzana Serge Pierfederici Mathieu Weber Farid Meibody-Tabar Majid Zandi |
spellingShingle |
Milad Bahrami Jean-Philippe Martin Gaël Maranzana Serge Pierfederici Mathieu Weber Farid Meibody-Tabar Majid Zandi Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid System Mathematics multi-stack Polymer Electrolyte Membrane Fuel Cell (PEMFC) energy management power electronics stability analysis |
author_facet |
Milad Bahrami Jean-Philippe Martin Gaël Maranzana Serge Pierfederici Mathieu Weber Farid Meibody-Tabar Majid Zandi |
author_sort |
Milad Bahrami |
title |
Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid System |
title_short |
Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid System |
title_full |
Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid System |
title_fullStr |
Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid System |
title_full_unstemmed |
Multi-Stack Lifetime Improvement through Adapted Power Electronic Architecture in a Fuel Cell Hybrid System |
title_sort |
multi-stack lifetime improvement through adapted power electronic architecture in a fuel cell hybrid system |
publisher |
MDPI AG |
series |
Mathematics |
issn |
2227-7390 |
publishDate |
2020-05-01 |
description |
To deal with the intermittency of renewable energy resources, hydrogen as an energy carrier is a good solution. The Polymer Electrolyte Membrane Fuel Cell (PEMFC) as a device that can directly convert hydrogen energy to electricity is an important part of this solution. However, durability and cost are two hurdles that must be overcome to enable the mass deployment of the technology. In this paper, a management system is proposed for the fuel cells that can cope with the durability issue by a suitable distribution of electrical power between cell groups. The proposed power electronics architecture is studied in this paper. A dynamical average model is developed for the proposed system. The validation of the model is verified by simulation and experimental results. Then, this model is used to prove the stability and robustness of the control method. Finally, the energy management system is assessed experimentally in three different conditions. The experimental results validate the effectiveness of the proposed topology for developing a management system with which the instability of cells can be confronted. The experimental results verify that the system can supply the load profile even during the degradation mode of one stack and while trying to cure it. |
topic |
multi-stack Polymer Electrolyte Membrane Fuel Cell (PEMFC) energy management power electronics stability analysis |
url |
https://www.mdpi.com/2227-7390/8/5/739 |
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