Artikel

PEM fuel cells model parameter identification based on a new improved fluid search optimization algorithm

Model-identification and parameter extraction of the proton exchange membrane fuel cell (PEMFC) is a well-defined procedure for improving the PEMFC efficiency for designing and control purposes. This paper presents a new version of the improved fluid search optimization algorithm for optimal parameter identification of the undetermined parameters of the PEMFCs. The total of square deviations between the experimentally measured values and the optimal achieved values from the algorithm is considered the cost function. Two empirical PEMFC models including BCS 500-W and NedStack PS6 are employed and analyzed to present the capability of the proposed procedure under different conditions. Simulation results are compared with different optimizers under the same conditions to demonstrate the system efficiency. The final results showed that the proposed chaos-based fluid search optimization algorithm is successfully used to extract the parameters of a PEMFC model precisely.

Language
Englisch

Bibliographic citation
Journal: Energy Reports ; ISSN: 2352-4847 ; Volume: 6 ; Year: 2020 ; Pages: 813-823 ; Amsterdam: Elsevier

Classification
Wirtschaft
Subject
Proton exchange membrane fuel cell
Parameter identification
Optimization
Total of square deviations
FSO
Chaos theory

Event
Geistige Schöpfung
(who)
Cao, Yan
Kou, Xiaoxi
Wu, Yujia
Kittisak Jermsittiparsert
Yildizbasi, Abdullah
Event
Veröffentlichung
(who)
Elsevier
(where)
Amsterdam
(when)
2020

DOI
doi:10.1016/j.egyr.2020.04.013
Handle
Last update
10.03.2025, 11:42 AM CET

Data provider

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Object type

  • Artikel

Associated

  • Cao, Yan
  • Kou, Xiaoxi
  • Wu, Yujia
  • Kittisak Jermsittiparsert
  • Yildizbasi, Abdullah
  • Elsevier

Time of origin

  • 2020

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