Equivalent Circuit Model Analysis for Data-Driven Oriented Diagnosis of High-Level CO in HT-PEMFC with EIS

Research output: Contribution to book/anthology/report/conference proceedingArticle in proceedingResearchpeer-review

Abstract

Different equivalent circuit models (ECMs) of Electrochemical impedance spectroscopy (EIS) were analyzed in terms of parameter identification as features for online data-driven diagnosis of CO in the high temperature proton exchanged membrane fuel cell (HT-PEMFC). Parameter identification was performed and analyzed for feature extraction in machine learning model training. The EIS data were tested under 0, 0.75 and 1.5% CO and 5-100A load current on a 10-cell short fuel cell stack. The three levels of CO can be successfully identified via artificial neural network (ANN) and support vector machine (SVM). Anode reaction(1000-100Hz) and diffusion(100-5Hz) influenced by CO were suggested as two factors for the interpretability of the selected ECM. On the other hand, the simple ECM with fewer electrical components should be selected provided it can meet the diagnosis requirement by machine learning methods. This work contributes to the selection of ECM and the interpretation of machine learning methods for online diagnosis on HT-PEMFC with EIS.
Original languageEnglish
Title of host publication2024 IEEE Applied Power Electronics Conference and Exposition (APEC)
Number of pages7
PublisherIEEE (Institute of Electrical and Electronics Engineers)
Publication date2 May 2024
Pages2972-2978
ISBN (Print)979-8-3503-1663-6, 979-8-3503-1665-0
ISBN (Electronic)979-8-3503-1664-3
DOIs
Publication statusPublished - 2 May 2024
Event39th Annual IEEE Applied Power Electronics Conference and Exposition, APEC 2024 - Long Beach, United States
Duration: 25 Feb 202429 Feb 2024

Conference

Conference39th Annual IEEE Applied Power Electronics Conference and Exposition, APEC 2024
Country/TerritoryUnited States
CityLong Beach
Period25/02/202429/02/2024
SponsorIEEE Industry Applications Society (IAS), IEEE Power Electronics Society (PELS), Power Sources Manufacturers Association (PSMA)
SeriesI E E E Applied Power Electronics Conference and Exposition. Conference Proceedings
ISSN1048-2334

Keywords

  • Data-driven
  • EIS
  • Equivalent circuit model
  • Fault diagnosis
  • HT-PEMFC

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