Bermúdez Agudelo, María Catalina ; Hampe, Manfred ; Reiber, Thorsten ; Abele, Eberhard (2023)
Investigation of Porous Metal-Based 3D-Printed Anode GDLs for Tubular High Temperature Proton Exchange Membrane Fuel Cells.
In: Materials, 2020, 13 (9)
doi: 10.26083/tuprints-00016630
Article, Secondary publication, Publisher's Version
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Item Type: | Article |
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Type of entry: | Secondary publication |
Title: | Investigation of Porous Metal-Based 3D-Printed Anode GDLs for Tubular High Temperature Proton Exchange Membrane Fuel Cells |
Language: | English |
Date: | 20 November 2023 |
Place of Publication: | Darmstadt |
Year of primary publication: | 2020 |
Place of primary publication: | Basel |
Publisher: | MDPI |
Journal or Publication Title: | Materials |
Volume of the journal: | 13 |
Issue Number: | 9 |
Collation: | 12 Seiten |
DOI: | 10.26083/tuprints-00016630 |
Corresponding Links: | |
Origin: | Secondary publication DeepGreen |
Abstract: | A high-temperature proton exchange membrane fuel cell (HT-PEMFC) conventionally uses a planar design with carbon-based substrates as the gas diffusion layer (GDL) materials. However, the metal-based substrates allow for alternative designs. In this study, the applicability of porous thin-walled tubular elements made of 316L stainless steel as the anode GDL in a multi-layer tubular HT-PEMFC was investigated. The anode GDLs were fabricated via powder bed fusion using a laser beam (PBF-LB) process with defined porosities (14% and 16%). The morphology of the porous elements was compared using scanning electron microscopy (SEM) micrographs. The influence of the porosity on the fuel cell performance was evaluated through electrochemical characterization and a short-term stability test (45 h) in a commercial test station operated at 160 °C and ambient pressure, using hydrogen as the fuel and air as the oxidant. The results showed that the fuel cell manufactured upon the anode GDL with a porosity of 16% had a higher performance with a peak power density of 329.25 W/m² after 5 h of operation at 125.52 A/m² and a voltage degradation rate of 0.511 mV/h over the stability test period. Moreover, this work indicates that additive manufacturing could be a useful tool for further fuel cell development. |
Uncontrolled Keywords: | additive manufacturing, gas diffusion layer (GDL), high-temperature proton exchange membrane fuel cell (HT-PEMFC), MEA preparation, porosity, powder bed fusion using a laser beam (PBF-LB), tubular design |
Status: | Publisher's Version |
URN: | urn:nbn:de:tuda-tuprints-166307 |
Additional Information: | This article belongs to the Section Energy Materials |
Classification DDC: | 600 Technology, medicine, applied sciences > 620 Engineering and machine engineering |
Divisions: | 16 Department of Mechanical Engineering > Institute of Production Technology and Machine Tools (PTW) 16 Department of Mechanical Engineering > Chair of Thermal Process Engineering (TVT) 16 Department of Mechanical Engineering > Institute for Nano- and Microfluidics (NMF) |
Date Deposited: | 20 Nov 2023 14:51 |
Last Modified: | 06 Dec 2023 09:38 |
SWORD Depositor: | Deep Green |
URI: | https://tuprints.ulb.tu-darmstadt.de/id/eprint/16630 |
PPN: | 513690697 |
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