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  4. A thermally self-sustained micro-power plant with integrated micro-solid oxide fuel cells, micro-reformer and functional micro-fluidic carrier
 
research article

A thermally self-sustained micro-power plant with integrated micro-solid oxide fuel cells, micro-reformer and functional micro-fluidic carrier

Scherrer, Barbara
•
Evans, Anna
•
Santis-Alvarez, Alejandro
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2014
Journal of Power Sources

Low temperature micro-solid oxide fuel cell (micro-SOFC) systems are an attractive alternative power source for small-size portable electronic devices due to their high energy efficiency and density. Here, we report a thermally self-sustainable reformer – micro-SOFC assembly. The device consists of a micro-reformer bonded to a silicon chip containing 30 micro-SOFC membranes and a functional glass carrier with gas channels and screen-printed heaters for start-up. Thermal independence of the device from the externally powered heater is achieved by this exothermic reforming reaction above 470 °C. The reforming reaction and the fuel gas flow rate of the n-butane/air gas mixture controls the operation temperature and gas composition on the micro-SOFC membrane. In the temperature range between 505 °C and 570 °C, the gas composition after the micro-reformer consists of 12 vol% to 28 vol% H2. An open-circuit voltage of 1.0 V and maximum power density of 47 mW/cm2 at 565 °C is achieved with the on-chip produced hydrogen at the micro-SOFC membranes.

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Type
research article
DOI
10.1016/j.jpowsour.2014.02.039
Web of Science ID

WOS:000334899300052

Author(s)
Scherrer, Barbara
Evans, Anna
Santis-Alvarez, Alejandro
Jiang, Bo  
Martynczuk, Julia
Nabavi, Majid
Galinski, Henning
Prestat, Michel
Tölke, René
Bieberle-Hutter, Anja
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Date Issued

2014

Publisher

Elsevier

Published in
Journal of Power Sources
Volume

258

Start page

434

End page

440

Subjects

couches épaisses

•

thick-film technology

•

LTCC

•

microsystèmes

•

microsystems

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MEMS

•

piles à combustible à oxyde solide

•

solid-oxide fuel cells

•

SOFC

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µ-SOFC

•

fluidique

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fluidics

•

microfluidique

•

microfluidics

•

packaging

•

microréacteurs chimiques

•

chemical microreactors

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thermique

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thermal management

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couches minces

•

thin films

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reformage butane

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butane reforming

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oxydation partielle catalytique

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catalytic partial oxidation

•

démonstrateur

•

demonstrator

•

ONEBAT

Note

Article sur le démonstrateur final du projet Sinergia ONEBAT Paper on the final demonstrator of the Sinergia ONEBAT project

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LC  
LPM  
Available on Infoscience
September 27, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/94985
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