Published February 2010 | Version v1
Journal article

Determination of global and local residual stresses in SOFC by X-ray diffraction

  • 1. Ecole des Mines de Saint-Etienne, Centre SMS, UMR CNRS 5146, 158 cours Fauriel, F-42023 Saint-Etienne Cedex 2 (France)
  • 2. CEA Grenoble, LITEN/DTH/LCPEM, 17, rue des Martyrs, F-38054 Grenoble Cedex 9 (France)
  • 3. CEA Grenoble/INAC/UMR5819/SprAM, 17, rue des Martyrs, F-38054 Grenoble Cedex 9 (France)
  • 4. CEA Grenoble/INAC/SP2M, 17, rue des Martyrs, F-38054 Grenoble Cedex 9 (France)

Description

Solid Oxide Fuel Cell (SOFC) is a high-performance electrochemical device for energy conversion. A single cell is composed of five layers made of different ceramic materials: anode support, anode functional layer, electrolyte, cathode functional layer and cathode. The mechanical integrity of the cell is a major issue during its lifetime, especially for the electrolyte layer. Damage of the cells is mainly due to the high operating temperature, the 'redox' behaviour of the anode and the brittleness of the involved materials. Since residual stresses are known to play a significant role in the damage evolution, it is important to determine them. For this purpose, residual stresses in an anode-supported planar SOFC were measured by X-ray diffraction. Firstly, macroscopic stresses in each phase of each layer were studied using the sin2ψ method on a laboratory X-ray goniometer at room temperature. This technique enables the calculation of residual stress of the material from the measurement of the crystal lattice deformation. The electrolyte has been found under bi-axial compressive stress of -920 MPa. Secondly, X-ray measurements controlling depth penetration were made in the electrolyte using grazing incidence method. The results show that the stress is not homogenous in the layer. The first five micrometers of the electrolyte have been found less constrained (-750 MPa) than the complete layer, suggesting a gradient of deformation in the electrolyte from the interface with the Anode Functional Layer to the free surface. Finally, local stress measurements were made on the electrolyte layer by X-ray synchrotron radiation that allows high accuracy measurement on the (sub-) micrometer scale. Polychromatic and monochromatic beams are used to determine the complete strain tensor from grain to grain in the electrolyte. First results confirm the macroscopic stress trend of the electrolyte. These X-ray techniques at different scales will contribute to a better understanding of the residual stress in the electrolyte layer and thus to the involved damage mechanisms.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.nimb.2009.09.017

Additional details

Identifiers

DOI
10.1016/j.nimb.2009.09.017;
PII
S0168-583X(09)00984-7;

Publishing Information

Journal Title
Nuclear Instruments and Methods in Physics Research. Section B, Beam Interactions with Materials and Atoms
Journal Volume
268
Journal Issue
3-4
Journal Page Range
p. 282-286
ISSN
0168-583X
CODEN
NIMBEU

Conference

Title
X-ray techniques for advanced materials, nanostructures and thin films: From laboratory sources to synchrotron radiation
Acronym
EMRS 2009 spring meeting - Symposium R
Dates
8-12 Jun 2009
Place
Strasbourg (France)

Optional Information

Copyright
Copyright (c) 2009 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.