Thermal Expansion, Heat Capacity, and Thermal Conductivity of Nickel Ferrite (NiFe[subscript 2]O[subscript 4])
Name
Short Trevorite Draft ATN_v102913.pdf
Size
497.13 KB
Format
Adobe PDF
Checksum (MD5)
2a0f7476f5c452af4f88cbf20965443f
Author(s) • • • • • • •
Nelson, Andrew T.
White, Joshua T.
Andersson, David A.
Aguiar, Jeffery A.
McClellan, Kenneth J.
Byler, Darrin D.
Stanek, Christopher R.
Short, Michael P
Date Issued
April 2014
Journal
Journal of the American Ceramic Society
Publisher
Wiley Blackwell
Citation
Nelson, Andrew T., Joshua T. White, David A. Andersson, Jeffery A. Aguiar, Kenneth J. McClellan, Darrin D. Byler, Michael P. Short, and Christopher R. Stanek. “Thermal Expansion, Heat Capacity, and Thermal Conductivity of Nickel Ferrite (NiFe[subscript 2]O[subscript 4]).” Edited by M. White. J. Am. Ceram. Soc. 97, no. 5 (April 1, 2014): 1559–1565.
Version
Original manuscript
Abstract
Nickel ferrite (NiFe[subscript 2]O[subscript 4]) is a major constituent of the corrosion deposits formed on the exterior of nuclear fuel cladding tubes during operation. NiFe[subscript 2]O[subscript 4] has attracted much recent interest, mainly due to the impact of these deposits, known as CRUD, on the operation of commercial nuclear reactors. Although advances have been made in modeling CRUD nucleation and growth under a wide range of conditions, the thermophysical properties of NiFe[subscript 2]O[subscript 4] at high temperatures have only been approximated, thereby limiting the accuracy of such models. In this study, samples of NiFe[subscript 2]O[subscript 4] were synthesized to provide the thermal diffusivity, specific heat capacity, and thermal expansion data from room temperature to 1300 K. These results were then used to determine thermal conductivity. Numerical fits are provided to facilitate ongoing modeling efforts. The Curie temperature determined through these measurements was in slight disagreement with literature values. Transmission electron microscopy investigation of multiple NiFe[subscript 2]O[subscript 4] samples revealed that minor nonstoichiometry was likely responsible for variations in the Curie temperature. However, these small changes in composition did not impact the thermal conductivity of NiFe[subscript 2]O[subscript 4], and thus are not expected to play a large role in governing reactor performance.
MIT Department
Massachusetts Institute of Technology. Department of Nuclear Science and Engineering
Terms of Use
Creative Commons Attribution-Noncommercial-Share Alike
Persistent DSpace Link
DOI of Published Version
https://doi.org/10.1111/jace.12901