Published 2016 | Version v1
Book

Determination of the mechanical properties of blisters by nanoindentation

  • 1. Departmento de Ciencia de Materiales, ETSI Caminos, Universidad Politecnica de Madrid. E28040 Madrid (Spain)
  • 2. Advanced Material Simulation, Bilbao (Spain)
  • 3. DIMME, Universidad Rey Juan Carlos, Campus de Mostoles. Mostoles, Madrid (Spain)

Description

In light-water reactors, a zirconium oxide layer will be formed at the outer surface of the fuel cladding as a consequence of the chemical reaction which takes place between zirconium and the cooling water. This zirconium oxide layer is a good thermal insulator, but at some point, it may spall-out. As a consequence, a cold spot will be formed at the outer surface of the cladding. In this situation, the hydrogen will quickly migrate to this spot to form a highly-enriched hydride zone, known as blister. In this work, an experimental procedure has been devised to produce blisters with a similar shape to the ones reported in the literature for irradiated cladding with severe hydriding. Nano-indentation tests were performed on blisters prepared in laboratory. A numerical simulation by the finite element method was developed to fit the load versus penetration depth data from the aforementioned nano-indentation tests. By means of an inverse process which combines experimental data and numerical simulations, the constitutive equation of the blister was determined. The process has been used to calculate the plastic stress-strain curve of the blister under study at room temperature. The results show an almost perfect numerical fitting of the experimental data

Availability note (English)

Available from: American Nuclear Society - ANS, 555 North Kensington Avenue, La Grange Park, IL 60526 (US), also available on CD-Rom
Part of:
Top Fuel 2016 Proceedings

Additional details

Publishing Information

Publisher
American Nuclear Society - ANS
Imprint Place
La Grange Park, IL (United States)
ISBN
978-0-89448-734-7
Imprint Title
Top Fuel 2016 Proceedings
Imprint Pagination
1670 p.
Journal Page Range
p. 129-138

Conference

Title
LWR fuels with enhanced safety and performance
Acronym
Top Fuel 2016
Dates
11-15 Sep 2016
Place
Boise, ID (United States)

Optional Information

Notes
8 refs.