Published November 24, 2021 | Version v1
Dataset Open

An estimate for thermal diffusivity in highly irradiated tungsten using Molecular Dynamics simulation

  • 1. UKAEA

Contributors

Project member:

  • 1. University of Helsinki

Description

The changing thermal conductivity of an irradiated material is among the principal design considerations for any nuclear reactor, but at present few models are capable of predicting these changes starting from an arbitrary atomistic model. Here we present a simple model for computing the thermal diffusivity of tungsten, based on the conductivity of the perfect crystal and resistivity per Frenkel pair, and dividing a simulation into perfect and athermal regions statistically. This is applied to highly irradiated microstructures simulated with Molecular Dynamics. A comparison to experiment shows that simulations closely track observed thermal diffusivity over a range of doses from the dilute limit of a few Frenkel pairs to the high dose saturation limit at 3 displacements per atom (dpa).
 

Notes

Code to compute thermal conductivity is available on GitHub with DOI: 10.5281/zenodo.5724089

Files

Lammps_CRA_only.zip

Files (1.2 GB)

Name Size Download all
md5:b0196f589993b387da9c6604cb5f65f9
701.1 MB Preview Download
md5:3f8534581ba9ff704cd983cbb83e8138
410.7 MB Preview Download
md5:11355cdb4d46fe8ca09d60bb4f4c61fa
120.4 MB Preview Download
md5:a445e876918d77ce9f8c650ff9f4b0d7
1.5 kB Preview Download
md5:20b49914a4c03e0ca1be059a1e723ee8
26.3 kB Preview Download
md5:5c7d08fd34a219c7d4eddfaab67b73be
29.9 kB Preview Download

Additional details

Funding

UK Research and Innovation
Magnetic Research Fusion Programme 2019-2022 EP/T012250/1
European Commission
EUROfusion – Implementation of activities described in the Roadmap to Fusion during Horizon 2020 through a Joint programme of the members of the EUROfusion consortium 633053