A novel pathway for multiscale high-resolution time-resolved residual stress evaluation of laser-welded Eurofer97

Author:

Zhu Bin1ORCID,Wang Yiqiang2,Dluhoš Jiří3ORCID,London Andy J.2ORCID,Gorley Michael2ORCID,Whiting Mark J.1ORCID,Sui Tan1ORCID

Affiliation:

1. Department of Mechanical Engineering Sciences, University of Surrey, Guildford, Surrey GU2 7XH, UK.

2. United Kingdom Atomic Energy Authority, Culham Centre for Fusion Energy, Culham Science Centre, Abingdon, Oxon OX14 3DB, UK.

3. TESCAN ORSAY HOLDING, a.s., Libušina třída 21, 623 00 Brno, Czech Republic.

Abstract

The plasma-facing components of future fusion reactors, where the Eurofer97 is the primary structural material, will be assembled by laser-welding techniques. The heterogeneous residual stress induced by welding can interact with the microstructure, resulting in a degradation of mechanical properties and a reduction in joint lifetime. Here, a Xe + plasma focused ion beam with digital image correlation (PFIB-DIC) and nanoindentation is used to reveal the mechanistic connection between residual stress, microstructure, and microhardness. This study is the first to use the PFIB-DIC to evaluate the time-resolved multiscale residual stress at a length scale of tens of micrometers for laser-welded Eurofer97. A nonequilibrium microscale residual stress is observed, which contributes to the macroscale residual stress. The microhardness is similar for the fusion zone and heat-affected zone (HAZ), although the HAZ exhibits around ~30% tensile residual stress softening. The results provide insight into maintaining structural integrity for this critical engineering challenge.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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