4.7 Article

Atomic-scale mechanisms of helium bubble hardening in iron

Journal

JOURNAL OF NUCLEAR MATERIALS
Volume 465, Issue -, Pages 448-454

Publisher

ELSEVIER
DOI: 10.1016/j.jnucmat.2015.05.034

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Funding

  1. Office of Fusion Energy Sciences, U.S. Department of Energy [DE-AC05-00OR22725]
  2. UT-Battelle, LLC

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Generation of helium due to (n,alpha) transmutation reactions changes the response of structural materials to neutron irradiation. The whole process of radiation damage evolution is affected by He accumulation and leads to significant changes in the material's properties. A population of nanometric He-filled bubbles affects mechanical properties and the impact can be quite significant because of their high density. Understanding how these basic mechanisms affect mechanical properties is necessary for predicting radiation effects. In this paper we present an extensive study of the interactions between a moving edge dislocation and bubbles using atomic-scale modeling. We focus on the effect of He bubble size and He concentration inside bubbles. We found that ability of bubbles to act as an obstacle to dislocation motion is close to that of voids when the He-to-vacancy ratio is in the range from 0 to 1. A few simulations made at higher He contents demonstrated that the interaction mechanism is changed for over-pressurized bubbles and they become weaker obstacles. The results are discussed in light of postirradiation materials testing. (C) 2015 Elsevier B.V. All rights reserved.

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