Neutron-induced dpa, transmutations, gas production, and helium embrittlement of fusion materials
arXiv:1311.5079 · doi:10.1016/j.jnucmat.2013.03.085
Abstract
In a fusion reactor materials will be subjected to significant fluxes of high-energy neutrons. As well as causing radiation damage, the neutrons also initiate nuclear reactions leading to changes in the chemical composition of materials (transmutation). Many of these reactions produce gases, particularly helium, which cause additional swelling and embrittlement of materials. This paper investigates, using a combination of neutron-transport and inventory calculations, the variation in displacements per atom (dpa) and helium production levels as a function of position within the high flux regions of a recent conceptual model for the "next-step" fusion device DEMO. Subsequently, the gas production rates are used to provide revised estimates, based on new density-functional-theory results, for the critical component lifetimes associated with the helium-induced grain-boundary embrittlement of materials. The revised estimates give more optimistic projections for the lifetimes of materials in a fusion power plant compared to a previous study, while at the same time indicating that helium embrittlement remains one of the most significant factors controlling the structural integrity of fusion power plant components.
9 pages, 9 figures
Cited by in corpus (8)
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- Trapping of He Clusters by Inert-Gas Impurities in Tungsten: First-Principles Predictions and Experimental Validation
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- Macroscopic elastic stress and strain produced by irradiation
- First principles model for voids decorated by transmutation solutes: Short-range order effects and application to neutron irradiated tungsten
- Prospects for a dominantly microwave-diagnosed magnetically confined fusion reactor
- Designing an upgrade of the Medley setup for light-ion production and fission cross-section measurements
- Reducing Risk and Accelerating Delivery of a Neutron Source for Fusion Materials Research