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Communication Dans Un Congrès Année : 2002

Experimental simulation of spallation elements production in a 9Cr-1Mo martensitic steel 3D atom probe characterisation

Emmanuel Cadel
Philippe Pareige
M.-O. Ruault
  • Fonction : Auteur

Résumé

The irradiation damage in the target window of a demonstrator of an Accelerator Driven System (ADS) consists of atomic displacements (dpa) and spallation element production that will affect the in-service properties of the structural material of the target. The atomic displacements (about 100 dpa/year) will promote the formation of point defect clusters, dislocation loops and the precipitation of various phases that contribute to hardening and embrittlement of the structural material. As an example, the Ca and Ti production should harden the material via precipitation, in parallel to embrittlement due to P and S segregation. The purpose of this work was to simulate the spallation element loading, via ion implantation (using the IRMA implanter at CSNSM) and to study at the atomic scale, with the 3D atom probe, their evolution in the 9Cr-1Mo reference martensitic steel. In order to realize this, specific experiments, performed at 300°C, were carried out using low energy ions (Ca, Ti or S) implanted in the extremely small atom probe specimens (needles of 100 nanometers thickness).
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Dates et versions

hal-01953256 , version 1 (12-12-2018)

Identifiants

  • HAL Id : hal-01953256 , version 1

Citer

Emmanuel Cadel, Philippe Pareige, M.-O. Ruault. Experimental simulation of spallation elements production in a 9Cr-1Mo martensitic steel 3D atom probe characterisation. Structural Materials for Hybrid Systems A Challenge in Metallurgy, Oct 2001, Paris, France. pp.Pr8/93-Pr8/102. ⟨hal-01953256⟩
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