Title of article :
Modeling of irradiation hardening of polycrystalline materials
Author/Authors :
Li، نويسنده , , Dongsheng and Zbib، نويسنده , , Hussein and Garmestani، نويسنده , , Hamid and Sun، نويسنده , , Xin and Khaleel، نويسنده , , Mohammad، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2011
Pages :
6
From page :
2496
To page :
2501
Abstract :
High energy particle irradiation of structural polycrystalline materials usually produces irradiation hardening and embrittlement. The development of predictive capability for the influence of irradiation on mechanical behavior is very important in materials design for next-generation reactors. A multiscale approach was implemented in this work to predict irradiation hardening of iron based structural materials. In the microscale, dislocation dynamics models were used to predict the critical resolved shear stress from the evolution of local dislocation and defects. In the macroscale, a viscoplastic self-consistent model was applied to predict the irradiation hardening in samples with changes in texture. The effects of defect density and texture were investigated. Simulated evolution of yield strength with irradiation agrees well with the experimental data of irradiation strengthening of stainless steel 304L, 316L and T91. This multiscale modeling can provide a guidance tool in performance evaluation of structural materials for next-generation nuclear reactors.
Keywords :
Defect density , multiscale modeling , Texture , polycrystalline materials , Irradiation hardening
Journal title :
Computational Materials Science
Serial Year :
2011
Journal title :
Computational Materials Science
Record number :
1689044
Link To Document :
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