Modeling high temperature anneal hardening in Au submicron pillar by developing coupled dislocation glide-climb model. (December 2017)
- Record Type:
- Journal Article
- Title:
- Modeling high temperature anneal hardening in Au submicron pillar by developing coupled dislocation glide-climb model. (December 2017)
- Main Title:
- Modeling high temperature anneal hardening in Au submicron pillar by developing coupled dislocation glide-climb model
- Authors:
- Liu, F.X.
Liu, Z.L.
Pei, X.Y.
Hu, J.Q.
Zhuang, Z. - Abstract:
- Abstract: Recent experimental studies have shown that metals at submicron scale may harden rather than soften after high temperature annealing, which is contrast to the typical behavior at macro level. In the present work, a coupled dislocation glide-climb model is developed to study the intrinsic mechanism of high temperature anneal hardening in the submicron pillar. Both thermally activated dislocation glide and climb are dealt with in the framework of three dimensional (3D) discrete dislocation dynamics (DDD). A modified discrete-continuous method (DCM) is proposed for solving dislocation climb. The climb rate is determined by the vacancy volumetric flux across the dislocation core which is obtained by solving vacancy diffusion equations using the finite element method (FEM). The vacancy concentrations are transferred between the solving domain of DDD and continuum FEM by a new localization method. Through carrying out coupled dislocation glide-climb simulation, remarkable softening effect after pre-straining and hardening effect after annealing is observed in the submicron pillars. Microstructure analysis demonstrates that the anneal hardening can be ascribed to two major aspects: (1) The dislocation climb during high temperature annealing promotes the dislocation annihilation, leading to a decrease of dislocation density; (2) The jogs, nucleated during annealing, which have very weak mobility, act as obstacles to dislocation glide motion and result in a decrease ofAbstract: Recent experimental studies have shown that metals at submicron scale may harden rather than soften after high temperature annealing, which is contrast to the typical behavior at macro level. In the present work, a coupled dislocation glide-climb model is developed to study the intrinsic mechanism of high temperature anneal hardening in the submicron pillar. Both thermally activated dislocation glide and climb are dealt with in the framework of three dimensional (3D) discrete dislocation dynamics (DDD). A modified discrete-continuous method (DCM) is proposed for solving dislocation climb. The climb rate is determined by the vacancy volumetric flux across the dislocation core which is obtained by solving vacancy diffusion equations using the finite element method (FEM). The vacancy concentrations are transferred between the solving domain of DDD and continuum FEM by a new localization method. Through carrying out coupled dislocation glide-climb simulation, remarkable softening effect after pre-straining and hardening effect after annealing is observed in the submicron pillars. Microstructure analysis demonstrates that the anneal hardening can be ascribed to two major aspects: (1) The dislocation climb during high temperature annealing promotes the dislocation annihilation, leading to a decrease of dislocation density; (2) The jogs, nucleated during annealing, which have very weak mobility, act as obstacles to dislocation glide motion and result in a decrease of mobile dislocation density. Compared with the pre-strained pillars, the combination effect of these two aspects significantly decreases the dislocation mobility and results in higher flow strength, which agrees well with the experiment data. Highlights: A modified discrete-continuous method (DCM) is proposed to couple dislocation climb and vacancy diffusion. A fully coupled glide-climb model is developed based on this modified DCM. Intrinsic mechanism of high temperature anneal hardening in the submicron pillar is studied by this new method. The climb motion during annealing promotes dislocation annihilation, leading to a decrease of dislocation density. Climb-induced jogs act as obstacles to glide, resulting in a decrease of mobile dislocation density. … (more)
- Is Part Of:
- International journal of plasticity. Volume 99(2017:Dec.)
- Journal:
- International journal of plasticity
- Issue:
- Volume 99(2017:Dec.)
- Issue Display:
- Volume 99 (2017)
- Year:
- 2017
- Volume:
- 99
- Issue Sort Value:
- 2017-0099-0000-0000
- Page Start:
- 102
- Page End:
- 119
- Publication Date:
- 2017-12
- Subjects:
- Dislocations -- Crystal plasticity -- Dislocation climb -- Dislocation dynamics -- Discrete-continuous model
Plasticity -- Periodicals
Plasticité -- Périodiques
Plasticity
Periodicals
620.11233 - Journal URLs:
- http://www.sciencedirect.com/science/journal/07496419 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.ijplas.2017.09.003 ↗
- Languages:
- English
- ISSNs:
- 0749-6419
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4542.470000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 4749.xml