Atomistic simulations of dislocation behavior in a model FCC multicomponent concentrated solid solution alloy. (1st August 2017)
- Record Type:
- Journal Article
- Title:
- Atomistic simulations of dislocation behavior in a model FCC multicomponent concentrated solid solution alloy. (1st August 2017)
- Main Title:
- Atomistic simulations of dislocation behavior in a model FCC multicomponent concentrated solid solution alloy
- Authors:
- Rao, S.I.
Woodward, C.
Parthasarathy, T.A.
Senkov, O. - Abstract:
- Abstract: In this work, molecular statics and molecular dynamics simulations of a/2<110> dislocation behavior for a model FCC Co30 Fe16.67 Ni36.67 Ti16.67 alloy are discussed. It is shown that the single FCC phase is elastically stable in this alloy. Local stacking fault energies for the FCC alloy are determined as a function of average composition. The core structure of a/2<110> screw and edge dislocations in the FCC Co30 Fe16.67 Ni36.67 Ti16.67 alloy is shown to be planar with significant variations in the Shockley partial splitting along the dislocation line (factor of ∼3) due to concentration fluctuations. The correlation lengths for dislocation line fluctuations in this alloy are determined and discussed. The critical stress to move both a/2<110> screw and edge dislocations at 0 K in the model FCC Co30 Fe16.67 Ni36.67 Ti16.67 alloy is of the order of 0.0025–0.005μ, where μ is the (111) shear modulus, and is significantly higher than that of pure FCC Ni. Molecular dynamics simulation results on the critical stress to move a/2<110> screw and edge dislocations in the model FCC concentrated solid solution alloy show that it decreases with increasing temperature, similar to solid-solution strengthened FCC metals. These molecular dynamics simulation results are in reasonable agreement with experimental tensile yield strength data for an analogous FCC concentrated solid solution alloy. It is also shown that local fluctuations in the concentration of solutes has a strong effectAbstract: In this work, molecular statics and molecular dynamics simulations of a/2<110> dislocation behavior for a model FCC Co30 Fe16.67 Ni36.67 Ti16.67 alloy are discussed. It is shown that the single FCC phase is elastically stable in this alloy. Local stacking fault energies for the FCC alloy are determined as a function of average composition. The core structure of a/2<110> screw and edge dislocations in the FCC Co30 Fe16.67 Ni36.67 Ti16.67 alloy is shown to be planar with significant variations in the Shockley partial splitting along the dislocation line (factor of ∼3) due to concentration fluctuations. The correlation lengths for dislocation line fluctuations in this alloy are determined and discussed. The critical stress to move both a/2<110> screw and edge dislocations at 0 K in the model FCC Co30 Fe16.67 Ni36.67 Ti16.67 alloy is of the order of 0.0025–0.005μ, where μ is the (111) shear modulus, and is significantly higher than that of pure FCC Ni. Molecular dynamics simulation results on the critical stress to move a/2<110> screw and edge dislocations in the model FCC concentrated solid solution alloy show that it decreases with increasing temperature, similar to solid-solution strengthened FCC metals. These molecular dynamics simulation results are in reasonable agreement with experimental tensile yield strength data for an analogous FCC concentrated solid solution alloy. It is also shown that local fluctuations in the concentration of solutes has a strong effect on the effective cross-slip activation energy of screw dislocations in the random alloy. Graphical abstract: Structure of a/2[1-10] edge dislocation core under a) applied stresses of 0.00375, 0.004375μ and 0.005μ at 5 K, b) applied stresses of 0.00375 and 0.004375μ at 150 K, and c) applied stresses of 0.0025, 0.003125 and 0.00375μ at 300 K in a FCC Co30 Fe16.67 Ni36.67 Ti30 alloy. The core structure is shown for molecular dynamics steps of 0, 25, 50 and 100 ps. Atoms with a centrosymmetry parameter greater than 4 is shown in the plot. For clarity, core structure at timesteps of 0, 25, 50 and 100 ps are displaced by −2, −1, 0 and 1 periodic units, respectively, along the 'y' direction. … (more)
- Is Part Of:
- Acta materialia. Volume 134(2017)
- Journal:
- Acta materialia
- Issue:
- Volume 134(2017)
- Issue Display:
- Volume 134, Issue 2017 (2017)
- Year:
- 2017
- Volume:
- 134
- Issue:
- 2017
- Issue Sort Value:
- 2017-0134-2017-0000
- Page Start:
- 188
- Page End:
- 194
- Publication Date:
- 2017-08-01
- Subjects:
- Model FCC high entropy alloy -- Dislocation behavior -- Molecular dynamics -- Cross-slip -- Mechanical properties
Materials -- Periodicals
Materials science -- Periodicals
Materials -- Mechanical properties -- Periodicals
Metallurgy -- Periodicals
Chemistry, Inorganic -- Periodicals
620.112 - Journal URLs:
- http://www.sciencedirect.com/science/journal/13596454 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.actamat.2017.05.071 ↗
- Languages:
- English
- ISSNs:
- 1359-6454
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 0629.920000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
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