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Disconnection description of triple-junction motion
by
Srolovitz, David J.
, Wei, Chaozhen
, Xiang, Yang
, Thomas, Spencer L.
, Han, Jian
in
Computer simulation
/ Continuum modeling
/ Coupling (molecular)
/ Crystal defects
/ Dislocation
/ Dislocations
/ Engineering
/ Evolution
/ Feature extraction
/ Grain boundaries
/ Grain growth
/ Mathematical models
/ Microstructure
/ Migration
/ Molecular dynamics
/ Physical Sciences
/ PNAS Plus
2019
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Disconnection description of triple-junction motion
by
Srolovitz, David J.
, Wei, Chaozhen
, Xiang, Yang
, Thomas, Spencer L.
, Han, Jian
in
Computer simulation
/ Continuum modeling
/ Coupling (molecular)
/ Crystal defects
/ Dislocation
/ Dislocations
/ Engineering
/ Evolution
/ Feature extraction
/ Grain boundaries
/ Grain growth
/ Mathematical models
/ Microstructure
/ Migration
/ Molecular dynamics
/ Physical Sciences
/ PNAS Plus
2019
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Disconnection description of triple-junction motion
by
Srolovitz, David J.
, Wei, Chaozhen
, Xiang, Yang
, Thomas, Spencer L.
, Han, Jian
in
Computer simulation
/ Continuum modeling
/ Coupling (molecular)
/ Crystal defects
/ Dislocation
/ Dislocations
/ Engineering
/ Evolution
/ Feature extraction
/ Grain boundaries
/ Grain growth
/ Mathematical models
/ Microstructure
/ Migration
/ Molecular dynamics
/ Physical Sciences
/ PNAS Plus
2019
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Journal Article
Disconnection description of triple-junction motion
2019
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Overview
Grain boundary (GB) migration in polycrystalline materials necessarily implies the concurrent motion of triple junctions (TJs), the lines along which three GBs meet. Today, we understand that GB migration occurs through the motion of disconnections in the GB plane (line defects with both step and dislocation character). We present evidence from molecular dynamics grain growth simulations and idealized microstructures that demonstrates that TJ motion and GB migration are coupled through disconnection dynamics. Based on these results, we develop a theory of coupled GB/TJ migration and use it to develop a physically based, disconnection mechanism-specific continuum model of microstructure evolution. The continuum approach provides a means of reducing the complexity of the discrete disconnection picture to extract the features of disconnection dynamics that are important for microstructure evolution. We implement this model in a numerical, continuum simulation and demonstrate that it is capable of reproducing the molecular dynamics (MD) simulation results.
Publisher
National Academy of Sciences
Subject
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