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Effects of grain size, orientation, and source density on dislocation configurational energy density

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Title: Effects of grain size, orientation, and source density on dislocation configurational energy density
Authors: Zheng, Z
Dunne, FPE
Item Type: Journal Article
Abstract: The effects of grain size, source density, and misorientations on the dislocation configurational energy area density are investigated using two-dimensional discrete dislocation plasticity. Grain boundaries are modeled as impenetrable to dislocations. The considered grain size ranges from 0.4μm2 to 8.0μm2 . The configurational energy area density displays a strong size dependence, similar to the stress response. Two sets of materials are considered, with low and high source/obstacle density. The high-source-density specimens exhibit negative configurational energy, implying that the dislocation structure is more stable than for isolated dislocations . The contribution of misorientation to the configurational energy density is analyzed using specimens with a single orientation or a checkerboard arrangement. The configurational energy density is found not only to depend on the dislocation spacing but also to be related to the local stress states. Low source densities lead to higher (positive) configurational energy densities.
Issue Date: 1-Aug-2019
Date of Acceptance: 22-May-2019
URI: http://hdl.handle.net/10044/1/72799
DOI: https://doi.org/10.1007/s11837-019-03547-z
ISSN: 1047-4838
Publisher: SPRINGER
Start Page: 2576
End Page: 2585
Journal / Book Title: JOM
Volume: 71
Issue: 8
Copyright Statement: © The Minerals, Metals & Materials Society 2019. The final publication is available at Springer via https://doi.org/10.1007/s11837-019-03547-z
Keywords: Science & Technology
Technology
Physical Sciences
Materials Science, Multidisciplinary
Metallurgy & Metallurgical Engineering
Mineralogy
Mining & Mineral Processing
Materials Science
FATIGUE-CRACK NUCLEATION
STORED ENERGY
PLASTICITY ANALYSIS
MULTISCALE MODEL
DYNAMICS
MICROSTRUCTURE
FLOW
POLYCRYSTALS
DEFORMATION
COMPRESSION
Science & Technology
Technology
Physical Sciences
Materials Science, Multidisciplinary
Metallurgy & Metallurgical Engineering
Mineralogy
Mining & Mineral Processing
Materials Science
FATIGUE-CRACK NUCLEATION
STORED ENERGY
PLASTICITY ANALYSIS
MULTISCALE MODEL
DYNAMICS
MICROSTRUCTURE
FLOW
POLYCRYSTALS
DEFORMATION
COMPRESSION
Materials
0913 Mechanical Engineering
0914 Resources Engineering and Extractive Metallurgy
0912 Materials Engineering
Publication Status: Published
Online Publication Date: 2019-05-30
Appears in Collections:Materials