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A statistical analysis of the elastic distortion and dislocation density fields in deformed crystals
Affiliation:1. Department of Mining and Nuclear Engineering, Missouri University of Science and Technology, Rolla, MO 65409-0450, USA;2. University of Kentucky, Center for Applied Energy Research, Lexington, KY 40511, USA;1. Chengdu University of Technology, Chengdu, Sichuan, China;2. BGP, CNPC, Zhuozhou, Hebei, China
Abstract:The statistical properties of the elastic distortion fields of dislocations in deforming crystals are investigated using the method of discrete dislocation dynamics to simulate dislocation structures and dislocation density evolution under tensile loading. Probability distribution functions (PDF) and pair correlation functions (PCF) of the simulated internal elastic strains and lattice rotations are generated for tensile strain levels up to 0.85%. The PDFs of simulated lattice rotation are compared with sub-micrometer resolution three-dimensional X-ray microscopy measurements of rotation magnitudes and deformation length scales in 1.0% and 2.3% compression strained Cu single crystals to explore the linkage between experiment and the theoretical analysis. The statistical properties of the deformation simulations are analyzed through determinations of the Nye and Kröner dislocation density tensors. The significance of the magnitudes and the length scales of the elastic strain and the rotation parts of dislocation density tensors are demonstrated, and their relevance to understanding the fundamental aspects of deformation is discussed.
Keywords:Discrete dislocation dynamics  Dislocation density tensor  Lattice rotation  3D X-ray microscopy
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