Modelling the Deformation, Recrystallization and Microstructure-Related Properties in Metals

In the special issue related to Modelling the Deformation, Recrystallization and Microstructure-Related Properties in Metals, we presented a wide spectrum of articles dealing with modelling of microstructural aspects involved in deformation and recrystallization as well as simulation of microstructu...

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Bibliographic Details
Other Authors: Sidor, Jurij J. (Editor)
Format: Electronic Book Chapter
Language:English
Published: Basel, Switzerland MDPI - Multidisciplinary Digital Publishing Institute 2021
Subjects:
Online Access:DOAB: download the publication
DOAB: description of the publication
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520 |a In the special issue related to Modelling the Deformation, Recrystallization and Microstructure-Related Properties in Metals, we presented a wide spectrum of articles dealing with modelling of microstructural aspects involved in deformation and recrystallization as well as simulation of microstructure-based and texture-based properties in various metals. The latest advances in the theoretical interpretation of mesoscopic transformations based on experimental observations were partially discussed in the current special issue. The studies dealing with the modelling of structure-property relationships are likewise analyzed in the present collection of manuscripts. The contributions in the current collection evidently demonstrate that the properties of metallic materials are microstructure dependent and therefore the thermomechanical processing (TMP) of the polycrystalline aggregates should be strictly controlled to guarantee the desired bunch of qualities. Given this, the assessment of microstructure evolution in metallic systems is of extraordinary importance. Since the trial-error approach is a time-consuming and quite expensive methodology, the materials research community tends to employ a wide spectrum of computational approaches to simulate each chain of TMP and tune the processing variables to ensure the necessary microstructural state which will provide desired performance in the final product. Although many hidden facets of various technological processes and related microstructural changes were revealed in the submitted works by employing advanced computational approaches, nevertheless, the contributions collected in this issue clearly show that further efforts are required in the field of modelling to understand the complexity of material's world. The final goal of modelling efforts might be a development of a comprehensive model, which will be capable of describing many aspects of microstructure evolution during thermomechanical processing. 
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650 7 |a Technology: general issues  |2 bicssc 
653 |a magnesium alloy 
653 |a deformation mechanisms 
653 |a plastic deformation 
653 |a polycrystal plasticity modeling 
653 |a FeMnSiCrNi alloy 
653 |a shape memory alloy 
653 |a cellular automaton 
653 |a dynamic recrystallization 
653 |a boron steel 
653 |a tailored hot stamping 
653 |a phase transition 
653 |a springback 
653 |a 300M steel 
653 |a hot processing map 
653 |a thermal compression 
653 |a microstructure evolution 
653 |a in situ experiments 
653 |a cold rolling 
653 |a deformation flow 
653 |a texture simulation 
653 |a high-strength steel 
653 |a hot stamping 
653 |a martensitic transformation 
653 |a finite element analysis 
653 |a constitutive equation 
653 |a GH4169 superalloy 
653 |a microstructure evolution simulation 
653 |a multidirectional forging 
653 |a aluminum 
653 |a cross-rolling 
653 |a texture 
653 |a earing 
653 |a Cu-Al-Ni monocrystalline alloy 
653 |a reversible martensitic transformations 
653 |a thermo-cyclic treatment under load 
653 |a physical characterization and structural characterization 
653 |a n/a 
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