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On the plasticity mechanisms of lath martensitic steel SCIE SCOPUS

Title
On the plasticity mechanisms of lath martensitic steel
Authors
Jo, Kyoung-RaeSeo, Eun-JungSulistiyo, Dimas HandKim, Jin-KyungKim, Seong-WooDe Cooman, Bruno C.
Date Issued
2017-09
Publisher
ELSEVIER SCIENCE SA
Abstract
The plasticity mechanisms of press hardening steel with a fully lath martensite microstructure were examined experimentally by strain rate sensitivity measurements, repeated relaxation tests and internal friction measurements. The analysis of relaxation tests suggests that the micro-plasticity could be due to the motion of mobile non-screw dislocations, based on mobile dislocation exhaustion observed in the micro-plastic range. In the macro-plastic range, the plasticity is thought to be due to the generation of mobile screw dislocations. The solute carbon-dislocation interaction results in a negative strain rate sensitivity and a Snoek-Koster-Ke peak in the internal friction spectrum of the lath martensitic press hardening steel. The magnitude of the effective activation volume and its stress dependence indicate that plastic deformation is most likely controlled by screw dislocation motion by formation and lateral movement of kink pairs dragging solute carbon atom atmospheres. Both isotropic and kinematical hardening seem to play a role in the strain hardening behavior of lath martensitic steel.
Keywords
LOW-CARBON MARTENSITE; COLD-WORK PEAK; INTERNAL-FRICTION; FERROUS MARTENSITE; PROFILE ANALYSIS; SOLID-SOLUTION; ALPHA-IRON; STRENGTH; DISLOCATION; DIFFRACTION
URI
https://oasis.postech.ac.kr/handle/2014.oak/92019
DOI
10.1016/j.msea.2017.08.024
ISSN
0921-5093
Article Type
Article
Citation
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, vol. 704, page. 252 - 261, 2017-09
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DE COOMANBRUNO CDE, COOMAN BRUNO C
Ferrous & Energy Materials Technology
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