Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7969137 | Materials Characterization | 2018 | 9 Pages |
Abstract
An austenite/ε-martensite dual-phase high-Mn damping steel was tensile deformed at elevated temperatures to conduct a comprehensive study about the effects of transformation-induced plasticity (TRIP), twinning-induced plasticity (TWIP), dynamic strain aging (DSA) and dislocation slip (DS) on its work hardening behavior and tensile properties. The results showed that the work hardening behavior of high-Mn damping steel can be divided into two stages. In stage-I, the main factor influencing the work hardening changed from γâ¯ââ¯Îµ transformation to DS as the deformation temperature was increased. In the second stage, the work hardening exponent and ultimate tensile strength were large when intense DSA occurred at 80â¯Â°C and 120â¯Â°C, although εâ¯ââ¯Î±â² transformation became more difficult at elevated temperatures. Tensile deformation at 200â¯Â°C promoted εâ¯ââ¯Î³ transformation, such that the work hardening exponent and ultimate elongation were significantly decreased. In the later stage of deformation at 260â¯Â°C, TWIP effect effectively enhanced the work hardening as deformation-induced εâ¯ââ¯Î±â² transformation occurred at low deformation temperatures.
Related Topics
Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
Xing Li, Liangliang Wei, Liqing Chen, Yang Zhao, Raja Devesh Kumar Misra,