4.7 Article

Superior mechanical properties and deformation mechanisms of a 304 stainless steel plate with gradient nanostructure

期刊

INTERNATIONAL JOURNAL OF PLASTICITY
卷 155, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijplas.2022.103336

关键词

Gradient nanostructured; Austenitic stainless steel; Strength-ductility synergy; Strain hardening capability; Strain incompatibility

资金

  1. National Key Research and Development Program of China [2017YFA0204401, 2017YFA0204403]
  2. CAS-HK Joint Laboratory of Nanomaterials and Mechanics, and Shenyang National Laboratory for Materials Science

向作者/读者索取更多资源

Spatially gradient microstructures have been found to enhance the strength-ductility synergy of austenitic stainless steels. In this study, a new approach called plate surface mechanical rolling treatment was used to produce a bulk gradient nanostructure in a 304 stainless steel plate. The resulting sample showed ultra-high yield strength and considerable uniform elongation in tensile tests. Analysis revealed that the mechanical incompatibilities and dislocation activities contributed to the outstanding strength-ductility synergy in the gradient nanostructured stainless steel.
Spatially gradient microstructures have shown a promising application in enhancing strengthductility synergy of engineering metals such as austenitic stainless steels. However, existing approaches are limiting in producing a thick gradient nanostructured (GNS) layer with a high strengthening capability, and the underlying deformation mechanisms are still not clear in GNS austenitic stainless steels. In this work, we developed a new approach, i.e., plate surface mechanical rolling treatment, to produce a bulk gradient nanostructure in a 304 stainless steel plate of -1.90 mm in thickness. Uniaxial tensile tests revealed that an ultra-high yield strength of -1073 MPa with a considerable uniform elongation of -21% was achieved in the GNS sample. Subsequently, the evolutions of microstructure, phase, microhardness, and local strain distribution were systematically studied in the GNS plate during tensile tests. The results demonstrated that the mechanical incompatibilities, relating with the gradient microstructure and martensiteenclosing-austenite domains, contribute to an extra strain-hardening capability, leading to the outstanding strength-ductility synergy in the GNS 304 stainless steel. Furthermore, analyses based on experimental observations and theoretical calculations revealed that dislocation activities, instead of deformation-induced martensite transformation, microstructure refinement, and twinning, play a dominant role in the strain-hardening mechanisms of the GNS plate during tension.

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