Corrugation Reinforced Architectured Materials by Direct Laser Hardening: A Study of Geometrically Induced Work Hardening in Steel

Author:

Wang Zhige1ORCID,Bouaziz Olivier23ORCID,Dirrenberger Justin1ORCID,Lapouge Pierre1ORCID

Affiliation:

1. PIMM, Arts et Metiers, CNRS, Cnam HESAM Université 75013 Paris France

2. Laboratoire d’Etude des Microstructures et de Mécanique des Matériaux (LEM3) CNRS Université de Lorraine, Arts et Métiers 57000 Metz France

3. Laboratoire d’Excellence DAMAS CS 50840 54011 Nancy Cedex France

Abstract

Improving the strength‐to‐ductility trade‐off remains the prime driving force for the development of advanced high‐strength steel. Traditionally research breakthroughs are focused on the microstructure and relative phase composition. Herein, laser hardening is applied to ductile ferritic steel to introduce straight and corrugated martensitic reinforcements, effectively generating architectured steel sheets. Tensile behavior of laser‐architectured samples is studied both using finite‐element method simulation and mechanical testing to reveal the effect of laser‐induced corrugations on strength and necking strain. The results show that with the same reinforced volume fraction of 24%, an increase in corrugation height/period leads to a gain in necking strain with a loss in yield strength and ultimate tensile stress. This beneficial effect on necking strain is due to the corrugation unbending process which introduces so‐called geometric work hardening during tension. Extended simulations are carried out on various corrugation heights/periods and the evolution trends of ultimate tensile strength and necking change with different reinforced volumes. This study proposes a perspective on corrugation‐reinforced architectured materials. Corrugation parameters can be chosen to tailor the mechanical behavior of laser‐architectured materials.

Funder

Agence Nationale de la Recherche

Publisher

Wiley

Subject

Materials Chemistry,Metals and Alloys,Physical and Theoretical Chemistry,Condensed Matter Physics

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