4.7 Article

Strain rate dependent deformation and failure behavior of laser welded DP780 steel joint under dynamic tensile loading

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.msea.2014.12.103

Keywords

Dual phase (DP) steel; Laser welding; Deformation behavior; Strain rate; Dynamic tensile loading; Digital image correlation (DIC)

Funding

  1. National Natural Science Foundation of China [51101029]
  2. Specialized Research Fund for the Doctoral Program of Higher Education of China [20110042120025]
  3. Fundamental Research Funds for the Central Universities of China [N130405002, N130410001]
  4. Natural Science Foundation of Liaoning Province [2014020034]

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Laser welded DP steel joints are used widely in the automotive industry for weight reduction. Understanding the deformation and fracture behavior of the base metal (BM) and its welded joint (WJ), especially at high strain rates, is critical for the design of vehicle structures. This paper is concerned with the effects of strain rate on the tensile properties, deformation and fracture behavior of the laser welded DP780 steel joint. Quasi-static and dynamic tensile tests were performed on the WJ and BM of the DP780 steel using an electromechanical universal testing machine and a high-speed tensile testing machine over a wide range of strain rate (0.0001-1142 s(-1)). The microstructure change and microhardness distribution of the DP780 steel after laser welding were examined. Digital image correlation (DIC) and high-speed photography were employed for the strain measurement of the DP780 WJ during dynamic tensile tests. The DP780 WJ is a heterogeneous structure with hardening in fusion zone (FZ) and inner heat-affected zone (HAZ), and softening in outer HAZ. The DP780 BM and WJ exhibit positive strain rate dependence on the YS and UTS, which is smaller at lower strain rates and becomes larger with increasing strain rate, while ductility in terms of total elongation (TE) tends to increase under dynamic loading. Laser welding leads to an overall reduction in the ductility of the DP780 steel. However, the WJ exhibits a similar changing trend of the ductility to that of the BM with respect to the strain rate over the whole strain rate range. As for the DP780 WJ, the distance of tensile failure location from the weld centerline decreases with increasing strain rate. The typical ductile failure characteristics of the DP780 BM and WJ do not change with increasing strain rate. DIC measurements reveal that the strain localization starts even before the maximum load is attained in the DP780 WJ and gradual transition from uniform strains to severely localized strains occurs at high strain rates. The diffuse necking of the DP780 WJ occurs earlier during the tensile deformation process at higher strain rates under dynamic loadings. (C) 2015 Elsevier B.V. All rights reserved.

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