Investigation of microstructure evolution on different planes in laser welding of aluminum alloy

Author:

Ai Yuewei12,Han Shibo12ORCID,Yan Yachao12

Affiliation:

1. School of Traffic and Transportation Engineering, Central South University 1 , Changsha 410075, People’s Republic of China

2. Key Laboratory of Traffic Safety on Track of Ministry of Education, Central South University 2 , Changsha 410075, People’s Republic of China

Abstract

The solidification behavior of a molten pool is a critical factor affecting the mechanical properties of welded joints. This paper develops a multi-scale model combining the macroscale heat transfer and fluid flow model with the microscale phase field model for calculating the microstructure evolution on two different planes that are perpendicular to the thickness direction in the laser welding of the aluminum alloy. To obtain the time-varying temperature gradient (G) and solidification velocity (R) used in the simulation, a transient solidification conditions model is proposed. These models are validated by comparing the simulation results with the experimental results. The results indicate that G decreases, while R increases during solidification process. G/R decreases on both two planes, which results in the transformation of the microstructure from planar to cellular and then to the columnar grain. Additionally, it is found that the primary dendrite arm spacing of columnar grains on the lower plane is smaller, which is related to lower G−1/2R−1/4.

Funder

National Natural Science Foundation of China

Innovation-Driven Project of Central South University

Fundamental Research Funds for Central Universities of the Central South University

Publisher

Laser Institute of America

Subject

Instrumentation,Biomedical Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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