4.7 Article

Multiphase-field simulation of grain coalescence behavior and its effects on solidification cracking susceptibility during welding of Al-Cu alloys

Journal

MATERIALS & DESIGN
Volume 211, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.matdes.2021.110146

Keywords

Grain coalescence; Solidification cracking susceptibility; Welding; Al-Cu alloys; Multiphase-field model

Funding

  1. National Natural Science Foundation of China [52075201, 51861165202]
  2. Postdoctoral Science Foundation of China [2020M682407]
  3. opening project of State Key Laboratory of Digital Manufacturing Equipment and Technology (HUST) [DMETKF2018001]

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This study investigated the grain coalescence behavior during welding of aluminum alloys using the multiphase-field approach, revealing the effects of Cu concentration and misorientation angles on solidification cracking susceptibility. It was found that Cu concentration affects the morphology of microstructure during solidification, while high misorientation angles suppress grain coalescence and increase the susceptibility to solidification cracking. Visual presentation of grain coalescence behavior during solidification was achieved through simulation in this study.
Solidification cracking (SC) is highly related to the grain coalescence behavior during welding of aluminum alloys. In this study, the grain coalescence behavior and its effects on solidification cracking susceptibility (SCS) were investigated using the multiphase-field approach. Why SCS is high at a certain value of Cu concentration and why SC often occurs at high misorientation angles are revealed. Firstly, nominal compositions of Cu affect the morphology of microstructure during solidification. The crystals morphology is cellular at the low concentration, while the crystals are dendritic at the high concentration in the columnar grain region. The SCS of cellular grains is higher than dendrites due to the high volume fraction of solid when the grains/subgrains bridge. Under the action of tensile stress, the scarce residual liquid phase cannot backfill in time. Secondly, high misorientation angles make grain boundary energy in the solid-solid interface (sigma(ss)) is high. It is found that sigma(ss) suppresses the grain coalescence and increases the SCS of alloys. This leads the emergence of SC at high misorientation angles during welding. In this study, the coalescence behavior of grains during solidification is visually presented by simulation and the coherency point at the last-stage solidification is achieved accurately. (C) 2021 The Author(s). Published by Elsevier Ltd.

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