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Improvement of Hot Workability and Corrosion Resistance of Mg-3Al-1Zn-0.1Mn-0.2Ca Alloy Through Hot Deformation
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Institute of Engineering Technology, University of Science and Technology Beijing, Beijing 100086, China

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Fundamental Research Funds for the Central Universities (2302017FRF-IC-17-001, 2302018FRF-IC-18-004, 232019FRF-IC-19-018)

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    Abstract:

    The effect of efficiency of power dissipation on hot workability and corrosion behavior of AZ31 alloy was investigated. The results indicate that minor Ca-addition can significantly improve the hot workability and corrosion resistance due to grain refinement by facilitating recrystallization and formation of a more protective corrosion product layer doped with a trace amount of Ca(OH)2. The instability zone exhibits worse corrosion resistance than dynamic recrystallization (DRX) domain due to heterogeneous microstructure and obvious wedge cracks. Moreover, wedge cracks caused by flow localization band can serve as channels for the diffusion of aggressive Cl- and accelerate further corrosion of Mg matrix. The DRX domain with homogeneous fine grain microstructure and high efficiency of power dissipation obtained by hot deformation at 400 ℃/0.001 s-1 of Mg-Al-Zn-Mn-Ca alloy simultaneously performs superior corrosion resistance and good hot workability.

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[Wang Panpan, Jiang Haitao, Wang Yujiao, Zhang Yun, Yu Bowen, Cao Zhiming, Zhong Binbin. Improvement of Hot Workability and Corrosion Resistance of Mg-3Al-1Zn-0.1Mn-0.2Ca Alloy Through Hot Deformation[J]. Rare Metal Materials and Engineering,2021,50(6):1910~1918.]
DOI:10.12442/j. issn.1002-185X.20200361

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History
  • Received:May 26,2020
  • Revised:July 03,2020
  • Adopted:July 21,2020
  • Online: July 07,2021
  • Published: June 30,2021