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Quantitative Relationship Analysis Between Mechanical Properties and Microstructures of Al-7Si Aluminum Alloys by Artificial Neural Network
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1.National Engineering Research Center of Advanced Rolling Technology, University of Science and Technology Beijing, Beijing 100083, China;2.School of Materials Science and Engineering, Beihang University, Beijing 100191, China

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Fundamental Research Funds for the Central Universities (FRF-TP-19-083A1); Aviation Science Foundation Project (20181174001); Guangxi Special Funding Program for Innovation-Driven Development (GKAA17202008)

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    Abstract:

    An artificial neural network model with high accuracy and good generation ability was developed to predict and optimize the mechanical properties of Al-7Si alloys. The results show that Al-7Si alloys with tensile strength of 310~350 MPa, elongation of 3%~12%, and different microstructures are obtained by controlling the holding pressure (85~300 kPa) and cooling rate (1~10 k/s) of the casting process. The quantitative correlation relationships of the mechanical properties with microstructures of the secondary dendrite arm spacing (18.56~33.04 μm), area of eutectic Si phase (6.37~13.37 μm2), area fraction of porosity defects (0%~0.363%),and area fraction of maximum Fe-rich intermetallics (0%~0.06%) in the alloy were established. The individual and combined influences of these microstructure characteristics on the mechanical properties were simulated. Both tensile strength and elongation are inversely related to the above-mentioned structural characteristics, and the presence of defects and Fe-rich intermetallics have great adverse effects on the properties of the alloy. Therefore, narrowing the dendrite spacing (<20 μm), modifying the eutectic Si phase (<12 μm2), and controlling the porosity defects (<0.35%) and the morphology of the Fe-rich intermetallics are keys to prepare high-performance aluminum alloys.

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[Wu Xiaoyan, Zhang Huarui, Zhang Hu, Wu Yanxin, Mi Zhenli, Jiang Haitao. Quantitative Relationship Analysis Between Mechanical Properties and Microstructures of Al-7Si Aluminum Alloys by Artificial Neural Network[J]. Rare Metal Materials and Engineering,2021,50(7):2329~2336.]
DOI:10.12442/j. issn.1002-185X. E20200028

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History
  • Received:July 02,2020
  • Revised:September 01,2020
  • Adopted:September 18,2020
  • Online: August 09,2021
  • Published: July 31,2021