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Compressive property and energy absorption characteristic of interconnected porous Mg-Zn-Y alloys with adjusting Y addition

Journal of Magnesium and Alloys, ISSN: 2213-9567, Vol: 12, Issue: 1, Page: 171-185
2024
  • 10
    Citations
  • 0
    Usage
  • 4
    Captures
  • 1
    Mentions
  • 0
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    10
  • Captures
    4
  • Mentions
    1
    • News Mentions
      1
      • 1

Most Recent News

Jilin University Researchers Focus on Magnesium and Alloys (Compressive property and energy absorption characteristic of interconnected porous Mg-Zn-Y alloys with adjusting Y addition)

2024 MAR 12 (NewsRx) -- By a News Reporter-Staff News Editor at Mining & Minerals Daily -- Investigators publish new report on magnesium and alloys.

Article Description

In this study, interconnected porous Mg-2Zn- x Y alloys with different phase compositions were prepared by various Y additions ( x = 0.4, 3, and 6 wt. %) to adjust the compressive properties and energy absorption characteristics. Several characterization methods were then applied to identify the microstructure of the porous Mg-Zn-Y and describe the details of the second phase. Compressive tests were performed at room temperature (RT), 200°C, and 300°C to study the impact of the Y addition and testing temperature on the compressive properties of the porous Mg-Zn-Y. The experimental results showed that a high Y content promotes a microstructure refinement and increases the volume fraction of the second phase. When the Y content increases, different Mg-Zn-Y ternary phases appear: I-phase (Mg 3 Zn 6 Y), W-phase (Mg 3 Zn 3 Y 2 ), and LPSO phase (Mg 12 ZnY). When the Y content ranges between 0.4% and 6%, the compressive strength increases from 6.30 MPa to 9.23 MPa, and the energy absorption capacity increases from 7.33 MJ/m 3 to 10.97 MJ/m 3 at RT, which is mainly attributed to the phase composition and volume fraction of the second phase. However, the average energy absorption efficiency is independent of the Y content. In addition, the compressive deformation behaviors of the porous Mg-Zn-Y are altered by the testing temperature. The compressive strength and energy absorption capacity of the porous Mg-Zn-Y decrease due to the softening effect of the high temperature on the struts. The deformation behaviors at different temperatures are finally observed to reflect the failure mechanisms of the struts.

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