• English
    • العربية
  • العربية
  • Login
  • QU
  • QU Library
  •  Home
  • Communities & Collections
View Item 
  •   Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Faculty Contributions
  • College of Engineering
  • Mechanical & Industrial Engineering
  • View Item
  • Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Faculty Contributions
  • College of Engineering
  • Mechanical & Industrial Engineering
  • View Item
  •      
  •  
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Microstructure, thermal and mechanical response of AZ51/Al2O3 nanocomposite with 2 wt.% Ca addition

    Thumbnail
    View/Open
    Publisher version (You have accessOpen AccessIcon)
    Publisher version (Check access options)
    Check access options
    Date
    2013-09
    Author
    Alam, Md. Ershadul
    Hamouda, Abdel Magid Salem
    Gupta, Manoj
    Metadata
    Show full item record
    Abstract
    In the present study, new AZ51/Al2O3–2Ca magnesium nanocomposite was successfully synthesized by simultaneously adding 2wt.% aluminum, 2wt.% Ca and 1.5vol.% nanosized Al2O3 (50nm) into AZ31 matrix using a disintegrated melt deposition (DMD) technique. AZ51/Al2O3 nanocomposite was developed following the same processing route except adding Ca. Composite samples were then subsequently hot extruded at 400°C and characterized. Microstructural characterization studies revealed equiaxed grain size, reasonably uniform distribution of intermetallics and nanoparticulates in the matrix and minimal porosity. Results also showed that the addition of Ca into AZ51/Al2O3 nanocomposite helped to reduce the average grain size and introduced (Mg,Al)2Ca second phase. Physical properties characterization revealed that addition of Ca reduced the coefficient of thermal expansion (CTE) when compared to Ca free nanocomposite. Ca addition also assisted in improving overall mechanical properties including microhardness, 0.2% yield strength, ultimate tensile strength, and work of fracture while the ductility was compromised.
    URI
    http://www.sciencedirect.com/science/article/pii/S0261306913000800
    DOI/handle
    http://dx.doi.org/10.1016/j.matdes.2013.01.057
    http://hdl.handle.net/10576/4830
    Collections
    • Mechanical & Industrial Engineering [‎1461‎ items ]

    entitlement


    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Home

    Submit your QU affiliated work

    Browse

    All of Digital Hub
      Communities & Collections Publication Date Author Title Subject Type Language Publisher
    This Collection
      Publication Date Author Title Subject Type Language Publisher

    My Account

    Login

    Statistics

    View Usage Statistics

    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Video