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Damping Properties of Aluminum/ Duralumin Multi-Layered Graded Structures Fabricated by Hot Rolling

Received: 13 March 2017    Accepted: 23 March 2017    Published: 28 November 2017
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Abstract

This study aims to fabricate aluminum (A1050)/ duralumin (A2017) multi-layered structures with interface composition gradient by hot rolling, and investigate their nanoindentation properties, and macro-mechanical property such as damping. 2- and 6-layered aluminum/ duralumin graded structures with asymmetric lay-ups from one side of aluminum to another side of duralumin have been fabricated, which suffer from three different heat-treatments such as (1) as-rolled (no heat-treatment), (2) annealed at 400°C and (3) homogenized at 500°C followed by water quenching and aging (T4 heat treatment). Nanoindentation demonstrated higher hardness and elastic modulus correspond to higher Cu content in annealed and aged samples. Duralumin in annealed samples shows much lower hardness and elastic modulus than those in as-rolled and aged ones. For damping properties, 2-layered graded structures show higher values than 6-layered graded structures, which are lower than single layers of aluminum.

Published in American Journal of Physical Chemistry (Volume 6, Issue 5)
DOI 10.11648/j.ajpc.20170605.13
Page(s) 97-102
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Multi-Layered Structures, Functionally Graded Materials (FGMs), Internal Friction, Nanoindentation

References
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[3] X. P. Zhang, T. H. Yang, J. Q. Liu, X. F. Luo and J. T. Wang, “Mechanical properties of an Al/Mg/Al trilaminated composite fabricated by hot rolling,” J Mater Sci, 2010, vol. 45, pp. 3457-3464.
[4] L. Chen, B. Jha, Z. Yang, G. G. Xia, J. W. Stevenson and P. Singh, “Clad Metals by Roll Bonding for SOFC Interconnects,” J Mater Eng Perform, 2006, vol. 15, pp. 399-403.
[5] P. Mallesham, A. A. Gokhale and A. Dutta, “Interface microstructure and bond shear strength of aluminum alloy AA8090/AA7072 roll clad sheets,” J Mater Sci Lett, 2003, vol. 22, pp. 1793-1795.
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[9] R. Gibson, “Damping characteristics of composite materials and structures,” J. Materials Engineering and Performance, 1992, vol. 1, pp. 11-20.
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[13] M. Kameyama, M. Arai, “Optimal design of symmetrically laminated plates for damping characteristics using lamination parameters,” Composite Structures, 2015, vol. 132, pp. 885-897.
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Cite This Article
  • APA Style

    Hideaki Tsukamoto. (2017). Damping Properties of Aluminum/ Duralumin Multi-Layered Graded Structures Fabricated by Hot Rolling. American Journal of Physical Chemistry, 6(5), 97-102. https://doi.org/10.11648/j.ajpc.20170605.13

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    ACS Style

    Hideaki Tsukamoto. Damping Properties of Aluminum/ Duralumin Multi-Layered Graded Structures Fabricated by Hot Rolling. Am. J. Phys. Chem. 2017, 6(5), 97-102. doi: 10.11648/j.ajpc.20170605.13

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    AMA Style

    Hideaki Tsukamoto. Damping Properties of Aluminum/ Duralumin Multi-Layered Graded Structures Fabricated by Hot Rolling. Am J Phys Chem. 2017;6(5):97-102. doi: 10.11648/j.ajpc.20170605.13

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  • @article{10.11648/j.ajpc.20170605.13,
      author = {Hideaki Tsukamoto},
      title = {Damping Properties of Aluminum/ Duralumin Multi-Layered Graded Structures Fabricated by Hot Rolling},
      journal = {American Journal of Physical Chemistry},
      volume = {6},
      number = {5},
      pages = {97-102},
      doi = {10.11648/j.ajpc.20170605.13},
      url = {https://doi.org/10.11648/j.ajpc.20170605.13},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajpc.20170605.13},
      abstract = {This study aims to fabricate aluminum (A1050)/ duralumin (A2017) multi-layered structures with interface composition gradient by hot rolling, and investigate their nanoindentation properties, and macro-mechanical property such as damping. 2- and 6-layered aluminum/ duralumin graded structures with asymmetric lay-ups from one side of aluminum to another side of duralumin have been fabricated, which suffer from three different heat-treatments such as (1) as-rolled (no heat-treatment), (2) annealed at 400°C and (3) homogenized at 500°C followed by water quenching and aging (T4 heat treatment). Nanoindentation demonstrated higher hardness and elastic modulus correspond to higher Cu content in annealed and aged samples. Duralumin in annealed samples shows much lower hardness and elastic modulus than those in as-rolled and aged ones. For damping properties, 2-layered graded structures show higher values than 6-layered graded structures, which are lower than single layers of aluminum.},
     year = {2017}
    }
    

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    T1  - Damping Properties of Aluminum/ Duralumin Multi-Layered Graded Structures Fabricated by Hot Rolling
    AU  - Hideaki Tsukamoto
    Y1  - 2017/11/28
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    N1  - https://doi.org/10.11648/j.ajpc.20170605.13
    DO  - 10.11648/j.ajpc.20170605.13
    T2  - American Journal of Physical Chemistry
    JF  - American Journal of Physical Chemistry
    JO  - American Journal of Physical Chemistry
    SP  - 97
    EP  - 102
    PB  - Science Publishing Group
    SN  - 2327-2449
    UR  - https://doi.org/10.11648/j.ajpc.20170605.13
    AB  - This study aims to fabricate aluminum (A1050)/ duralumin (A2017) multi-layered structures with interface composition gradient by hot rolling, and investigate their nanoindentation properties, and macro-mechanical property such as damping. 2- and 6-layered aluminum/ duralumin graded structures with asymmetric lay-ups from one side of aluminum to another side of duralumin have been fabricated, which suffer from three different heat-treatments such as (1) as-rolled (no heat-treatment), (2) annealed at 400°C and (3) homogenized at 500°C followed by water quenching and aging (T4 heat treatment). Nanoindentation demonstrated higher hardness and elastic modulus correspond to higher Cu content in annealed and aged samples. Duralumin in annealed samples shows much lower hardness and elastic modulus than those in as-rolled and aged ones. For damping properties, 2-layered graded structures show higher values than 6-layered graded structures, which are lower than single layers of aluminum.
    VL  - 6
    IS  - 5
    ER  - 

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Author Information
  • Department of Mechanical Engineering, Faculty of Science and Engineering, Hosei University, Tokyo, Japan

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