3D printing graphene-aluminum nanocomposites

被引:0
|
作者
Hu, Zengrong [1 ]
Chen, Feng [2 ]
Xu, Jiale [3 ]
Nian, Qiong [4 ]
Lin, Dong [5 ]
Chen, Changjun [6 ]
Zhu, Xing [7 ]
Chen, Yao [6 ]
Zhang, Min [6 ]
机构
[1] School of Rail Transportation, Soochow University, Suzhou,Jiangsu,215131, China
[2] College of Mechanical and Electrical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing,Jiangsu,210016, China
[3] School of Mechanical Engineering, Jiangsu University, Jiangsu,212013, China
[4] Department of Mechanical Engineering, Arizona State University, Tempe,AZ,85281, United States
[5] Department of Industrial and Manufacturing Systems Engineering, Kansas State University, Manhattan,KS,66506, United States
[6] College of Mechanical and Electrical Engineering, Soochow University, Suzhou,Jiangsu,215131, China
[7] Testing and Analysis Center, Soochow University, Suzhou,Jiangsu,215123, China
关键词
3D printers - Carbides - Scanning electron microscopy - Spectrometers - X ray diffraction - Aluminum compounds - Fabrication - Reinforcement - Vickers hardness - Ball milling - Nanocomposites - High resolution transmission electron microscopy - Microstructure - Sintering - X ray photoelectron spectroscopy - Metallic matrix composites;
D O I
暂无
中图分类号
学科分类号
摘要
This report studies the microstructure and property of graphene reinforced aluminum matrix composites (Gr-Al) as fabricated by laser 3D printing. Recently, 3D printing was under extensive exploration, while graphene has been considered as one of the most promising reinforcement fillers for metal matrix composites (MMCs) due to its mechanical robustness. Thus, it is of great importance to assess the efficacy of using 3D printing to fabricate the graphene reinforced MMCs. Herein, the mixture of graphene and aluminum powders was prepared by ball milling with various graphene weight ratios, and then sintered by the selective laser melting to fabricate bulk Gr-Al composites. Scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), energy dispersive spectrometer (EDS), and Raman spectroscopy were used to characterize the microstructures and components of the nanocomposites. The surface and cross-sectional SEM images, XRD patterns, and Raman spectrum verified not only the survival but also the distribution of graphene in Gr-Al composites. High resolution TEM (HRTEM) images further revealed the co-existence of aluminum, graphene and aluminum carbide. The Vickers hardness and nano-indentation tests showed the hardness of the composites was greatly enhanced. Compared with pure aluminum counterpart, the Vickers hardness of the best composite sample achieves a 75.3% increase. All the experimental results suggest the efficacy of laser 3D printing technology to fabricate Gr-Al composites. © 2018 Elsevier B.V.
引用
收藏
页码:269 / 276
相关论文
共 50 条
  • [1] 3D printing graphene-aluminum nanocomposites
    Hu, Zengrong
    Chen, Feng
    Xu, Jiale
    Nian, Qiong
    Lin, Dong
    Chen, Changjun
    Zhu, Xing
    Chen, Yao
    Zhang, Min
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2018, 746 : 269 - 276
  • [2] Graphene-aluminum nanocomposites
    Bartolucci, Stephen F.
    Paras, Joseph
    Rafiee, Mohammad A.
    Rafiee, Javad
    Lee, Sabrina
    Kapoor, Deepak
    Koratkar, Nikhil
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2011, 528 (27): : 7933 - 7937
  • [3] Mechanical characterization of graphene-aluminum nanocomposites
    Singh, Pradeep Kumar
    [J]. MATERIALS TODAY-PROCEEDINGS, 2021, 44 : 2304 - 2308
  • [4] 3D printing of multifunctional nanocomposites
    Campbell, Thomas A.
    Ivanova, Olga S.
    [J]. NANO TODAY, 2013, 8 (02) : 119 - 120
  • [5] Graphene (GNP) reinforced 3D printing nanocomposites: An advanced structural perspective
    Iqbal, A. K. M. Asif
    Harcen, Clement Stefano
    Haque, Mainul
    [J]. HELIYON, 2024, 10 (07)
  • [6] 3D printing of graphene-based polymeric nanocomposites for biomedical applications
    Magda Silva
    Isabel S. Pinho
    José A. Covas
    Natália M. Alves
    Maria C. Paiva
    [J]. Functional Composite Materials, 2 (1):
  • [7] Mechanical anisotropy of graphene nanocomposites induced by graphene alignment during stereolithography 3D printing
    Kalaimani Markandan
    Ian P. Seetoh
    Chang Quan Lai
    [J]. Journal of Materials Research, 2021, 36 : 4262 - 4274
  • [8] Mechanical anisotropy of graphene nanocomposites induced by graphene alignment during stereolithography 3D printing
    Markandan, Kalaimani
    Seetoh, Ian P.
    Lai, Chang Quan
    [J]. JOURNAL OF MATERIALS RESEARCH, 2021, 36 (21) : 4262 - 4274
  • [9] 3D Printing of Graphene Aerogels
    Zhang, Qiangqiang
    Zhang, Feng
    Medarametla, Sai Pradeep
    Li, Hui
    Zhou, Chi
    Lin, Dong
    [J]. SMALL, 2016, 12 (13) : 1702 - 1708
  • [10] 3D printing of cellulose nanocrystals and nanocomposites
    Siqueira, Gilberto
    Kokkinis, Dimitri
    Libanori, Rafael
    Hausmann, Michael
    Gladman, Sydney
    Neels, Antonia
    Tingaut, Philippe
    Zimmermann, Tanja
    Lewis, Jennifer
    Studart, Andre R.
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 253