Development of multifunctional nanocomposites with 3-D printing additive manufacturing and low graphene loading

被引:59
|
作者
Yamamoto, Brennan E. [1 ]
Trimble, A. Zachary [1 ]
Minei, Brenden [2 ]
Nejhad, Mehrdad N. Ghasemi [2 ]
机构
[1] Univ Hawaii Manoa, Dept Mech Engn, Renewable Energy Ind Automat & Precis Engn Labs, 2540 Dole St,Holmes Hall 302, Honolulu, HI 96822 USA
[2] Univ Hawaii Manoa, Dept Mech Engn, Hawaii Nanotechnol Labs, Honolulu, HI 96822 USA
关键词
3-D printing; additive manufacturing; ABS; graphene oxide; nanocomposites; tensile properties; strength and toughness; MECHANICAL-PROPERTIES; ORIENTATION; COMPOSITES; STRENGTH; FRACTURE;
D O I
10.1177/0892705718759390
中图分类号
TB33 [复合材料];
学科分类号
摘要
Fused filament fabrication (FFF) or fused deposition modeling is an additive manufacturing (AM) process commonly used for geometric modeling and rapid prototyping of parts called three-dimensional (3-D) printing. Commonly used thermoplastic materials in FFF 3-D printing AM are acrylonitrile butadiene styrene (ABS), polylactic acid (PLA), and polybutylene terephthalate (PBT). However, these materials exhibit relatively low strength and toughness. Therefore, it is desirable to improve various properties of thermoplastics in 3-D printing AM by employing nanotechnology. The combination of 3-D printing and nanotechnology opens new venues for the manufacture of 3-D engineered materials with optimized properties and multifunctionality (e.g. mechanical, electrical, and thermal properties). Hence, in this work, the multifunctional property improvement effects of graphene oxide (GO) on thermoplastic materials suitable for 3-D printing AM are investigated. Low loading of GO with carboxyl and hydroxyl surface functional groups is incorporated into thermoplastic materials suitable for 3-D printing AM by a special mixing technique. ABS is chosen in this study due to its availability. Graphene nanosheets are employed to improve the properties of the developed nanocomposites by 3-D printing AM. GO is chosen to improve the dispersion of graphene nanosheets into the thermoplastic system to increase their interfacial adhesion. A multifunctional property improvement is observed in the developed nanocomposite with less than 0.1 wt% GO. Employing ASTM standard tests, it was found that at a very small loading of 0.06% by weight, GO could improve the properties of the thermoplastic in terms of strength, strain-to-failure, and toughness, while maintaining the stiffness, rendering the developed nanocomposites suitable for various applications of static and dynamic loading. GOs are now commercially available at low prices. At such low loadings, these graphene-type materials become economically feasible components of nanocomposites.
引用
收藏
页码:383 / 408
页数:26
相关论文
共 50 条
  • [41] Exfoliated graphene/thermoplastic elastomer nanocomposites with improved wear properties for 3D printing
    Jeon, Hyerin
    Kim, Youn
    Yu, Woong-Ryeol
    Lee, Jea Uk
    COMPOSITES PART B-ENGINEERING, 2020, 189 (189)
  • [42] A comprehensive review: metrology in additive manufacturing and 3D printing technology
    Hitesh D. Vora
    Subrata Sanyal
    Progress in Additive Manufacturing, 2020, 5 : 319 - 353
  • [43] Additive Manufacturing with 3D Printing: Progress from Bench to Bedside
    Rahman, Ziyaur
    Ali, Sogra F. Barakh
    Ozkan, Tanil
    Charoo, Naseem A.
    Reddy, Indra K.
    Khan, Mansoor A.
    AAPS JOURNAL, 2018, 20 (06):
  • [44] Additive Manufacturing of Electric Circuits Based on Graphene Polymer Nanocomposites
    Staudigel, Christian
    Hoffmann, Matthias
    Schwalme, Georg
    Mohr-Matuschek, Ulrich
    Heidemeyer, Peter
    Bastian, Martin
    2016 12TH INTERNATIONAL CONGRESS MOLDED INTERCONNECT DEVICES (MID), 2016, : 8 - 12
  • [45] A comprehensive review: metrology in additive manufacturing and 3D printing technology
    Vora, Hitesh D.
    Sanyal, Subrata
    PROGRESS IN ADDITIVE MANUFACTURING, 2020, 5 (04) : 319 - 353
  • [46] Biomonitoring of Metal Exposure During Additive Manufacturing (3D Printing)
    Ljunggren, Stefan A.
    Karlsson, Helen
    Stahlbom, Bengt
    Krapi, Blerim
    Fornander, Louise
    Karlsson, Lovisa E.
    Bergstrom, Bernt
    Nordenberg, Eva
    Ervik, Torunn K.
    Graff, Pal
    SAFETY AND HEALTH AT WORK, 2019, 10 (04) : 518 - 526
  • [47] Multifunctional PLA/CNTs nanocomposites hybrid 3D printing integrating material extrusion and CO2 laser cutting
    Petousis, Markos
    Ninikas, Konstantinos
    Vidakis, Nectarios
    Mountakis, Nikos
    Kechagias, John D.
    JOURNAL OF MANUFACTURING PROCESSES, 2023, 86 : 237 - 252
  • [48] Additive Manufacturing Technologies Used for 3D Metal Printing in Dentistry
    Revilla-León M.
    Özcan M.
    Current Oral Health Reports, 2017, 4 (3) : 201 - 208
  • [49] Additive Manufacturing in Architecture: 3D Printing Solutions for Vaulted Spaces
    Graziano, Angelo Vito
    Cavaliere, Ilaria
    Costantino, Dario
    Fallacara, Giuseppe
    Parisi, Nicola
    PROCEEDINGS OF THE 75TH RILEM ANNUAL WEEK 2021, 2023, 40 : 407 - 414
  • [50] Review of Wire Arc Additive Manufacturing for 3D Metal Printing
    Li, Johnnie Liew Zhong
    Alkahari, Mohd Rizal
    Rosli, Nor Ana Binti
    Hasan, Rafidah
    Sudin, Mohd Nizam
    Ramli, Faiz Redza
    INTERNATIONAL JOURNAL OF AUTOMATION TECHNOLOGY, 2019, 13 (03) : 346 - 353