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금속 나노 입자-고분자 복합체로 코팅된 3D 미세 격자의 압축 거동 분석

Analysis of Compression Behavior on 3D Microlattices Coated with Metal Nanoparticle-Polymer Composites

Journal of the Korean Society for Precision Engineering 2021;38(9):631-637.
Published online: September 1, 2021

1 창원대학교 대학원 스마트제조융합협동과정

2 창원대학교 대학원 기계공학과

1 Department of Smart Manufacturing Engineering, Graduate School, Changwon National University

2 Department of Mechanical Engineering, Graduate School, Changwon National University

#E-mail: ytcho@changwon.ac.kr, TEL: +82-55-213-3608
• Received: July 9, 2021   • Revised: July 21, 2021   • Accepted: August 4, 2021

Copyright © The Korean Society for Precision Engineering

This i an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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  • Robust catalyst 3D microarchitectures by digital light printing with ceramic particle–polymer composites
    Do Hyeog Kim, Sang-Hoon Nam, Gina Han, Seo Rim Park, Gwang Ho Jeong, Seok Kim, Young Tae Cho, Nicholas Xuanlai Fang
    APL Materials.2024;[Epub]     CrossRef
  • Study on Mechanical Properties of MWCNT Reinforced Photocurable Urethane Acrylate for Additive Manufacturing
    Hyunjun Jo, Bum-Joo Lee
    Journal of the Korean Society for Precision Engineering.2024; 41(3): 199.     CrossRef

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Analysis of Compression Behavior on 3D Microlattices Coated with Metal Nanoparticle-Polymer Composites
J. Korean Soc. Precis. Eng.. 2021;38(9):631-637.   Published online September 1, 2021
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Analysis of Compression Behavior on 3D Microlattices Coated with Metal Nanoparticle-Polymer Composites
J. Korean Soc. Precis. Eng.. 2021;38(9):631-637.   Published online September 1, 2021
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Analysis of Compression Behavior on 3D Microlattices Coated with Metal Nanoparticle-Polymer Composites
Image Image Image Image Image Image Image Image Image Image
Fig. 1 Microlattice structure modeling (Cubic; Octet-truss)
Fig. 2 Microlattice structure made with DLP 3D printer and photocurable resin (Cubic; Octet-truss)
Fig. 3 Dip coating method
Fig. 4 Aluminum nanoparticle-polymer composites coated microlattice structure (Cubic; Octet-truss)
Fig. 5 Comparison of mass before and after aluminum nanoparticles-polymer composites coating (Cubic; Octet-truss)
Fig. 6 Compression test method
Fig. 7 Compression test result graph of cubic structure before and after aluminum nanoparticles-polymer composites coating
Fig. 8 Compression test result graph of octet-truss structure before and after aluminum nanoparticles-polymer composites coating
Fig. 9 Comparison of compressive strength according to aluminum nanoparticles-polymer composites coating by microlattice structure
Fig. 10 Comparison of toughness according to aluminum nanoparticles-polymer composites coating by microlattice structure
Analysis of Compression Behavior on 3D Microlattices Coated with Metal Nanoparticle-Polymer Composites