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Copper lattice-embedded steel composite: One-step fabrication and its thermal and mechanical propertiesopen access

Authors
Cho, Yong HwanChoi, DonginJeong, KyeongjaeKim, YijaePark, MinwooLee, SiwhanChoi, HyunjooChoi, In-SukKang, Sung-GyuHan, Heung Nam
Issue Date
Jul-2025
Publisher
Elsevier Editora Ltda
Keywords
Metallic composite; Lattice structure; Direct energy deposition; Copper; 316L stainless steel
Citation
Journal of Materials Research and Technology, v.37, pp 89 - 101
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
Journal of Materials Research and Technology
Volume
37
Start Page
89
End Page
101
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/80137
DOI
10.1016/j.jmrt.2025.05.253
ISSN
2238-7854
2214-0697
Abstract
3-dimensional (3D) lattice structures can expand ranges of material properties. Not only material's microstructure, but their geometry strongly varies the properties, offering design freedom for multifunctional materials. In the same context, incorporating 3D lattice structure within composites may realize surpassing material properties. However, due to manufacturing challenges, lattice-patterned metallic composites have been largely unexplored. Here, as a model study, we report the first fabrication of lattice-patterned copper-316L stainless steel composites and experimental investigation of their thermal and mechanical properties. Steel-copper composites with a simple cubic-patterned copper structure are fabricated through direct energy deposition and densified via post-processing. Transmission electron microscopy analysis confirms that steel constituent elements are present within the copper lattice, and underwent diffusion and subsequent phase separation. Using effective thermal conductivity analysis, the effects of the fabrication process on the heat transfer efficiency of the composites and the thermal contact conductance at the steel-copper interface are evaluated. Furthermore, the compressive strength of the composites, enhanced by the incorporation of the steel matrix, was assessed through compression testing. The present work demonstrates that lattice-patterned composites for industrial applications requiring high thermal conductivity can be fabricated using direct energy deposition and provides optimization guidelines for their properties.
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Kang, Sung-Gyu
대학원 (나노신소재융합공학과)
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