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Meta-structure of amorphous-inspired 65.1Co28.2Cr5.3Mo lattices augmented by artificial intelligence

Authors
Park, Seong JeHeogh, WoongbeomYang, JeonghoKang, SukhyunJeong, WonjongLee, HoyoungJang, Tae-SikJung, Hyun-DoJahazi, MohammadHan, Seung ChulKim, Hyoung SeopLee, Myoung-GyuBose, SusmitaBandyopadhyay, AmitJun, Martin Byung-GukKim, Young WonFu, XingyuAdvincula, Rigoberto C.Aranas, Clodualdo, Jr.Kim, Sang Hoon
Issue Date
Dec-2024
Publisher
SPRINGER NATURE
Keywords
Hatching-distance-controlled lattice; Amorphous-inspired structure; Metastable lattice combination; Heterogeneous phase differences; Artificial intelligence
Citation
Advanced Composites and Hybrid Materials, v.7, no.6, pp 1 - 22
Pages
22
Indexed
SCIE
SCOPUS
Journal Title
Advanced Composites and Hybrid Materials
Volume
7
Number
6
Start Page
1
End Page
22
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/198119
DOI
10.1007/s42114-024-01039-6
ISSN
2522-0128
2522-0136
Abstract
A hatching-distance-controlled lattice of 65.1Co28.2Cr5.3Mo is additively manufactured via laser powder bed fusion with a couple of periodic and aperiodic arrangements of nodes and struts. Thus, the proposed lattice has an amorphous-inspired structure in the short- and long-range orders. From the structural perspective, an artificial intelligence algorithm is used to effectively align lattices with various hatching distances. Then, the metastable lattice combination exhibits an unexpectedly high specific compression strength that is only slightly below that of a solid structure. From the microstructural perspective, the nodes in the newly designed lattice, where the thermal energy from laser irradiation is mainly concentrated, exhibit an equiaxial microstructure. By contrast, the struts exhibit a columnar microstructure, thereby allowing the thermal energy to pass through the narrow ligaments. The heterogeneous phase differences between the nodal and strut areas explain the strength-deteriorating mechanism, owing to the undesirable multi-phase development in the as-built state. However, solid-solution heat treatment to form a homogeneous phase bestows even higher specific compression strength. Furthermore, electrochemical leaching leads to the formation of nanovesicles on the surface of the microporous lattice system, thereby leading to a large surface area. A more advanced valve cage for use in a power plant is designed by using artificial intelligence both to (i) effectively preserve its mechanical stiffness and (ii) actively dissipate the generated stress through the large surface area provided by the nanovesicles.
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