TY - JOUR
T1 - Additive manufacturing, quasi-static and dynamic compressive behaviours of ceramic lattice structures
AU - Zhang, Xueqin
AU - Zhang, Keqiang
AU - Zhang, Bin
AU - Li, Ying
AU - He, Rujie
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022
Y1 - 2022
N2 - Ceramic lattice structures (CLSs) are used for construction in common and extreme environments because of the extraordinary properties of ceramics. In this study, we designed and additively manufactured CLSs with distinct structural parameters to explore their quasi-static and dynamic compressive behaviours in detail. It was demonstrated that both the relative density (͞ρ) and inclination angle (ω) had a significant impact on the quasi-static and dynamic mechanical properties of the CLSs. Furthermore, the mathematical relationships between the quasi-static compressive properties, including quasi-static compressive strength (QS), quasi-static Young's modulus (QY), and quasi-static energy absorption (QE), versus ͞ρ and ω obeyed the Gibson–Ashby and Deshpande and Fleck models, respectively. It was revealed by experiment and simulation that as the stiffness increased, the quasi-static failure mode of the CLSs changed from a parallel-vertical-inclined mixed mode to a parallel-vertical mode. In addition, the relationship between the dynamic mechanical properties of the CLSs versus ͞ρ and ω also followed the Gibson–Ashby and Deshpande and Fleck models. The exceptional dynamic increase factor indicated that CLSs are highly suitable for extreme environments. These findings will aid in the research and development of customised additively manufactured CLSs.
AB - Ceramic lattice structures (CLSs) are used for construction in common and extreme environments because of the extraordinary properties of ceramics. In this study, we designed and additively manufactured CLSs with distinct structural parameters to explore their quasi-static and dynamic compressive behaviours in detail. It was demonstrated that both the relative density (͞ρ) and inclination angle (ω) had a significant impact on the quasi-static and dynamic mechanical properties of the CLSs. Furthermore, the mathematical relationships between the quasi-static compressive properties, including quasi-static compressive strength (QS), quasi-static Young's modulus (QY), and quasi-static energy absorption (QE), versus ͞ρ and ω obeyed the Gibson–Ashby and Deshpande and Fleck models, respectively. It was revealed by experiment and simulation that as the stiffness increased, the quasi-static failure mode of the CLSs changed from a parallel-vertical-inclined mixed mode to a parallel-vertical mode. In addition, the relationship between the dynamic mechanical properties of the CLSs versus ͞ρ and ω also followed the Gibson–Ashby and Deshpande and Fleck models. The exceptional dynamic increase factor indicated that CLSs are highly suitable for extreme environments. These findings will aid in the research and development of customised additively manufactured CLSs.
KW - Additive manufacturing
KW - Ceramic lattice structures
KW - Dynamic compression
KW - Quasi-static compression
UR - http://www.scopus.com/inward/record.url?scp=85136575203&partnerID=8YFLogxK
U2 - 10.1016/j.jeurceramsoc.2022.08.018
DO - 10.1016/j.jeurceramsoc.2022.08.018
M3 - Article
AN - SCOPUS:85136575203
SN - 0955-2219
JO - Journal of the European Ceramic Society
JF - Journal of the European Ceramic Society
ER -