TY - JOUR
T1 - Fracture mechanism of BJ-CVI SiC lattices with four distinct structures based on finite element simulation and digital image correlation
AU - Zhu, Saisai
AU - Liu, Guoqing
AU - Wang, Pei
AU - Zhang, Jian
AU - Yang, Lijun
AU - Wu, Mingwei
AU - Kang, Nan
AU - Mansori, Mohamed El
AU - Prashanth, Konda Gokuldoss
AU - Zhang, Yulei
N1 - Publisher Copyright:
© 2026 The Authors.
PY - 2026/5
Y1 - 2026/5
N2 - SiC ceramic lattice structures (CLSs) have become increasingly popular in engineering applications due to their remarkable specific strength and thermal properties. To investigate their quasi-static compressive mechanical behavior, binder jetting additive manufacturing technology was used to produce various configurations of SiC CLSs, specifically Edge Center Cubic (ECC), Face Center Cubic (FCC) and Gyroid-type triply periodic minimal surfaces, namely the Gyroid-sheet (GSH) and Gyroid-skeletal (GSK). The findings reveal that the GSH configuration exhibits the highest quasi-static compressive strength at ∼ 54 MPa. The failure mechanism is characterized by a sequential propagation of damage. Micro-cracking initiates at points of peak tensile stress—specifically, at the nodes or on the strut surfaces. These cracks then extend through the strut cross-section. The failure of a single critical strut redistributes the load to its neighbors, inducing sequential overloading and fracture. This chain reaction ultimately leads to the catastrophic crushing of the entire structure along an inclined shear zone. This research offers valuable insights for optimizing the design and assessing the mechanical performance of SiC CLSs.
AB - SiC ceramic lattice structures (CLSs) have become increasingly popular in engineering applications due to their remarkable specific strength and thermal properties. To investigate their quasi-static compressive mechanical behavior, binder jetting additive manufacturing technology was used to produce various configurations of SiC CLSs, specifically Edge Center Cubic (ECC), Face Center Cubic (FCC) and Gyroid-type triply periodic minimal surfaces, namely the Gyroid-sheet (GSH) and Gyroid-skeletal (GSK). The findings reveal that the GSH configuration exhibits the highest quasi-static compressive strength at ∼ 54 MPa. The failure mechanism is characterized by a sequential propagation of damage. Micro-cracking initiates at points of peak tensile stress—specifically, at the nodes or on the strut surfaces. These cracks then extend through the strut cross-section. The failure of a single critical strut redistributes the load to its neighbors, inducing sequential overloading and fracture. This chain reaction ultimately leads to the catastrophic crushing of the entire structure along an inclined shear zone. This research offers valuable insights for optimizing the design and assessing the mechanical performance of SiC CLSs.
KW - Binder jetting
KW - Fracture mechanism
KW - Mechanical properties
KW - SiC ceramic lattice structures
UR - https://www.scopus.com/pages/publications/105033585846
U2 - 10.1016/j.matdes.2026.115890
DO - 10.1016/j.matdes.2026.115890
M3 - 文章
AN - SCOPUS:105033585846
SN - 0264-1275
VL - 265
JO - Materials and Design
JF - Materials and Design
M1 - 115890
ER -