TY - JOUR
T1 - Parametric effects on secondary deposition modification of 2D SiCf/SiC film cooling hole structures
AU - Jiang, Zhuoqun
AU - Huang, Sheng
AU - Li, Qiulin
AU - Rong, Le
AU - Wang, Zhanxue
AU - Tokovyy, Yuriy
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/8
Y1 - 2026/8
N2 - SiCf/SiC composite materials, with advantages such as high temperature resistance and low density, have gradually become an important means of improving the overall performance of engines. For hot components, which require active cooling, the film-hole structure not only disrupts the continuity of the fibers and the matrix, reducing the material's load-bearing capacity, but also forms a new mass transfer channel for the Chemical Vapor Infiltration (CVI) process, which can generate a reinforcement effect through re-deposition. Mechanical tests were performed on perforated 2D SiCf/SiC composites with controlled variables: deposition time, hole diameter, secondary deposition treatment after perforation. Full-field strain distribution was characterized by digital image correlation (DIC), while damage behavior was monitored via scanning electron microscopy (SEM). This approach investigated the coupled effects of deposition parameters and structural features on secondary deposition modified perforated SiCf/SiC. Longer first deposition time reduces specimen surface damage and strain levels, but simultaneously diminishes the effectiveness of secondary deposition. Hole diameter significantly influences maximum strain and strength; moreover, secondary deposition strengthening intensifies with larger hole diameters. Distinct failure modes underscore complex interactions among deposition time, hole diameter, and secondary deposition. The established process-structure-property model provides critical theoretical support for integrated design of ceramic matrix composite (CMC).
AB - SiCf/SiC composite materials, with advantages such as high temperature resistance and low density, have gradually become an important means of improving the overall performance of engines. For hot components, which require active cooling, the film-hole structure not only disrupts the continuity of the fibers and the matrix, reducing the material's load-bearing capacity, but also forms a new mass transfer channel for the Chemical Vapor Infiltration (CVI) process, which can generate a reinforcement effect through re-deposition. Mechanical tests were performed on perforated 2D SiCf/SiC composites with controlled variables: deposition time, hole diameter, secondary deposition treatment after perforation. Full-field strain distribution was characterized by digital image correlation (DIC), while damage behavior was monitored via scanning electron microscopy (SEM). This approach investigated the coupled effects of deposition parameters and structural features on secondary deposition modified perforated SiCf/SiC. Longer first deposition time reduces specimen surface damage and strain levels, but simultaneously diminishes the effectiveness of secondary deposition. Hole diameter significantly influences maximum strain and strength; moreover, secondary deposition strengthening intensifies with larger hole diameters. Distinct failure modes underscore complex interactions among deposition time, hole diameter, and secondary deposition. The established process-structure-property model provides critical theoretical support for integrated design of ceramic matrix composite (CMC).
KW - 2D SiC/SiC composites
KW - Chemical vapor infiltration
KW - Damage failure mechanism
KW - Digital image correlation method
KW - Fracture morphology
UR - https://www.scopus.com/pages/publications/105029588699
U2 - 10.1016/j.jeurceramsoc.2026.118179
DO - 10.1016/j.jeurceramsoc.2026.118179
M3 - 文章
AN - SCOPUS:105029588699
SN - 0955-2219
VL - 46
JO - Journal of the European Ceramic Society
JF - Journal of the European Ceramic Society
IS - 9
M1 - 118179
ER -