TY - JOUR
T1 - A new strategy to improve the ablation resistance of C/C-ZrC-SiC composites by using mesophase-pitch-based carbon fibers as heat transfer channels
AU - Zhao, Yuanxiao
AU - Yan, Kefei
AU - Song, Qiang
AU - Xiao, Caixiang
AU - Jiao, Yameng
AU - Shen, Qingliang
AU - Li, Hejun
N1 - Publisher Copyright:
© 2024 Elsevier Ltd and Techna Group S.r.l.
PY - 2025
Y1 - 2025
N2 - Currently, C/C-ZrC-SiC composites prepared using the precursor impregnation pyrolysis (PIP) process still suffer from insufficient thermal conductivity of the components, leading to excessive surface heat accumulation. Herein, a 3D highly thermally conductive preform was prepared by using mesophase-pitch-based carbon fiber (CFMP) as reinforcing fiber. Subsequently, the CFMP/C skeleton was fabricated by chemical vapor infiltration and heat treatment at 2450 °C. Finally, the CFMP/C skeleton was further treated using the PIP process, thereby obtaining the CFMP/C-ZrC-SiC-2450 °C composites. Benefiting from the highly orientated graphite microcrystalline structure and large phonon mean free path of CFMP, as well as the partial axial alignment of CFMP in the X(Y)Z plane parallel to the ablation direction, the thermal conductivity of the CFMP/C-ZrC-SiC-2450 °C composites in the X(Y)Z plane was higher than that in the XY plane, thereby effectively reducing the surface temperature. Afterward, the crystallinity of the graphite structure in CFMP was again enhanced by increasing the heat treatment temperature to 3000 °C, and CFMP/C-ZrC-SiC-3000 °C composites with excellent ablation resistance were obtained, corresponding to linear and mass ablation rates of 0.412 μm/s and 1.081 mg/s, respectively. The above results indicated that the highly crystalline CFMP/C thermally conductive skeleton played a key role in reducing the ablation surface temperature and protecting the ZrC-SiC ceramics from oxyacetylene flame ablation, laying a solid foundation for the subsequent development of high-performance ablation-resistant C/C composites.
AB - Currently, C/C-ZrC-SiC composites prepared using the precursor impregnation pyrolysis (PIP) process still suffer from insufficient thermal conductivity of the components, leading to excessive surface heat accumulation. Herein, a 3D highly thermally conductive preform was prepared by using mesophase-pitch-based carbon fiber (CFMP) as reinforcing fiber. Subsequently, the CFMP/C skeleton was fabricated by chemical vapor infiltration and heat treatment at 2450 °C. Finally, the CFMP/C skeleton was further treated using the PIP process, thereby obtaining the CFMP/C-ZrC-SiC-2450 °C composites. Benefiting from the highly orientated graphite microcrystalline structure and large phonon mean free path of CFMP, as well as the partial axial alignment of CFMP in the X(Y)Z plane parallel to the ablation direction, the thermal conductivity of the CFMP/C-ZrC-SiC-2450 °C composites in the X(Y)Z plane was higher than that in the XY plane, thereby effectively reducing the surface temperature. Afterward, the crystallinity of the graphite structure in CFMP was again enhanced by increasing the heat treatment temperature to 3000 °C, and CFMP/C-ZrC-SiC-3000 °C composites with excellent ablation resistance were obtained, corresponding to linear and mass ablation rates of 0.412 μm/s and 1.081 mg/s, respectively. The above results indicated that the highly crystalline CFMP/C thermally conductive skeleton played a key role in reducing the ablation surface temperature and protecting the ZrC-SiC ceramics from oxyacetylene flame ablation, laying a solid foundation for the subsequent development of high-performance ablation-resistant C/C composites.
KW - Ablation properties
KW - C/C-ZrC-SiC composites
KW - High thermal conductivity
KW - Mechanical properties
KW - Mesophase-pitch-based carbon fiber
UR - http://www.scopus.com/inward/record.url?scp=85213516595&partnerID=8YFLogxK
U2 - 10.1016/j.ceramint.2024.12.441
DO - 10.1016/j.ceramint.2024.12.441
M3 - 文章
AN - SCOPUS:85213516595
SN - 0272-8842
JO - Ceramics International
JF - Ceramics International
ER -