TY - JOUR
T1 - Theoretical prediction of temperature-dependent fracture strength for ultra-high temperature ceramic composites considering the evolution of damage and thermal residual stress
AU - Zhang, Xin
AU - Li, Weiguo
AU - Deng, Yong
AU - Shao, Jiaxing
AU - Zhang, Xuyao
AU - Zhang, Xianhe
AU - Kou, Haibo
AU - Tao, Yong
AU - Qu, Zhaoliang
N1 - Publisher Copyright:
© 2018 Elsevier Ltd and Techna Group S.r.l.
PY - 2018/12/15
Y1 - 2018/12/15
N2 - Based on the maximum storage energy density criterion of material fracture, a model of temperature-dependent fracture strength for ultra-high temperature ceramic composites is established. The combined impacts of the evolution of damage and thermal residual stress with temperature are considered. The model predictions are highly consistent with available experimental values. Besides, the critical crack sizes of ZrB2–30 vol%SiC in air from 1400 to 1600 °C are predicted using the proposed model, which agree well with the total oxidation thickness of the reported literature at 1400 and 1500 °C, and a more reasonable definition of critical crack size at 1600 °C are given. Moreover, the quantitative effect of crack size on the fracture strength is analyzed under different environment temperature, and a useful conclusion is obtained that decreasing crack size is more effective to improve the fracture strength of the composites at low temperatures. This study not only provides a feasible and convenient method to predict the fracture strengths at different temperatures, but also offers a theoretical support for the design of ultra-high temperature ceramic composites.
AB - Based on the maximum storage energy density criterion of material fracture, a model of temperature-dependent fracture strength for ultra-high temperature ceramic composites is established. The combined impacts of the evolution of damage and thermal residual stress with temperature are considered. The model predictions are highly consistent with available experimental values. Besides, the critical crack sizes of ZrB2–30 vol%SiC in air from 1400 to 1600 °C are predicted using the proposed model, which agree well with the total oxidation thickness of the reported literature at 1400 and 1500 °C, and a more reasonable definition of critical crack size at 1600 °C are given. Moreover, the quantitative effect of crack size on the fracture strength is analyzed under different environment temperature, and a useful conclusion is obtained that decreasing crack size is more effective to improve the fracture strength of the composites at low temperatures. This study not only provides a feasible and convenient method to predict the fracture strengths at different temperatures, but also offers a theoretical support for the design of ultra-high temperature ceramic composites.
KW - Damage
KW - Fracture strength
KW - Temperature-dependent
KW - Thermal residual stress
KW - Ultra-high temperature ceramic composites
UR - http://www.scopus.com/inward/record.url?scp=85053047072&partnerID=8YFLogxK
U2 - 10.1016/j.ceramint.2018.09.043
DO - 10.1016/j.ceramint.2018.09.043
M3 - Article
AN - SCOPUS:85053047072
SN - 0272-8842
VL - 44
SP - 22656
EP - 22663
JO - Ceramics International
JF - Ceramics International
IS - 18
ER -