TY - JOUR
T1 - Comparative study of two simulation methods for thermal analysis of the Ceramic matrix composite plate
AU - Du, Kun
AU - Xia, Min
AU - Chen, Lei
AU - Li, Penggang
AU - Li, Kunyang
AU - Liu, Cunliang
AU - Sunden, Bengt
N1 - Publisher Copyright:
© 2026
PY - 2026/9
Y1 - 2026/9
N2 - Ceramic matrix composites (CMCs) are regarded as ideal candidates for hot-end components in future aeroengines due to their high-temperature resistance and low density. However, the anisotropy of their thermal conductivity and the multi-phase nature pose significant challenges for numerical simulations. Currently, thermal simulation methods for CMCs can be classified into macro-scale and meso-scale approaches. In this study, both methods are employed to simulate a CMC plate, and the resulting temperature and temperature gradient distributions on internal characteristic sections are compared. The results indicate that the macro-scale method inherently lacks the resolution to capture internal local temperature and gradients, whereas the meso-scale method provides such resolution. Moreover, the internal thermal details are considerably more complex than macro-scale averages suggest. Local temperature fluctuations exhibit a peak relative difference of 17.21%, and the maximum error in gradient prediction reaches 7 × 105 K/m, corresponding to a relative difference of 470%. Such substantial prediction inaccuracies directly lead to erroneous thermal stress calculations, posing a significant design risk. Consequently, the meso-scale simulation method is more suitable than the macro-scale method for simulating CMC hot-end components, and can therefore provide valuable guidance for the thermal design of such components.
AB - Ceramic matrix composites (CMCs) are regarded as ideal candidates for hot-end components in future aeroengines due to their high-temperature resistance and low density. However, the anisotropy of their thermal conductivity and the multi-phase nature pose significant challenges for numerical simulations. Currently, thermal simulation methods for CMCs can be classified into macro-scale and meso-scale approaches. In this study, both methods are employed to simulate a CMC plate, and the resulting temperature and temperature gradient distributions on internal characteristic sections are compared. The results indicate that the macro-scale method inherently lacks the resolution to capture internal local temperature and gradients, whereas the meso-scale method provides such resolution. Moreover, the internal thermal details are considerably more complex than macro-scale averages suggest. Local temperature fluctuations exhibit a peak relative difference of 17.21%, and the maximum error in gradient prediction reaches 7 × 105 K/m, corresponding to a relative difference of 470%. Such substantial prediction inaccuracies directly lead to erroneous thermal stress calculations, posing a significant design risk. Consequently, the meso-scale simulation method is more suitable than the macro-scale method for simulating CMC hot-end components, and can therefore provide valuable guidance for the thermal design of such components.
KW - Ceramic matrix composites
KW - Comparative study
KW - Simulation methods
KW - Thermal Analysis
UR - https://www.scopus.com/pages/publications/105038804731
U2 - 10.1016/j.ijheatfluidflow.2026.110482
DO - 10.1016/j.ijheatfluidflow.2026.110482
M3 - 文章
AN - SCOPUS:105038804731
SN - 0142-727X
VL - 121
JO - International Journal of Heat and Fluid Flow
JF - International Journal of Heat and Fluid Flow
M1 - 110482
ER -