TY - JOUR
T1 - Finite-difference time-domain study of hollow Zirconium dioxide nanofibrous aerogel composite for thermal insulation under harsh environments
AU - Okafor, Peter Ebuka
AU - He, Chenbo
AU - Tang, Guihua
N1 - Publisher Copyright:
© 2023 Elsevier Masson SAS
PY - 2023/12
Y1 - 2023/12
N2 - ZrO2 fiber aerogels with robust mechanical strength, low density, and low thermal conductivity can be considered high-temperature thermal insulation materials. However, in harsh environments, both radiative thermal resistance and mechanical properties are hindered, resulting in high thermal conductivity and structural degradation. Here, inspired by weaved sisal sheath fiber and polar bear hairs, we proposed a novel hollow ZrO2 nanofibrous aerogel composited with hollow SiC opacifiers (H–ZrO2@H–SiC composite). The super-insulation performances of the aerogel composite were numerically predicted by coupling the 3-D Finite-Difference Time-Domain (FDTD) method with the Rosseland approximation. The low density ordered nanofiber networks improved the mechanical properties, and the opacifiers with low density suppressed the radiative heat transfer. It exhibits a low effective thermal conductivity of 0.020 W⋅m−1⋅K−1 at 1270 K and an outstanding mechanical property based on the prediction using Finite Element Method, making it a new candidate for thermal insulation in harsh environments.
AB - ZrO2 fiber aerogels with robust mechanical strength, low density, and low thermal conductivity can be considered high-temperature thermal insulation materials. However, in harsh environments, both radiative thermal resistance and mechanical properties are hindered, resulting in high thermal conductivity and structural degradation. Here, inspired by weaved sisal sheath fiber and polar bear hairs, we proposed a novel hollow ZrO2 nanofibrous aerogel composited with hollow SiC opacifiers (H–ZrO2@H–SiC composite). The super-insulation performances of the aerogel composite were numerically predicted by coupling the 3-D Finite-Difference Time-Domain (FDTD) method with the Rosseland approximation. The low density ordered nanofiber networks improved the mechanical properties, and the opacifiers with low density suppressed the radiative heat transfer. It exhibits a low effective thermal conductivity of 0.020 W⋅m−1⋅K−1 at 1270 K and an outstanding mechanical property based on the prediction using Finite Element Method, making it a new candidate for thermal insulation in harsh environments.
KW - Ceramic nanofibrous aerogel
KW - Effective thermal conductivity
KW - FDTD
KW - Harsh environment
KW - Hollow core-shell aerogel
KW - Hollow core-shell opacifier
UR - https://www.scopus.com/pages/publications/85169568826
U2 - 10.1016/j.ijthermalsci.2023.108599
DO - 10.1016/j.ijthermalsci.2023.108599
M3 - 文章
AN - SCOPUS:85169568826
SN - 1290-0729
VL - 194
JO - International Journal of Thermal Sciences
JF - International Journal of Thermal Sciences
M1 - 108599
ER -