TY - JOUR
T1 - Prediction of mesoscopic volumetric ablation of 3D quartz-polysulfonamide charring composite in thermal protection systems enabled by geometric reconstruction
AU - Shi, Shengbo
AU - Wang, Jiameng
AU - Xie, Fei
AU - Jing, Zhao
AU - Wang, Jing
AU - Chen, Hong
AU - Li, Maoyuan
AU - Liang, Jun
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2025/3/15
Y1 - 2025/3/15
N2 - Low-density, charring composites for thermal protection systems exhibit multi-scale and multi-physics high-temperature responses due to complex mesoscopic structures. A quartz-polysulfonamide/phenolic (QPP) charring composite with organic and inorganic fiber interpenetrating network was proposed, which possesses both excellent ablative resistance and thermal insulation performances. The 3D mesoscopic geometrical structure of this innovative composite was reconstructed. The mechanisms of mass conversion and energy transfer during ablation was revealed by using thermal exposure experimental test and microscopic observation methods. Considering both the true mesoscopic structures and different temperature-dependent thermal-physical properties of the fiber bundles and matrix, a volumetric ablation model on mesoscopic scale was proposed and validated. Effects of pyrolysis reaction, generation of decomposition gases and its flow in porous charred structure on ablation and thermal responses were fully studied. The fiber interpenetrating network makes the innovative, charring composite intact in shape and porous inside after exposed to a moderate heat flux, which in turn provides better thermal protection and insulation capacities. The comprehensive study on mesoscopic volumetric ablation model can be instrumental in precisely predicting the ablation and thermal response of the charring composite, which offers a fundamental understanding and new composite design guidelines applicable to low-density thermal protection systems.
AB - Low-density, charring composites for thermal protection systems exhibit multi-scale and multi-physics high-temperature responses due to complex mesoscopic structures. A quartz-polysulfonamide/phenolic (QPP) charring composite with organic and inorganic fiber interpenetrating network was proposed, which possesses both excellent ablative resistance and thermal insulation performances. The 3D mesoscopic geometrical structure of this innovative composite was reconstructed. The mechanisms of mass conversion and energy transfer during ablation was revealed by using thermal exposure experimental test and microscopic observation methods. Considering both the true mesoscopic structures and different temperature-dependent thermal-physical properties of the fiber bundles and matrix, a volumetric ablation model on mesoscopic scale was proposed and validated. Effects of pyrolysis reaction, generation of decomposition gases and its flow in porous charred structure on ablation and thermal responses were fully studied. The fiber interpenetrating network makes the innovative, charring composite intact in shape and porous inside after exposed to a moderate heat flux, which in turn provides better thermal protection and insulation capacities. The comprehensive study on mesoscopic volumetric ablation model can be instrumental in precisely predicting the ablation and thermal response of the charring composite, which offers a fundamental understanding and new composite design guidelines applicable to low-density thermal protection systems.
KW - Geometric reconstruction
KW - Low-density charring composite
KW - Mesoscopic volumetric ablation model
KW - Organic and inorganic fiber interpenetrating network
KW - Pyrolysis reaction
UR - http://www.scopus.com/inward/record.url?scp=85213084094&partnerID=8YFLogxK
U2 - 10.1016/j.applthermaleng.2024.125321
DO - 10.1016/j.applthermaleng.2024.125321
M3 - Article
AN - SCOPUS:85213084094
SN - 1359-4311
VL - 263
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
M1 - 125321
ER -