Multiscale simulation of coupled fluid flow, thermal and heterogeneous chemical reactions in fibrous porous media during ablation
JY Zhang and J Zhao and GC Yao and JH Zhao and DS Wen, INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 251, 127411 (2025).
DOI: 10.1016/j.ijheatmasstransfer.2025.127411
High-accuracy prediction of the thermal response for ablative material
is significant for the reliability of thermal protection system (TPS).
Multiscale approach development is still required to simultaneously
consider the coupled fluid flow, thermal diffusion, heterogeneous
chemical reactions and the pore-scale structure evolution during the
thermal ablation process. In this work, the ablation process of carbon
fibrous porous media is investigated under the atomic oxygen (AO) flow
considering the high-temperature gas non-equilibrium effect. To deepen
our understanding of both heterogeneous chemical reactions of fibrous
porous media at the atomic scale and its effect on the heat and mass
transfer at the pore scale, Reactive Molecular Dynamics (RMD) method is
used to explore the chemical reaction kinetics at the gas-solid
interface, which is employed to Darcy-Brinkman-Stokes (DBS) model to
reveal the development of porous flow, thermal, and chemical reactions
simultaneously. The effect of volumetric temperature, incoming AO flow
concentration, Pe
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