Multiscale Perspectives on Char Oxidation: Reaction Regimes, Transport Phenomena, and Modeling Challenges
Jie Yang, Xiang Wu, Lei Yang, Jiepei Xu, Shiqi Wu, Meiling Lai
Southwest Jiaotong University Sichuan Normal University
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- 1.55) is found for intrinsic char oxidation due to compensation effects. The apparent kinetic parameters of char oxidation exhibit substantial variability across different char types. The apparent activation energy in diffusion-controlled regime is not approximately half that of kinetic-controlled regime. These two findings underscore the significant influence of diffusion limitations on char reactivity. The absence of unified formulations of pore structural parameters introduces ambiguity in selecting appropriate expressions for specific applications. Fine-tuning or coarse kinetic parameters adjustments may idealistically reduce the discrepancies between experiments and bed-scale model predictions. However, the reliance on empirical calibration may obscure some inherent mechanisms. It should bridge the gap between intrinsic kinetics (i.e., thermogravimetry analysis, TGA), apparent kinetics (i.e., fluidized bed combustion, FBC analysis), and macroscopic combustion behavior (i.e., packed-bed combustion) by incorporating the dynamic evolutions of pore structure into multiscale model. This review advances the fundamental understanding of char reactivity by integrating kinetic, structural, and transport phenomena across scales, offering a foundation for modeling char oxidation in energy conversion systems, combustion processes, and fire dynamics.
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材料 / 化学Catalytic Processes in Materials Science
Chemical Looping and Thermochemical Processes · Electrocatalysts for Energy Conversion
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