Issues on numerical modelling of transport processes in granular reactive media – an approach with thermal relaxation

Pub Date : 2024-07-12 DOI:10.24425/ather.2024.150450
S. Polesek-Karczewska, D. Kardaś
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Abstract

The steadily growing interest in applying granular media in various novel and advanced technologies, particularly in the energy sector, entails the need to gain in-depth knowledge of their thermal and flow behaviour and develop simulation predictive tools for systems’ design and optimisation. The focus of the present study is on the numerical modelling of the thermal decomposition of solid fuel grains in a packed bed while considering a non-classical description of heat transfer in such a medium. The work aims to assess the influence of the relaxation time and thermo-physical properties of the medium on the nature of the solution and highlight the factors that are the source of local non-equilibrium affecting thermal wave speed propagation. The analysis of the predicted temperature distribution was carried out based on the developed transient one-dimensional thermal and flow model, taking into account the moisture evaporation and the devolatilization of fuel particles. Obtained simulation results showed a significant increase in the temperature gradients with increased relaxation times for the case of wet granular bed. They also demonstrated the variable dynamics of thermal wave propagation due to the change in the packed bed structure with the process progress. For a relaxation time of 100 s, a several-fold increase in the temperature signal propagation speed during the fuel bed thermal decomposition was predicted.
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颗粒反应介质迁移过程的数值建模问题--一种热松弛方法
人们对将颗粒介质应用于各种新型先进技术(尤其是能源领域)的兴趣与日俱增,因此需要深入了解它们的热和流动行为,并开发用于系统设计和优化的模拟预测工具。本研究的重点是对填料床中固体燃料颗粒的热分解进行数值建模,同时考虑对此类介质中热传导的非经典描述。这项工作旨在评估介质的弛豫时间和热物理性质对解决方案性质的影响,并强调影响热波速传播的局部非平衡源因素。根据开发的瞬态一维热和流动模型,对预测的温度分布进行了分析,并考虑了水分蒸发和燃料颗粒的分解。模拟结果表明,在湿颗粒床的情况下,随着弛豫时间的增加,温度梯度显著增加。模拟结果还表明,随着工艺流程的进展,填料床结构的变化导致热波传播的动态变化。在弛豫时间为 100 秒时,预计燃料床热分解过程中的温度信号传播速度将增加数倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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