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Numerical modelling of microwave heating of a porous catalyst bed

机译:多孔催化剂床微波加热的数值模拟

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A Multiphysics numerical model was developed using COMSOL Multiphysics to study the effect of size, shape and position of catalyst bed within the microwave reactor (2450 MHz). The dielectric properties of HZSM-5 catalyst were measured at different frequencies and nine different temperatures ranging from 25 degrees C to 370 degrees C. The heat transfer in porous media was coupled with RF electromagnetics module and flow-through porous media by extracting the heat source term Q for the heat transfer problem from the electromagnetics. A solid-fluid thermal non-equilibrium condition was modelled as the heat is generated within the catalyst. It was observed that sample position, shape and size of the sample, all significantly affect the heating profile and temperature gradient inside the porous media. The experimental results and the predicted temperatures were in good agreement. Microwave heating had higher total internal energy but conventional heating had lower temperature gradient after reaching steady state. Brick-shaped sample heats more uniformly compared to cylindrical sample. If the radius of the sample is decreased, while maintaining the volume of the sample, microwaves penetrate deeper inside the sample, and more uniform temperature distribution is observed throughout the length of the sample.
机译:使用COMSOL Multiphysics开发了Multiphysics数值模型,以研究微波反应器(2450 MHz)中催化剂床的尺寸,形状和位置的影响。 HZSM-5催化剂的介电性能在不同的频率和从25摄氏度到370摄氏度的9个不同温度下进行了测量。多孔介质中的传热与RF电磁模块和通过提取热源的流通性多孔介质耦合Q是电磁学中的传热问题。当在催化剂内产生热量时,对固体-流体热不平衡条件进行了建模。观察到样品的位置,形状和大小均显着影响多孔介质内部的加热曲线和温度梯度。实验结果与预测温度吻合良好。微波加热具有较高的总内部能量,但是常规加热在达到稳态后具有较低的温度梯度。与圆柱形样品相比,砖形样品的加热更均匀。如果减小样品半径,则在保持样品体积的同时,微波会在样品内部更深处渗透,并且在整个样品长度上观察到更均匀的温度分布。

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