Abstract

Hydrogen is one of essential renewable energy sources to effectively solve the climate challenge and methane steam reforming accounts for 60.0% of global hydrogen supply. In this study, to improve the efficiency, the methane steam reforming in a packed bed reactor integrated with diverging tube was investigated via numerical method. To quantify the performance of flow and heat transfer, the flow disturbance analysis and the thermal resistance analysis of different inclination angle diverging tube were conducted. The results showed that, the integration of diverging tube lead to the reduction of average temperature, the decreasing of pressure drop and the increment of outlet mass flow. The flow disturbance and the thermal resistance increase with the inclination angle rising. As for the overall efficiency of flow and heat transfer, the improvement of flow has more effects than the weakness of heat transfer. As the inclination angle is 3°, there is the highest overall heat transfer coefficient, which is increased by 9.0 % compared with the normal packed bed reactor. Since hydrogen production mainly depends on the flow and heat transfer, the integration of diverging tube improves the hydrogen yield and the hydrogen yield become larger with the inclination angle rising. Considering the usage of catalyst, the flow loss and outlet hydrogen mass flow, the efficiency of hydrogen production is the highest as the inclination angle is 3°, which is increased by 34.0%.

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