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Design and characterization of an electromagnetic-resonant cavity microwave plasma reactor for atmospheric pressure carbon dioxide decomposition

机译:用于大气压二氧化碳分解的电磁谐振腔微波等离子体反应器的设计与表征

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摘要

Plasma processes are ideally suited for the conversion of renewable electricity into gas-phase reactivity, such as for the decomposition of carbon dioxide (CO2). The design, development, and characterization of a microwave plasma reactor for atmospheric pressure undiluted carbon dioxide decomposition are presented. The reactor operates as an electromagnetic-resonant cavity in which the generated plasma forms a bulb attached to a converging-diverging nozzle and stabilized by streams of tangentially injected processing gas. Electromagnetic wave confinement, residence time, and critical gas vorticity constitute fundamental reactor sizing and operation parameters. Experimental results show that flow rate plays a dual role in plasma stabilization and process performance, whereas deposited power has a minor role in CO2 decomposition.
机译:等离子体工艺非常适合将可再生电力转换为气相反应性,例如分解二氧化碳(CO2)。介绍了常压未稀释二氧化碳分解的微波等离子体反应器的设计,开发和表征。该反应堆作为一个电磁谐振腔运行,在该腔中,生成的等离子体形成一个灯泡,该灯泡附着在会聚-发散喷嘴上,并通过切向注入的处理气体流来稳定。电磁波的限制,停留时间和临界气体涡度构成了反应堆的基本尺寸和运行参数。实验结果表明,流速在等离子体稳定和工艺性能中起着双重作用,而沉积功率在CO2分解中起次要作用。

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