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Plasma-based multi-reforming for Gas-To-Liquid: tuning the plasma chemistry towards methanol

机译:基于等离子的气体转化多重整:将等离子化学转化为甲醇

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摘要

Because of its unique properties, plasma technology has gained much prominence in the microelectronics industry. Recently, environmental and energy applications of plasmas have gained a lot of attention. In this area, the focus is on converting CO2 and reforming hydrocarbons, with the goal of developing an efficient single-step ‘gas-to-liquid’ (GTL) process. Here we show that applying tri-reforming principles to plasma—further called ‘plasma-based multi-reforming’—allows us to better control the plasma chemistry and thus the formed products. To demonstrate this, we used chemical kinetics calculations supported by experiments and reveal that better control of the plasma chemistry can be achieved by adding O2 or H2O to a mixture containing CH4 and CO2 (diluted in N2). Moreover, by adding O2 and H2O simultaneously, we can tune the plasma chemistry even further, improving the conversions, thermal efficiency and methanol yield. Unlike thermocatalytic reforming, plasma-based reforming is capable of producing methanol in a single step; and compared with traditional plasma-based dry reforming, plasma-based multi-reforming increases the methanol yield by more than seven times and the thermal efficiency by 49%, as revealed by our model calculations. Thus, we believe that by using plasma-based multi-reforming, ‘gas-to-liquid’ conversion may be made efficient and scalable.
机译:由于其独特的性能,等离子技术在微电子工业中获得了极大的关注。近来,等离子体在环境和能源方面的应用引起了很多关注。在这一领域,重点是转化二氧化碳和重整碳氢化合物,目标是开发有效的单步“气液”(GTL)工艺。在这里,我们证明了将三重整原理应用于等离子体(也称为“基于等离子体的多重整”)使我们能够更好地控制等离子体的化学性质,从而更好地控制成形的产品。为了证明这一点,我们使用了实验支持的化学动力学计算,并揭示了通过将O2或H2O添加到包含CH4和CO2(稀释于N2)的混合物中,可以更好地控制等离子体化学。此外,通过同时添加O2和H2O,我们可以进一步调节等离子体化学性质,从而提高转化率,热效率和甲醇收率。与热催化重整不同,基于等离子体的重整能够一步一步生产甲醇。与传统的基于等离子体的干重整相比,基于等离子体的多重重整将甲醇收率提高了7倍以上,热效率提高了49%,正如我们的模型计算所揭示的那样。因此,我们认为,通过使用基于等离子体的多重重整,“气液转换”将变得高效且可扩展。

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