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首页> 外文期刊>Chemie-Ingenieur-Technik: Verfahrenstechnik Technische Chemie Apparatewesen Biotechnologie >Production of Liquid Hydrocarbons with CO2 as Garbon Source based on Reverse Water-Gas Shift and Fischer-Tropsch Synthesis
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Production of Liquid Hydrocarbons with CO2 as Garbon Source based on Reverse Water-Gas Shift and Fischer-Tropsch Synthesis

机译:基于反向水煤气变换和费-托合成法的以CO2为碳源的液态烃生产

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摘要

The Substitution of fossil fuels by renewable energy sources is needed to decrease greenhouse gas emissions, especially CO2. Wind and solar power are today considered as attractive alternatives for electric power generation, but are not suitable for providing base load. Thus, efficient storage of electrical energy is inevitable. Liquid hydrocarbons (HCs) exhibit an excellent Volumetrie energy density and offer various opportunities for storing electric energy. They can be produced by CO2 and renewable H2 (generated by water electrolysis) in a two step process. The first step is generation of syngas by reverse water-gas shift (RWGS) at elevated temperatures; the second step comprises the production of liquid hydrocarbons by Fischer-Tropsch (FT) synthesis. The experiments on RWGS with a commercial Ni-catalyst show that a CO2 conversion of around 80% can be reached at 800 °C within a very short residence time of less than < 0.1 s. The experiments on FTS with Fe as catalyst and syngas containing different amounts of CO2 indicate that the influence of CO2 on CO conversion and produet selectivities (including net CO2 production by water-gas shift) is insignificant if the Met partial pressures of H2 and CO are kept constant. If CO is substituted by CO2, less HCs are formed, the water-gas shift is repressed, and methane selectivity increases.
机译:需要使用可再生能源替代化石燃料,以减少温室气体排放,尤其是二氧化碳。今天,风能和太阳能被认为是发电的诱人替代品,但不适合提供基本负荷。因此,电能的有效存储是不可避免的。液态碳氢化合物(HCs)具有出色的Volumetrie能量密度,并提供了各种存储电能的机会。它们可以通过两步过程由CO2和可再生H2(通过水电解生成)生产。第一步是在高温下通过反向水煤气变换(RWGS)生成合成气;第二步包括通过费-托(FT)合成生产液态烃。使用工业镍催化剂在RWGS上进行的实验表明,在800°C的温度下,短于小于0.1 s的停留时间,CO2转化率可达到80%左右。以Fe为催化剂,合成气含不同量CO2的FTS实验表明,如果H2和CO的Met分压为保持不变。如果用CO2代替CO,则生成的HC较少,水煤气变换受到抑制,甲烷的选择性增加。

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