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Electrolytic cell engineering and device optimization for electrosynthesis of e-biofuels via co-valorisation of bio-feedstocks and captured CO_2

机译:通过生物原料和捕获CO_2的共瓣,电解电池工程和电子生物燃料电气电气的优化

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Utilizing CO2 in an electro-chemical process and synthesizing value-added chemicals are amongst the few viable and scalable pathways in carbon capture and utilization technologies. CO2 electro-reduction is also counted as one of the main options entailing less fossil fuel consumption and as a future electrical energy storage strategy. The current study aims at developing a new electrochemical platform to produce low-carbon e-biofuel through multifunctional electrosynthesis and integrated co-valorisation of biomass feedstocks with captured CO2. In this approach, CO2 is reduced at the cathode to produce drop-in fuels (e.g., methanol) while value-added chemicals (e.g., selective oxidation of alcohols, aldehydes, carboxylic acids and amines/amides) are produced at the anode. In this work, a numerical model of a continuous-flow design considering various anodic and cathodic reactions was built to determine the most techno-economically feasible configurations from the aspects of energy efficiency, environment impact and economical values. The reactor design was then optimized via parametric analysis.
机译:利用电气化学过程中的CO2和合成增值化学品是碳捕获和利用技术中的少数可行和可扩展的途径。 CO2电力减少也被称为导致较少化石燃料消耗和未来电能存储策略的主要选项之一。目前的研究旨在开发一种新的电化学平台,通过多功能电合成和具有捕获的CO2的生物质原料的综合共同化产生低碳电子生物燃料。在这种方法中,在阴极处减少CO 2以产生阳极的增值化学品(例如,选择性氧化醇,醛,羧酸和胺/酰胺)的液体燃料(例如,甲醇)。在这项工作中,考虑各种阳极和阴极反应的连续流程设计的数值模型是为了确定能源效率,环境影响和经济价值方面的最具技术经济上可行的配置。然后通过参数分析优化反应器设计。

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