Process and techno-economic analyses of ethylene production by electrochemical reduction of aqueous alkaline carbonates

Anush Venkataraman, Hakhyeon Song, Victor D. Brandão, Chen Ma, Magdalena Salazar Casajus, Carlos A. Fernandez Otero, Carsten Sievers, Marta C. Hatzell, Saket S. Bhargava, Sukaran S. Arora, Carlos Villa, Sandeep Dhingra, Sankar Nair
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Abstract

Electrolyzer architectures using bipolar membranes (BPMs) to convert alkaline aqueous carbonates into hydrocarbons are a potential solution to overcome limitations of conventional carbon dioxide (CO2) electrolyzers. We present comprehensive process designs, simulations and a techno-economic evaluation of integrated electrolysis-based systems (from CO2 capture to product separation and stream recycling) for the production of ethylene from carbonates. Using three different scenarios for an ethylene plant with a production capacity of 2 million metric tons per year, a set of key projected performance metrics has been determined. Carbonates for electrolysis sourced from direct air capture and flue gas capture scenarios showed equivalent economics in the optimistic scenario. Concentration of capture carbonates to at least 1.5 M by alkali-stable membranes upstream of the electrolyzer is needed to make the overall process feasible. Electrolyzer sizing, configuration and costing are examined in detail to better account for economies of scale. Emerging improvements in BPM-based processes—primarily in the electrolyzer design and BPM performance—can lead to a minimum selling price that is lower than for conventional CO2 electrolysis and approaching that achieved via naphtha-based processes. Future industrial processes for the electrolytic production of ethylene from aqueous carbonate feedstocks are not well understood. The authors develop unit operations and full process designs, evaluate the techno-economics at scale, identify key process requirements and barriers, and elucidate the minimum benchmarks needed for the future commercial viability of this technology.

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碱性碳酸盐水溶液电化学还原制乙烯工艺及技术经济分析
利用双极膜(bpm)将碱性碳酸水转化为碳氢化合物的电解槽结构是克服传统二氧化碳(CO2)电解槽局限性的一种潜在解决方案。我们介绍了从碳酸盐中生产乙烯的综合电解系统(从二氧化碳捕获到产品分离和流回收)的综合工艺设计、模拟和技术经济评估。通过对年产200万吨乙烯装置的三种不同方案,确定了一套关键的预期性能指标。在乐观情况下,直接空气捕获和烟气捕获情景中用于电解的碳酸盐具有相同的经济性。为了使整个过程可行,需要在电解槽上游通过碱稳定膜将捕获的碳酸盐浓度至少提高到1.5 M。电解槽的尺寸,配置和成本的详细检查,以更好地说明规模经济。基于BPM的工艺的不断改进——主要是在电解槽设计和BPM性能方面——可以使最低销售价格低于传统的二氧化碳电解,并接近通过石脑油工艺实现的最低销售价格。从碳酸水原料中电解生产乙烯的未来工业过程尚不清楚。作者开发了单元操作和完整的过程设计,评估了大规模的技术经济,确定了关键的过程需求和障碍,并阐明了该技术未来商业可行性所需的最低基准。
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