Extending the application of bifunctional ionic liquid-based integrated capture and conversion of CO2 to produce cyclic carbonates

IF 7.2 2区 工程技术 Q1 CHEMISTRY, MULTIDISCIPLINARY
Alejandro Belinchón, Álvaro Pereira, Elisa Hernández, Pablo Navarro, José Palomar
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Abstract

Nowadays there is an urgent need for mitigating CO2 emissions through clean energy and the development of new carbon capture and utilization (CCU) technologies. Among others, the use of bifunctional ionic liquids (ILs) addressed simultaneously CO2 capture and conversion steps, having applied successfully to the propylene carbonate production case. In this work, a systematic evaluation of all representative cyclic carbonate literature was made, covering ethylene, propylene, butylene, hexylene, cyclohexene, and styrene cyclic carbonates, in order to guide the product role within the integrated CCU (ICCU) concept. The multiscale strategy combining molecular simulation (DFT -Density Functional Theory-, COSMO -COnductor-like Screening MOdel-), process simulation (COSMO/Aspen methodology), and life cycle assessment (LCA) was used to set up, simulate and evaluate the processes. ICCU configuration is the best approach when compared with sequential configuration for energy consumption analysis (reduction of 28, 28, 22, 11 and 6 %, respectively, for ethylene, propylene, butylene, hexylene, and cyclohexene cases) and CO2 emissions associated (reduction of 38, 40, 31 and 14 %, respectively, for ethylene, propylene, butylene, and hexylene cases). The main variable of the results is the boiling point of the cyclic carbonate since heavy products impose technical limitations and even discard ICCU alternative. The ICCU concept works since all cyclic carbonates’ reaction enthalpies are higher than that of the IL-CO2 one, which reduces heating requirements. Finally, energy demand can be slightly further reduced, partially recycling the cyclic carbonate to the capture unit.

扩展基于双功能离子液体的二氧化碳综合捕获和转化技术的应用,以生产环状碳酸盐
目前,迫切需要通过清洁能源和开发新的碳捕集与利用(CCU)技术来减少二氧化碳排放。其中,使用双功能离子液体(ILs)可同时解决二氧化碳捕获和转化步骤,已成功应用于碳酸丙烯酯生产案例。在这项工作中,对所有具有代表性的环状碳酸酯文献进行了系统评估,包括乙烯、丙烯、丁烯、己烯、环己烯和苯乙烯环状碳酸酯,以指导产品在集成 CCU(ICCU)概念中的作用。在建立、模拟和评估过程中,采用了分子模拟(DFT-密度函数理论、COSMO-类电导筛选 MOdel-)、过程模拟(COSMO/Aspen 方法)和生命周期评估(LCA)相结合的多尺度策略。在能耗分析(乙烯、丙烯、丁烯、己烯和环己烯案例分别减少 28%、28%、22%、11% 和 6%)和二氧化碳排放(乙烯、丙烯、丁烯和己烯案例分别减少 38%、40%、31% 和 14%)方面,ICCU 配置与顺序配置相比是最佳方法。结果的主要变量是环碳酸酯的沸点,因为重质产品会造成技术限制,甚至放弃 ICCU 替代方案。ICCU 概念之所以可行,是因为所有环状碳酸盐的反应热焓都高于 IL-CO 反应热焓,从而降低了加热要求。最后,通过将部分环状碳酸盐回收到捕集装置,还可以进一步减少能源需求。
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来源期刊
Journal of CO2 Utilization
Journal of CO2 Utilization CHEMISTRY, MULTIDISCIPLINARY-ENGINEERING, CHEMICAL
CiteScore
13.90
自引率
10.40%
发文量
406
审稿时长
2.8 months
期刊介绍: The Journal of CO2 Utilization offers a single, multi-disciplinary, scholarly platform for the exchange of novel research in the field of CO2 re-use for scientists and engineers in chemicals, fuels and materials. The emphasis is on the dissemination of leading-edge research from basic science to the development of new processes, technologies and applications. The Journal of CO2 Utilization publishes original peer-reviewed research papers, reviews, and short communications, including experimental and theoretical work, and analytical models and simulations.
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