离子液体
苯乙烯
工艺工程
生产(经济)
分离(统计)
化学工程
能量(信号处理)
化学
生化工程
材料科学
计算机科学
色谱法
废物管理
环境科学
工程类
催化作用
有机化学
共聚物
物理
经济
量子力学
聚合物
宏观经济学
机器学习
作者
Yang Lei,Jiaqi Yan,Yuming Chen,Yuming Chen,Xinyan Liu,Xiaodong Liang,Georgios M. Kontogeorgis,Yuqiu Chen,Yuqiu Chen
摘要
Abstract The separation of ethylbenzene/styrene represents a pivotal step in the styrene production process, which is associated with significant energy consumption, substantial costs, and considerable environmental impact. In this study, ionic liquids (ILs) were incorporated into the separation process, thereby enabling energy‐efficient styrene production through the use of extractive distillation. By solving a formulated mixed‐integer nonlinear programming (MINLP) problem based on computer‐aided ionic liquid design (CAILD), 1‐methylpyridinium trifluoromethanesulfonate ([mPy][CF 3 SO 3 ]) and 1‐ethylpyridinium tetrafluoroborate ([C 2 Py][BF 4 ]) were identified as optimal IL candidates for this application. Comprehensive process simulations and optimizations were conducted, focusing on energy consumption, environmental impact, and economic performance. In comparison to the conventional process, the [mPy][CF 3 SO 3 ]‐based and [C 2 Py][BF 4 ]‐based processes achieved reductions in energy consumption by 44.2 % and 59.0 %, respectively. Furthermore, there was a notable reduction in carbon emissions, amounting to 28.9 % and 25.4 %. However, processes utilizing [mPy][CF 3 SO 3 ] showed an increase in total annual cost (TAC) by 11.8 %. Meanwhile, processes based on [C 2 Py][BF 4 ] demonstrated a diminution in TAC by 3.7 %. Nonetheless, Monte Carlo simulations indicate that IL‐based processes exhibit slightly better resilience to economic uncertainties compared to conventional processes. Overall, the significant energy and environmental benefits of IL‐based processes highlight their potential in styrene production, especially with the implementation of active policies related to energy use and carbon emissions (e.g., carbon taxes).
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