Malik Huzaifa, Khan Huma Warsi, Hassan Shah Mansoor Ul, Ahmad Muhammad Imran, Khan Iqra, Al-Kahtani Abdullah A, Sillanpää Mika
Department of Chemical Engineering, University of Engineering and Technology, 25120, Peshawar, Pakistan.
Department of Chemical Engineering, Universiti Teknologi PETRONAS, Bandar Seri Iskandar, 32610, Perak, Malaysia; Centre of Research in Ionic Liquids (CORIL), Universiti Teknologi PETRONAS, 32610, Bandar Seri Iskandar, Perak, Malaysia.
Chemosphere. 2023 Jan;311(Pt 2):136901. doi: 10.1016/j.chemosphere.2022.136901. Epub 2022 Oct 23.
Ionic liquids (ILs) have been demonstrated as promising alternatives to conventional entrainers in separation of azeotropic mixtures mostly investigating phase equilibrium and process design scenarios. However, proper selection of ILs for a specific task always remains challenging. Hence a simulation tool, i.e. conductor like screening model for real solvents (COSMO-RS) was applied to address this challenge. Furthermore, screened ILs were simulated as entrainers for ethanol water separation by extractive distillation. The current study also aims to demonstrate a systematic approach to retrofit existing processes, by employing ILs as green entrainers. Screening of twenty-five (25) ILs was carried out using COSMO-RS to select suitable ILs as green entrainers based on activity coefficient, capacity and selectivity. Results illustrated that tetramethylammonium chloride ([TMAm][Cl]) due to its strong hydrogen bonding ability was found to be the best ILs entrainer. Moreover, in order to reduce the operating costs without compromising desired product purity (ethanol purity ≥99.5% in top product), the selected ILs (8 kg/h) in a mixture with ethylene glycol (72 kg/h) were simulated using Aspen plus v.11. The simulation results revealed that by combining tetramethylammonium chloride (2 kg/h) with ethylene glycol (78 kg/h) reduced 7.26 tons of CO emissions/year through heat integration by saving 1.49*10 kJ/year energy besides minimizing operating costs. In conclusion, the systematic selection of ILs as green entrainers in combination with ethylene glycol and then the appropriate simulation of the whole system will ultimately reduce the cost of the separation process and reduce the emission of greenhouse gases as well utilization of toxic conventional entrainers.
离子液体(ILs)已被证明是共沸混合物分离中传统夹带剂的有前途的替代品,主要研究相平衡和工艺设计方案。然而,为特定任务正确选择离子液体仍然具有挑战性。因此,应用了一种模拟工具,即真实溶剂的导体类筛选模型(COSMO-RS)来应对这一挑战。此外,对筛选出的离子液体作为萃取精馏分离乙醇-水的夹带剂进行了模拟。本研究还旨在展示一种通过使用离子液体作为绿色夹带剂来改造现有工艺的系统方法。使用COSMO-RS对25种离子液体进行筛选,以根据活度系数、容量和选择性选择合适的离子液体作为绿色夹带剂。结果表明,由于其强大的氢键能力,四甲基氯化铵([TMAm][Cl])被发现是最佳的离子液体夹带剂。此外,为了在不影响所需产品纯度(塔顶产品中乙醇纯度≥99.5%)的情况下降低运营成本,使用Aspen plus v.11对所选离子液体(8 kg/h)与乙二醇(72 kg/h)的混合物进行了模拟。模拟结果表明,将四甲基氯化铵(2 kg/h)与乙二醇(78 kg/h)混合,通过热集成每年减少7.26吨二氧化碳排放,同时每年节省1.49×10⁶ kJ能量,此外还将运营成本降至最低。总之,系统地选择离子液体作为绿色夹带剂并与乙二醇结合,然后对整个系统进行适当模拟,最终将降低分离过程的成本,减少温室气体排放,并避免使用有毒的传统夹带剂。