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Simulation and environmental evaluation of process design: Distillation vs. hybrid distillation–pervaporation for methanol/tetrahydrofuran separation

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  • Luis, P.
  • Amelio, A.
  • Vreysen, S.
  • Calabro, V.
  • Van der Bruggen, B.

Abstract

Separation processes are among the most energy-intensive stages in the chemical industry, and the evaluation and minimization of environmental impacts is part of the challenges faced by environmental engineering. Pressure swing distillation is a commonly used technique for separation of the mixture methanol/tetrahydrofuran (THF); the separation is not feasible with conventional distillation due to the presence of an azeotrope. In this work, the design of a hybrid process consisting of distillation and pervaporation is elaborated as an alternative for the separation and evaluated from a technical and an environmental point of view. Three different compositions of the feed stream are considered: 25, 50 and 75wt% methanol in THF and the simulation of pressure swing distillation and the hybrid process allows comparison of the energy requirements. In addition, the effect of the membrane performance on the purity of the products and the energy demand were studied. Life cycle assessment (LCA) was used to evaluate the environmental impact of both alternatives compared to incineration. From the LCA, it was observed that the hybrid process produces the lowest impact, indicating that solvent recovery is a key issue to minimize the environmental burdens. Thus, integration of membrane technology in a hybrid configuration should be considered in the design and development of more environmentally friendly processes.

Suggested Citation

  • Luis, P. & Amelio, A. & Vreysen, S. & Calabro, V. & Van der Bruggen, B., 2014. "Simulation and environmental evaluation of process design: Distillation vs. hybrid distillation–pervaporation for methanol/tetrahydrofuran separation," Applied Energy, Elsevier, vol. 113(C), pages 565-575.
  • Handle: RePEc:eee:appene:v:113:y:2014:i:c:p:565-575
    DOI: 10.1016/j.apenergy.2013.06.040
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    References listed on IDEAS

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    1. Bénédicte Vidaillet & V. d'Estaintot & P. Abécassis, 2005. "Introduction," Post-Print hal-00287137, HAL.
    2. Kiss, Anton A. & Ignat, Radu M., 2012. "Enhanced methanol recovery and glycerol separation in biodiesel production – DWC makes it happen," Applied Energy, Elsevier, vol. 99(C), pages 146-153.
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    Cited by:

    1. You, Xinqiang & Rodriguez-Donis, Ivonne & Gerbaud, Vincent, 2016. "Reducing process cost and CO2 emissions for extractive distillation by double-effect heat integration and mechanical heat pump," Applied Energy, Elsevier, vol. 166(C), pages 128-140.
    2. Fasahati, Peyman & Liu, J. Jay, 2015. "Economic, energy, and environmental impacts of alcohol dehydration technology on biofuel production from brown algae," Energy, Elsevier, vol. 93(P2), pages 2321-2336.
    3. Zongli Xie & Derrick Ng & Manh Hoang & Jianhua Zhang & Stephen Gray, 2018. "Study of Hybrid PVA/MA/TEOS Pervaporation Membrane and Evaluation of Energy Requirement for Desalination by Pervaporation," IJERPH, MDPI, vol. 15(9), pages 1-18, September.
    4. Zhang, Hongru & Wang, Shuai & Tang, Jiaxuan & Li, Ningning & Li, Yanan & Cui, Peizhe & Wang, Yinglong & Zheng, Shiqing & Zhu, Zhaoyou & Ma, Yixin, 2021. "Multi-objective optimization and control strategy for extractive distillation with dividing-wall column/pervaporation for separation of ternary azeotropes based on mechanism analysis," Energy, Elsevier, vol. 229(C).
    5. Khalili-Garakani, Amirhossein & Ivakpour, Javad & Kasiri, Norollah, 2016. "Evolutionary synthesis of optimum light ends recovery unit with exergy analysis application," Applied Energy, Elsevier, vol. 168(C), pages 507-522.

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