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April 12, 2026AIChE Journal5 citations

Process intensification for sustainable pyridine/water separation: Thermodynamic insights and energy‐efficient design

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CPChao PanJZJiahui ZhangPXPan Xu

Key Points

  • The study aims to improve pyridine wastewater separation using thermodynamic insights for sustainable industrial practices.
  • Utilized thermodynamic phase diagrams and the COSMO-RS model to identify benzyl alcohol as an entrainer.
  • Conducted quantum chemical calculations to understand the separation mechanism.
  • Designed an extractive pressure-swing distillation process (EPSDP) for effective separation.
  • Explored process intensification using heat integration, vapor recompression heat pump, and dividing wall column technologies.
  • Evaluated seven integrated processes for total annual cost, energy consumption, acid gas emissions, and thermodynamic efficiency.
  • HI-VRHP-DWC-EPSDP was identified as the optimal solution among integrated processes.
  • Reduced total annual cost by 26.14%.
  • Cut energy consumption and acid gas emissions by 54.68%.
  • Boosted thermodynamic efficiency by 74.47%.

Abstract

Abstract To address the challenge of treating pyridine wastewater generated in the chemical industry, thermodynamic phase diagrams and the COSMO‐RS model identified benzyl alcohol (BA) as an entrainer. Quantum chemical calculation further elucidated its separation mechanism. Based on these findings, an extractive pressure‐swing distillation process (EPSDP) was designed to achieve effective separation. Further process intensification exploration applied heat integration (HI), vapor recompression heat pump (VRHP), and dividing wall column (DWC) technologies, yielding seven integrated processes. A comprehensive evaluation across total annual cost (TAC), energy consumption, acid gas emissions, and thermodynamic efficiency identified the heat integrated vapor recompression heat pump assisted extractive pressure‐swing distillation with dividing wall column (HI‐VRHP‐DWC‐EPSDP) as the optimal solution. Compared to EPSDP, HI‐VRHP‐DWC‐EPSDP reduces TAC by 26.14%, cuts energy consumption and acid gas emissions by 54.68%, and boosts thermodynamic efficiency by 74.47%, demonstrating outstanding application potential.

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Cite This Study

Pan et al. (2026) studied this question.

synapsesocial.com/papers/69db383b4fe01fead37c6738https://doi.org/10.1002/aic.70399
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