A Systematic Methodology for the Synthesis of Advanced Reactive Distillation Technologies

Journal Article (2023)
Author(s)

Isabel Pazmiño-Mayorga (The University of Manchester)

Megan Jobson (The University of Manchester)

A.A. Kiss (TU Delft - ChemE/Product and Process Engineering)

Research Group
ChemE/Product and Process Engineering
Copyright
© 2023 Isabel Pazmiño-Mayorga, Megan Jobson, A.A. Kiss
DOI related publication
https://doi.org/10.1021/acs.iecr.2c04540
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 Isabel Pazmiño-Mayorga, Megan Jobson, A.A. Kiss
Research Group
ChemE/Product and Process Engineering
Issue number
14
Volume number
62
Pages (from-to)
5907-5928
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Abstract

This study is the first to provide a systematic approach to assessing the potential of advanced reactive distillation technologies to expand the applicability of reactive distillation. The work presented here focuses on the synthesis of advanced reactive distillation technologies, proposing a conceptually based methodology for early-stage screening. The methodology uses basic thermodynamic and kinetic data to navigate a decision-making flowchart in four steps: compositions and splits, basic properties and operating windows, kinetics, and phase equilibria. The results qualify advanced reactive distillation technologies as advantageous, technically feasible, or not applicable. Five industrially relevant case studies illustrate the application of the methodology to develop preliminary process flowsheets. The proposed methodology aims to guide technology selection using basic data while providing flexibility to meet the objectives of the design problem. This methodology contributes to integrating a technology-oriented approach normally followed in process intensification studies into a process systems engineering approach by developing a conceptual flowsheet in the early stages of process design.