Advanced instrument for membrane-assisted antisolvent crystallization developed via cold model experiment analysis
Special Issue on Celebrating the 100th Anniversary of the School of Chemical Engineering and Technology of Tianjin University|Updated:2026-01-08
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Advanced instrument for membrane-assisted antisolvent crystallization developed via cold model experiment analysis
Chinese Journal of Chemical EngineeringVol. 86, Issue 10, Pages: 123-137(2025)
Affiliations:
State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials, School of Chemical Engineering, Dalian University of Technology,Dalian,China,116024
Advanced instrument for membrane-assisted antisolvent crystallization developed via cold model experiment analysis
摘要
Abstract
Membrane-assisted antisolvent crystallization (MAAC) is a separation process that allows for precise regulation of the crystallization process in pharmaceutical
fine chemical engineering
energy chemistry
etc. After decades of development
the current MAAC engineering lacks highly robust specialized instruments
which limits the further industrial application of the MAAC process. Herein
to guide the design and optimization of the advanced MAAC instrument (DUT-iMC)
we developed a parameter evaluation strategy based on cold model experiments. This approach utilizes the average particle size variation rate and the counts variation rate to characterize crystal size changes. The layout of the internal membrane module in DUT-iMC and the arrangement of the conveying pipeline were optimized. This improvement enhanced particle conveying characteristics
promoting more efficient transport and circulation within the module. The advanced MAAC instrument substantially automates the production process
and the internal probes accurately monitor and record process variables
allowing for precise regulation of crystal size and morphology. The optimal operating range was expanded by 150% compared to the laboratory instrument. The range of shell side flow rate options increased by 50%
and the production time can be shortened by up to 30%. This paper provides ideas and guidance for the industrialization of MAAC processes and the development of related instruments.
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