Affiliation:
1. Department of Chemical and Biological Engineering Drexel University Philadelphia Pennsylvania USA
2. Department of Chemical and Bimolecular Engineering University of Pennsylvania Philadelphia Pennsylvania USA
3. School of Sustainable Chemical Biological and Materials Engineering University of Oklahoma Norman Oklahoma USA
Abstract
AbstractBi‐continuous jammed emulsion (bijel) membrane reactors, integrating simultaneous reaction and separation, offer a promising avenue for enhancing membrane reactor processes. In this study, we present a comprehensive macroscopic‐scale physicochemical model for tubular bijel membrane reactors and a numerical solution strategy for solving the governing partial differential equations. The model captures the co‐continuous network of two immiscible phases stabilized by nanoparticles at the liquid–liquid interface. We present the derivation of model equations and an efficient numerical solution strategy. The model is validated with experimental results from a conventional enzymatic biphasic membrane reactor for oleuropein hydrolysis, already reported in the literature. Simulation results indicate accurate prediction of reactor behavior, highlighting the potential superiority of bijel membrane reactors over current technologies. This research contributes a valuable tool for scale‐up, design, and optimization of bijel membrane reactors, filling a critical gap in this emerging field.
Funder
National Science Foundation