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A theoretical model for enzymatic catalysis using asymmetric hollow fiber membranes

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TLDR
A numerical finite difference solution for nonlinear Michaelis-Menten reaction kinetics is shown to agree with the analytic solution, as Km/C0, the ratio of the Michaelis constant to the initial substrate concentration, becomes large (> 100).
Abstract
The behavior of an immobilized enzyme reactor utilizing asymmetric hollow fibers is simulated using a theoretical model. In this reactor, an enzyme solution contained within the annular open-cell porous support structure of the fiber is separated from a substrate flowing through the fiber lumen by an ultrathin dense membrane impermeable to enzyme but permeable to substrate and product. The coupled set of model equations describing the behavior of this reactor represents an extended Graetz problem in the fiber lumen, with diffusion through the ultrathin fiber skin and reaction in the microporous sponge region. Exact analytic expressions for substrate concentration profiles throughout an idealized fiber which incorporate the membrane and hydrodynamic mass transfer resistances are obtained for a first-order enzyme reaction, and numerical techniques for their evaluation are given. This analysis is extended to yield a numerical finite difference solution for nonlinear Michaelis-Menten reaction kinetics, which is shown to agree with the analytic solution, as Km/C0, the ratio of the Michaelis constant to the initial substrate concentration, becomes large (> 100).

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Journal ArticleDOI

Mathematical analysis of two-phase mass transfer in a batch reactor for the chemical transformation of a steroid.

TL;DR: A reactor is described for the conversion of the slightly water‐soluble steroid testosterone (T) to 4‐androstene‐3, 17‐dione (4‐AD) by enzyme in the presence of excess cofactor.
Journal ArticleDOI

A finite-difference solution of solute transport through a membrane bioreactor

TL;DR: In this paper, the authors presented a theoretical analysis of the transport of solutes through a fixed-film membrane bioreactor (MBR), immobilised with an active biocatalyst.
Journal ArticleDOI

An efficient algorithm for solving hollow-fiber bioreactor design equations

TL;DR: In this paper, a simple algorithm for solving the hollow-fiber bioreactor design equations has been presented, which is quite general and is applicable to any nonlinear reaction occurring in the reactor spongy matrix.

Enzymatic hydrolysis of lactose in a hollow-fiber reactor

TL;DR: The backflush scheme proposed by Breslau and Kilcullen, in which bulk flow is expected to play a role in the enzymatic conversion of liquid substrates, has been investigated further in this work.
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