Wh. Hwang et al., MODELING OF BULK COPOLYMERIZATION REACTOR USING CHAIN-LENGTH-DEPENDENT RATE CONSTANTS, Journal of applied polymer science, 64(5), 1997, pp. 1015-1027
A mathematical model is developed for a batch reactor in which binary
free radical copolymerization occurs. The diffusion-controlled feature
s of the propagation and termination reactions are taken into account
by applying the free volume theory, whereas the chain-length-dependent
termination rate constant is formulated by using the continuous proba
bility function. Application of the pseudokinetic rate constant method
, as well as the terminal model, reduces the complex rate expressions
for the copolymerization system to those for the corresponding homopol
ymerization system. In addition, the moment equations of the living an
d dead polymer concentrations, as well as the equation for copolymer c
omposition, are derived to compute the average molecular weight and th
e copolymer composition. The model is proven adequate when applied to
the copolymerization system of styrene and acrylonitrile with AIBN(2,2
'-azobisisobutyronitrile) initiator. The results of model prediction c
learly show that even the propagation reaction is limited by the diffu
sion of monomers at higher conversion and that the azeotropic fraction
of styrene is about 0.6. It is noticed that as the monomer conversion
increases, the molecular weight distribution tends to become broader
because the weight-average molecular weight increases at a faster rate
than the number-average molecular weight. (C) 1997 John Wiley & Sons,
Inc.