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Modeling of growth rate dispersion in batch cooling crystallization

✍ Scribed by Martin Bohlin; Åke C. Rasmuson


Publisher
American Institute of Chemical Engineers
Year
1992
Tongue
English
Weight
917 KB
Volume
38
Category
Article
ISSN
0001-1541

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✦ Synopsis


The influence of growth rate dispersion on the product-size distribution of batch cooling crystallization is investigated by computer simulations. The model accounts for primary and magma density-dependent secondary nucleation, and growth rate dispersion of the constant crystal growth type. The model is solved by a combination of the method of characteristics and moment analysis, by which the entire productsize distribution is recovered. The study includes three different growth rate activity distributions, and the influence of the corresponding coefficient of variation is analyzed for unseeded and seeded processes. The results show that the effect of growth rate dispersion on the crystal-size distribution may be significant even at moderate dispersion. A t high dispersion, even the actual shape of the growth rate activity distribution may become important.


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