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- W3133268380 abstract "Online monitoring of the solid phase in industrial processes of sugar crystallization is still a challenge. Laser backscattering is one of the most promising techniques; however, the measured chord length distribution (CLD) does not have a physical meaning of crystal size. This work converted sucrose CLD measured by an online sensor into particle size distribution (PSD) using an artificial neural network (ANN). CLD and suspension concentration of 116 experiments were the input to the ANN and PSD was its output. The trained ANN exhibited a coefficient of variation between experimental and calculated PSD of 0.998. Data of experimental sucrose crystallization was used to validate the model, resulting in a maximum deviation of 0.090 mm in mean size and 6.16% in the coefficient of variation of distribution. This model may be used to improve both industrial processes (process optimization and control) and laboratory studies (kinetics determination)." @default.
- W3133268380 created "2021-03-01" @default.
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- W3133268380 date "2021-05-01" @default.
- W3133268380 modified "2023-10-01" @default.
- W3133268380 title "An artificial neural network model applied to convert sucrose chord length distributions into particle size distributions" @default.
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- W3133268380 doi "https://doi.org/10.1016/j.powtec.2021.01.075" @default.
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