Polypropylene melt index predicating method based on multiple priori knowledge mixed model
A technology based on prior knowledge and melt index, applied in the field of soft sensor prediction of polypropylene industrial process, can solve the problems of low precision of pure mechanism model, inability to guarantee extrapolation ability and safety performance of pure data-driven model, etc.
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[0074] The present invention will be further described below in conjunction with the accompanying drawings.
[0075] refer to figure 2 , image 3 , a polypropylene melt index prediction method based on multiple prior knowledge mixed models, the specific implementation method is as follows:
[0076] (1) Offline modeling
[0077] First off-line initialization to establish a polypropylene melt index prediction model based on multiple prior knowledge mixed models, the specific process is as follows:
[0078] 1) From a loop-type liquid phase propylene bulk polymerization field device of a Chinese petrochemical company ( figure 1 ), collect the data needed to establish the soft sensor model through two ways. According to the production process and reaction mechanism of double-loop liquid phase propylene bulk polymerization, the auxiliary variable of the soft sensor model is determined to be the hydrogen concentration of the two loops , Hydrogen feed amount , Feed amoun...
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