Modeling and Simulation of Reaction and Fractionation Systems for the Industrial Residue Hydrotreating Process



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processes-08-00032 (1)

 

Naphtha 

Diesel fuel 

Tail Oil 

Dataset 1 

−0.32% 4.79% −2.11% 

Dataset 2 

−0.25% 

−0.91% 


−1.99% 

Dataset 3 

4.08% 

1.52% 


0.27% 

Dataset 4 

−0.01% 

−2.52% 0.06% 

Dataset 5 

−2.62% 


−0.07% 

−0.57% 


 

Figure 16. Predictions of the product yield: (a) naphtha; (b) diesel fuel; (c) tail oil. 

Figure 17 illustrates model predictions on the distillation curves of major products: naphtha, 

diesel fuel, and tail oil (in Dataset 1 and 2). Figure 18 shows the density predictions of three major 

products. The pinpoint predictions indicate the proposed method can well model the distillation 

curves and density predictions of major products. 

 

Figure 17. Predictions of ASTM D86 distillation curves of liquid products: (a) Dataset 1; (b) Dataset 2. 



Figure 16.

Predictions of the product yield: (a) naphtha; (b) diesel fuel; (c) tail oil.

Figure

17

illustrates model predictions on the distillation curves of major products: naphtha,



diesel fuel, and tail oil (in Dataset 1 and 2). Figure

18

shows the density predictions of three major



products. The pinpoint predictions indicate the proposed method can well model the distillation

curves and density predictions of major products.



Processes 20208, x FOR PEER REVIEW 

17 of 20 

 

Three products are produced in the residue hydrogenation process, namely, naphtha, diesel fuel, 



and tail oil. Figure 16 illustrates the model predictions on product yields: naphtha, diesel fuel, and 

tail oil. And Table 6 shows the results of five datasets in detail. It is observed that the model can 

accomplish accurate prediction on product yields with consideration of the relative deviation of each 

product, which can reveal more detailed information.   



Table 6. Prediction relative deviations of the product yield. 


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