Simulation of Tabriz refinery hydrocracker unit by artificial neural network
Publish place: 5th International Congress on Chemical Engineering
Publish Year: 1386
نوع سند: مقاله کنفرانسی
زبان: English
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شناسه ملی سند علمی:
ICHEC05_199
تاریخ نمایه سازی: 7 بهمن 1386
Abstract:
In this article artificial neural network modeling of hydrotreater plant has been the subject of study. In this case a typical refinery data has been collected. Data has been processed and mined and worse data had been disrgarded in modeling. 70% of data set have been used for traing of the network. The best network which provides the minimum error has been adopted for identification. Some parameters like number of hidden neurons, learning rate and momentum rate has been depicted for best network. Input of the network has been feed sulfur content,API , boiling poit. Outlet of network are sulfur content, light hydrocarbon yield and heavy hydrocarbon yields. The obtained network has been checked with 30% of the un_seen data. Excellent agreement between model evaluation and these data was observed. The obtained model is fast responding and easy to implement and can be used for optimization, control and specially for training staffs purposes. High accuracy is another features of the model
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