2014
DOI: 10.4236/aces.2014.42030
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Application of Artificial Neural Networks Based Monte Carlo Simulation in the Expert System Design and Control of Crude Oil Distillation Column of a Nigerian Refinery

Abstract: This research work investigated comparative studies of expert system design and control of crude oil distillation column (CODC) using artificial neural networks based Monte Carlo (ANNBMC) simulation of random processes and artificial neural networks (ANN) model which were validated using experimental data obtained from functioning crude oil distillation column of Port-Harcourt Refinery, Nigeria by MATLAB computer program. Ninety percent (90%) of the experimental data sets were used for training while ten perce… Show more

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Cited by 7 publications
(5 citation statements)
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“…Previous studies focussed majorly on refluxing greeners in HCl, ethanol and H 2 SO 4 solutions for some period of time. In support of these, existing optimization tools such as response surface methodology and central composite design of design expert coupled with predictive tools such artificial neural network based Monte Carlo simulation, sum of square errors and so on will be of help [198] . Flavonoid is a good candidate to explain the corrosion inhibition effects observed in greeners.…”
Section: Discussionmentioning
confidence: 99%
“…Previous studies focussed majorly on refluxing greeners in HCl, ethanol and H 2 SO 4 solutions for some period of time. In support of these, existing optimization tools such as response surface methodology and central composite design of design expert coupled with predictive tools such artificial neural network based Monte Carlo simulation, sum of square errors and so on will be of help [198] . Flavonoid is a good candidate to explain the corrosion inhibition effects observed in greeners.…”
Section: Discussionmentioning
confidence: 99%
“…In order to improve the performance of the network, adaption of its adjustable parameters (weights and biases) during ANN model training is required for its output to match with the target value. The magnitude of performance gradient being lower than 1e −5 implies completion of training step (Popoola and Susu, 2014).…”
Section: Resultsmentioning
confidence: 99%
“…These wells have passed their peak of production and are heading toward the end of their economic value (Essien, 2016;Jha et al, n.d.). Optimum decisions in oil and gas production mean that production operators must make or have strategic decisions including considering factors such as fluctuations in world oil prices (Popoola et al, 2015), and limited processing capacity, which will directly affect the decision-making process, especially for production facilities with marginal profits.…”
Section: Pendahuluanmentioning
confidence: 99%