Uso de redes neurais para a previsibilidade de parâmetros de perfuração de poços de petróleo
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Universidade Federal do Rio de Janeiro
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This work develops the use of intelligent systems with the objective of achieving the minimum financial cost per meter drilled in the shortest time, through parameter predictions, this selection is currently performed through the analysis of similar wells already made and in the experience of the engineer of responsible drilling, there are few technical devices for this forecast. The use of analytical methods is usually an arduous task due to the complexity of the problem. This dissertation will present a method of transcribing tacit knowledge for computational logic through neural networks in order to predict in a more assertive way one of the main drilling parameters, which in this case is the drilling rate of drills.
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