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METHOD FOR PREDICTING THE PROPERTIES OF CRUDE OILS BY THE APPLICATION OF NEURAL NETWORKS

机译:应用神经网络预测原油性能的方法

摘要

A method for predicting the properties of crude oils by the application of neural networks articulated in phases and characterized by determining the T2 NMR relaxation curve of an unknown crude oil and converting it to a logarithmic relaxation curve; selecting the values of the logarithmic relaxation curve lying on a characterization grid; entering the selected values as input data for a multilayer neural network of the back propagation type, trained and optimized by means of genetic algorithms; predicting, by means of the trained and optimized neural network, the physico-chemical factors of the unknown crude oil. The method comprises a training and optimization process of the multilayer neural network of the back propagation type. The method thus defined allows the most representative physico-chemical factors of crude oils to be predicted rapidly and without onerous laboratory structures, or alternatively the distillation curve of crude oils with an acceptable approximation degree.
机译:一种通过分阶段铰接的神经网络预测原油性能的方法,其特征在于确定未知原油的T2 NMR弛豫曲线并将其转换为对数弛豫曲线;选择位于特征网格上的对数弛豫曲线的值;输入选择的值作为反向传播类型的多层神经网络的输入数据,并通过遗传算法对其进行训练和优化;通过训练有素的神经网络预测未知原油的理化因素。该方法包括反向传播类型的多层神经网络的训练和优化过程。这样定义的方法可以在没有繁重的实验室结构的情况下快速预测原油最具代表性的理化因素,或者可以选择具有可接受近似度的原油蒸馏曲线。

著录项

  • 公开/公告号PT2584381T

    专利类型

  • 公开/公告日2019-02-14

    原文格式PDF

  • 申请/专利权人 ENI SPA;

    申请/专利号PT20120188776T

  • 发明设计人 SILVIA PAVONI;GIUSEPPE MADDINELLI;

    申请日2012-10-17

  • 分类号G01N24/08;G01R33/44;G01V3/32;

  • 国家 PT

  • 入库时间 2022-08-21 12:00:59

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