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Intelligent identification system of flow regime of oil-gas-water multiphase flow

机译:油气水多相流流态智能识别系统

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摘要

Instantaneous differential pressure signals of oil-gas-water multiphase flow in a horizontal pipe are measured with a piezo-resistance differential pressure transducer with fast response. The signals are denoised by using wavelet theory and then the characteristic vectors of various flow regimes are obtained from the denoised differential pressure signals with fractal theory. The characteristic vectors of known flow regimes are fed into a neural network for training and later on weight coefficients of neural network are obtained through training. Then, the characteristic vector of some kind of unknown flow regime of oil-gas-water multiphase flow is fed into the neural network and the neural network can automatically send out the information in respect to the classification of flow regime thus the intelligent identification of flow regime of oil-gas-water multiphase flow is realized. Practice shows that this new method for identifying flow regimes of multiphase flow and the system constructed with the method has the merits of high accuracy, fast response and automatic identification without artificial intervention etc. It will have promising application prospect.
机译:水平管中油气水多相流的瞬时差压信号是通过具有快速响应的压阻差压传感器测量的。利用小波理论对信号进行去噪,然后利用分形理论从去噪后的压差信号中获得各种流态的特征矢量。将已知流态的特征向量输入到神经网络中进行训练,然后通过训练获得神经网络的权重系数。然后,将油气水多相流的某种未知流态的特征向量输入到神经网络,神经网络可以自动发送有关流态分类的信息,从而对流进行智能识别。实现了油气水多相流状态。实践表明,这种新的多相流流态识别方法及其所构建的系统具有精度高,响应速度快,无需人工干预即可自动识别等优点,具有广阔的应用前景。

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