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A Study on Soft Measurement Method of Water Holdup for Gas/Liquid Two Phase Flow

机译:燃气/液体两相流水储存软测量方法研究

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For the conductance fluctuating signals measured from gas/liquid two phase flow in vertical upward pipe, the 10 feature quantities, which reflect flow characteristics of gas/liquid two phase flow, were extracted from time domain and frequency domain. The features in frequency domain were derived by using linear prediction method of speech signal processing and the features in time domain were derived by time series statistical analysis. The all extracted features were taken as the inputs of RBF neural network. At the flow conditions of water flow rate ranging from 1 (m{sup}3/hour) to 10(m{sup}3/hour) and gas flow rate ranging from 1 (m{sup}3/hour) to 130(m{sup}3/hour), the soft measurement model of the RBF neural network gave a good water holdup prediction result of gas/liquid two phase flow. This study provides a new way to measure the phase volume fraction of two phase flow by soft sensor.
机译:对于从垂直向上的管道中的气/液两相流测量的电导波动信号,从时域和频域中提取了反射气体/液体两相流的流动特性的10个特征量。通过使用语音信号处理的线性预测方法来导出频域中的特征,并且通过时间序列统计分析导出时域中的特征。所有提取的特征都被视为RBF神经网络的输入。在流量条件下,水流速的流量范围为1(m {sup} 3 /小时)至10(m {sup} 3 /小时)和气体流速范围为1(m {sup} 3 /小时)至130( M {SUP} 3 /小时),RBF神经网络的软测量模型给出了气/液两相流的良好的水储存预测结果。本研究提供了一种通过软传感器测量两相流量的相体积分数的新方法。

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