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首页> 外文期刊>Expert Systems with Application >Oil holdup prediction of oil-water two phase flow using thermal method based on multiwavelet transform and least squares support vector machine
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Oil holdup prediction of oil-water two phase flow using thermal method based on multiwavelet transform and least squares support vector machine

机译:基于小波变换和最小二乘支持向量机的热法预测油水两相流含油量

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摘要

Oil holdup of oil-water two phase flow (OWTPF) was measured using thermocouple based on the thermal method. A new model based on least square support vector machines (LSSVM) and multiwavelet transform has been proposed for the first time, which is capable of forecasting oil holdup of oil-water two phase flow. The temperature signal of OWTPF is greatly disturbed by noises from external interference, which results in a limited measurement range of oil holdup. In order to solve the problem, a new signal processing method based on the multiwavelet transform is used. Multiwavelet transform has several scaling functions and corresponding wavelet functions, which can simultaneously achieve orthogonality, symmetry. With ideal performance, noises were removed and actual temperature signal was effectively retained. The fluctuated amplitude signal denoised and total flux of OWTPF were employed as inputs and the oil holdup was used as output of LSSVM model. In order to improve the predictive accuracy and generalization ability of the LSSVM model, a Genetic Arithmetic (GA) has been adopted to determine the optimal parameters of LSSVM model automatically. The experiment results indicate that the performance of LSSVM-GA model outperforms those of artificial neural network (ANN), LSSVM-GA model can be used for estimating the oil holdup of OWTPF with reasonable accuracy.
机译:基于热法,使用热电偶测量了油水两相流(OWTPF)的含油量。首次提出了基于最小二乘支持向量机(LSSVM)和多小波变换的新模型,该模型能够预测油水两相流的含油量。 OWTPF的温度信号受到外部干扰的噪声的极大干扰,这导致有限的含油量测量范围。为了解决该问题,使用了一种基于多小波变换的信号处理新方法。多小波变换具有多个缩放函数和对应的小波函数,可以同时实现正交,对称。凭借理想的性能,噪声得以消除,实际温度信号得以有效保留。 LSSVM模型以降噪后的振幅信号和OWTPF的总通量作为输入,以含油量作为输出。为了提高LSSVM模型的预测精度和泛化能力,采用遗传算法(GA)自动确定LSSVM模型的最优参数。实验结果表明,LSSVM-GA模型的性能优于人工神经网络(ANN),LSSVM-GA模型可用于合理估计OWTPF的含油量。

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