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Water holdup measurement of oil-water two-phase flow based on KPLS regression

机译:基于KPLS回归的油水两相流持水率测量

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Oil-water two-phase flow frequently exists in laboratorial researches and petroleum industry. Water holdup is significant parameters for oil-water two-phase flow. The kernel partial least squares (KPLS) is an excellent nonlinear regression model. Compared with partial least squares (PLS), KPLS is provided high accuracy prediction for complex system. Based on a 16-electrode electrical resistance tomography (ERT) sensor and the soft sensor technology, a new measurement of water holdup is proposed for oil-water two-phase flow. The soft sensor technology applied in the research is a KPLS nonlinear regression algorithm. Through choice of kernel function, the computational results of four typical flow regimes of oil-water two-phase flow is shown that the KPLS method can be real-time measured the water holdup effectively.
机译:油水两相流在实验室研究和石油工业中经常存在。持水率是油水两相流的重要参数。核偏最小二乘(KPLS)是出色的非线性回归模型。与偏最小二乘(PLS)相比,KPLS为复杂系统提供了高精度预测。基于16电极电阻层析成像(ERT)传感器和软传感器技术,提出了一种新的油-水两相流持水率测量方法。研究中应用的软传感器技术是KPLS非线性回归算法。通过选择核函数,对油水两相流四种典型流态的计算结果表明,KPLS方法可以实时有效地测量持水率。

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