Real-time velocity profile measurement in two-phase oil/gas flow by twin-plane segmented ECT system

Johana Mohamad Elmy, Liyana Mohmad Ameran Hanis, A. R. Ruzairi, Mohd Faizan Marwah Omar
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引用次数: 3

Abstract

In today's industrial environment, it is common to see the use of pipes or vessels to transfer mixtures of materials or products along them. However, the measurement of the amount delivered can only be done in one way: isolate the components first; then meter, weigh or measure the volume for each individual component. This measuring procedure often stalls the production rate. This work implements a noninvasive, real time monitoring system to measure the flow concentration and velocity distributions of a two-phase (liquid-gas) flow. The system uses the combination of a specially designed twin-plane segmented Electrical Capacitance Tomography (ECT) sensor with 16 portable electrodes and the cross-correlation method as the velocity measurement technique. The measured values or data from the ECT sensor will be manipulated to reconstruct the cross sectional image of the pipeline by computer programming. These images are then cross-correlated to obtain the velocity profile of the multiphase flow. The visualization results deliver information regarding the flow regime, superficial velocity and concentration distribution in two-phase flow rate measurement system. The information obtained is able to improve: the process equipment's design, verification of existing computational modeling and simulation techniques. This technique has the possibility to promote an excellent opportunity to build methods for measuring the velocity field in multiphase flow by using noninvasive technique and cross-correlating.
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双平面分段ECT系统实时测量两相油气流动速度剖面
在今天的工业环境中,使用管道或容器来转移材料或产品的混合物是很常见的。然而,对交付量的测量只能通过一种方式完成:首先将组件隔离;然后测量、称量或测量每个单独成分的体积。这种测量方法常常会使生产速度停滞。这项工作实现了一个无创的实时监测系统,用于测量两相(液气)流的流动浓度和速度分布。该系统采用了专门设计的双平面分段电容量层析成像(ECT)传感器(16个便携式电极)和相互关法作为速度测量技术的组合。利用ECT传感器的测量值或数据,通过计算机编程重建管道的截面图像。然后将这些图像相互关联以获得多相流的速度分布。可视化结果提供了两相流量测量系统的流态、表面流速和浓度分布等信息。所获得的信息能够改进:工艺设备的设计,验证现有的计算建模和仿真技术。该技术为利用无创技术和交叉相关技术建立多相流速度场测量方法提供了良好的机会。
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