Interface detection in pipe separators Using ECT: Performance with reduced number of sensing electrodes

C. Pradeep, Yanyun Ru, S. Mylvaganam
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引用次数: 3

Abstract

Pipe separators are currently being assessed as substitutes for conventional separators in the oil and gas industry for the separation of gas, oil and water. In the process of separation, the interface levels between the different media are important measurands to be monitored to optimize the separation process. Electrical Capacitance Tomography (ECT) without too much focus on tomograms can be used to detect the interfaces in a separator with enough accuracy for control purposes. With the easing of the CPU time needed for image processing, the possibility of getting enough information from reduced number of electrodes has also to be looked into, in view of reducing the processing time. The performance of the ECT system with reduced number of electrodes is studied in this paper using inferential methods based on artificial neural networks (ANN). Performance of a 12 electrode ECT system is assessed by studying its performance with only 6 and 4 electrodes. The detection/estimation of interfaces is done effectively and in much shorter time compared to the processing of data with tomograms using a 12 electrode system. The inferential method can handle non-linearity and results from it can be easily integrated into other control algorithms addressing the actuators used in separators.
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使用ECT进行管道分离器界面检测:减少传感电极数量的性能
目前,管道分离器正在被评估为油气行业中传统分离器的替代品,用于分离气、油和水。在分离过程中,不同介质之间的界面水平是优化分离过程需要监测的重要指标。电容层析成像(ECT)无需过多关注层析成像,即可用于检测分离器中的界面,具有足够的控制精度。随着图像处理所需的CPU时间的减少,从减少电极数量中获得足够信息的可能性也被研究,以减少处理时间。本文采用基于人工神经网络(ANN)的推理方法研究了减少电极数的电痉挛系统的性能。通过研究6个电极和4个电极对12个电极ECT系统的性能进行了评价。与使用12电极系统的层析成像数据处理相比,接口的检测/估计有效且在更短的时间内完成。推理方法可以处理非线性,其结果可以很容易地集成到其他控制算法中,解决分离器中使用的执行器。
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