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Study on two-phase flow regime visualization and identification using 3D electrical capacitance tomography and fuzzy-logic classification

机译:基于3D电容层析成像和模糊逻辑分类的两相流态可视化和识别研究

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摘要

From variety of industry-oriented imaging solutions the electrical capacitance tomography applied to the two-phase gas-liquid mixtures visualization and the phase distribution calculation is getting popular especially when flow key parameters are required. Industry demands particularly include efficient non-invasive automatic phase fraction calculation and flow structure identification in the vertical and horizontal pipelines. This can be solved by using non-deterministic fuzzy-logic based techniques for analysis of volumetric images. This paper presents a preliminary study on automated two-phase gas-liquid flow pattern identification based on a fuzzy evaluation of series of reconstructed 3D ECT volumetric images. The set of volume data is obtained by using nonlinear electrical capacitance tomography reconstruction algorithms. Finally a set of fuzzy-based features is calculated for flow substructure classification. As a result of this analysis obtained features will be used to classify given volumetric image into one of known flow regime structures.
机译:从各种面向工业的成像解决方案中,电容层析成像技术已应用于两相气液混合物的可视化和相分布计算,特别是在需要流量关键参数时。行业需求尤其包括在垂直和水平管道中进行高效的非侵入式自动相分数计算和流动结构识别。这可以通过使用基于非确定性模糊逻辑的技术来分析体积图像来解决。本文基于对一系列重建的3D ECT体积图像的模糊评估,对自动两相气液流模式识别进行了初步研究。通过使用非线性电容层析成像重建算法获得体积数据集。最终,计算出一组基于模糊的特征,用于流动子结构分类。作为该分析的结果,将使用获得的特征将给定的体积图像分类为已知的流动状态结构之一。

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