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Real time three-dimensional electrical impedance tomography applied in multiphase flow imaging

机译:实时三维电阻抗层析成像技术在多相流成像中的应用

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摘要

In many industrial applications the aim is to obtain information on three-dimensional (3D) material distribution within the process vessels. With standard two-dimensional (2D) techniques only vague cross-sectional information can be obtained. It could be possible to carry out several 2D reconstructions on different layers and in this way to obtain 3D information. However, in this approach errors are induced since no real 3D information is utilized in the image reconstruction. In this paper we describe an approach to measure, reconstruct and visualize three-dimensional electrical impedance tomography images in real time. The reconstruction is based on a difference imaging scheme. An efficient current injection and voltage measurement protocol is used in order to increase the sensitivity and reduce the data collection time. The proposed approach can produce and visualize up to 15 3D EIT images per second when 80 measurement electrodes are used. Imaging results from a stirred vessel and a flow loop will be shown. The reconstructions show, for example, that 3D air/liquid distribution in the stirred vessel can reliably be visualized in real time and material flow can be monitored in a 3D section of the flow loop. Reconstructions can be visualized and analysed in many different ways in order to produce essential information on the behaviour of the processes.
机译:在许多工业应用中,目标是获得有关工艺容器内三维(3D)材料分布的信息。使用标准的二维(2D)技术,只能获得模糊的横截面信息。可以在不同的层上执行几个2D重构,并以此方式获得3D信息。然而,在这种方法中,由于在图像重建中没有利用真实的3D信息,因此会引起错误。在本文中,我们描述了一种实时测量,重建和可视化三维电阻抗断层图像的方法。重建基于差异成像方案。为了提高灵敏度并减少数据收集时间,使用了有效的电流注入和电压测量协议。当使用80个测量电极时,提出的方法每秒可以生成和可视化多达15张3D EIT图像。将显示搅拌容器和流动回路的成像结果。重建显示,例如,搅拌容器中的3D空气/液体分布可以实时可靠地可视化,并且可以在流路的3D部分监视物料流。可以以许多不同的方式对重构进行可视化和分析,以生成有关流程行为的基本信息。

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