Application of electrical capacitance tomography for imaging conductive materials in industrial processes
Resource type
Authors/contributors
- Deabes, W. (Author)
- Sheta, A. (Author)
- Bouazza, K.E. (Author)
- Abdelrahman, M. (Author)
Title
Application of electrical capacitance tomography for imaging conductive materials in industrial processes
Abstract
This paper presents highly robust, novel approaches to solving the forward and inverse problems of an Electrical Capacitance Tomography (ECT) system for imaging conductive materials. ECT is one of the standard tomography techniques for industrial imaging. An ECT technique is nonintrusive and rapid and requires a low burden cost. However, the ECT system still suffers from a soft-field problem which adversely affects the quality of the reconstructed images. Although many image reconstruction algorithms have been developed, still the generated images are inaccurate and poor. In this work, the Capacitance Artificial Neural Network (CANN) system is presented as a solver for the forward problem to calculate the estimated capacitance measurements. Moreover, the Metal Filled Fuzzy System (MFFS) is proposed as a solver for the inverse problem to construct the metal images. To assess the proposed approaches, we conducted extensive experiments on image metal distributions in the lost foam casting (LFC) process to light the reliability of the system and its efficiency. The experimental results showed that the system is sensible and superior. © 2019 Wael Deabes et al.
Publication
Journal of Sensors
Publisher
Hindawi Limited
Date
2019
Volume
2019
Journal Abbr
J. Sensors
Citation Key
deabesApplicationElectricalCapacitance2019
ISSN
1687725X (ISSN)
Archive
Scopus
Language
English
Extra
15 citations (Crossref) [2023-10-31]
Citation
Deabes, W., Sheta, A., Bouazza, K. E., & Abdelrahman, M. (2019). Application of electrical capacitance tomography for imaging conductive materials in industrial processes. Journal of Sensors, 2019. Scopus. https://doi.org/10.1155/2019/4208349
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