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Wideband excitation signals for electrical impedance industrial process tomography

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Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper addresses the foundational choice of excitation signal that can extend Electrical Impedance IPT to gain spectral data, allowing the interpretation of material or component identification; or the estimation of the parameters of a process model. It provides a review of candidate signals and their key design characteristics, including: pulse, sinc, maximal length pseudo random binary sequence and linear chirp forms. Features are analysed via an electrical network simulation. Conclusions address signal bandwidth, sampling, measurement duration, and frequency resolution.
Rocznik
Tom
Strony
99--104
Opis fizyczny
Bibliogr. 22 poz.
Twórcy
autor
autor
  • Institute of Integrated Information Systems, School of Electronic and Electrical Engineering, University of Leeds, UK, nahvi@guilan.ac.ir
Bibliografia
  • ANALOG DEVICES Inc., (2004), AD9852 digital synthesizer datasheet.
  • BARLOW R.K., WILLIAMS R.A., BOND J., OLIVER K.T., HUNT P., (1997), Composition analysis of mixed mineral suspensions using impedance spectroscopy, Frontiers in Industrial Process Tomography II, Delft University of Technology, Netherlands, pp. 131-136.
  • BECK M.S., DYAKOWSKI T., WILLIAMS R.A., (1998), Process tomography - the state of the art, Transactions of the Institute of Measurement and Control, Vol. 20, pp. 163-177.
  • COOK C.E., (1967), Radar signals: an introduction to theory and application, Academic Press.
  • DAROWICKI K., SLEPSKI P., (2004), Determination of electrode impedance by means of exponential chirp signal, Electrochemistry Communications, Vol. 6, pp. 898-902.
  • DICKIN F., WANG M., (1996), Electrical resistance tomography for process applications, Measurement Science and Technology, Vol. 7, pp. 247-260.
  • GEORGAKOPOULOS D., YANG W.Q., WATERFALL R.C., (2003), Best value design of electrical tomography systems Proceedings 3rd World Congress on Industrial Process Tomography, Banff Canada, pp. 11-19.
  • LJUNG L., (1999), System identification: theory for the user, Prentice Hall, London.
  • NAHVI M., HOYLE B.S., (2007a), Process impedance spectroscopy through chirp waveform excitation, Proceedings 5th World Congress on Industrial Process Tomography, Bergen, Norway, pp. 630-637.
  • NAHVI M., HOYLE B.S., (2007b), Wideband electrical impedance tomography simulation study, Proceedings 5th World Congress on Industrial Process Tomography, Bergen, Norway, pp. 1030-1037.
  • NAHVI M., HOYLE B.S., (2008), Wideband electrical impedance tomography, Measurement Science and Technology, in press.
  • OPPENHEIM A.V., WILLSKY A., NAWAB S.H., (1997), Signals and systems, 2nd ed, Prentice-Hall, London.
  • OUDERAA E., SCHOUKENS J., RENNEBOOG J., (1988), Peak factor minimization using a time-frequency domain swapping algorithm, IEEE Transactions on Instrumentation and Measurement, Vol. 37, pp. 145-147.
  • PRAKAKASH P., GAN T.H., HUTCHINS D.A., (2007), Elliptical-Tukey Chirp Signal for High-Resolution, Air-Coupled Ultrasonic Imaging, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control, Vol. 54, pp. 1530-1540.
  • PRIMROSE K., QIU C, (1999), Performance and application studies of an electrical resistance tomography system, Proceedings 1st World Congress on Industrial Process Tomography, Buxton, UK, pp. 133-139.
  • QIU C, HOYLE B.S., PODD F.J.W., (2007), Engineering and application of a dual-modality process tomography system, Journal of Flow Measurement and Instrumentation, Vol.18, pp. 247-254.
  • RICARD F., BRECHSTELSBAUR C, XU X.Y., LAWRENCE C.J., (2005), Monitoring of multiphase pharmaceutical processes using electrical resistance tomography, Chemical Engineering Research and Design, Vol. 83 A7, pp. 794-805.
  • RIVERA D.E., GAIKWAD S.V., CHEN X., (1994), CONTROL-ID: a demonstration prototype for control-relevant identification, American Control Conference, Vol. 2, pp. 2055-2059.
  • SCHROEDER M., (1970), Synthesis of low-peak-factor signals and binary sequences with low autocorrelation (Corresp.), IEEE Transactions on Information Theory, Vol.16, pp. 85-89.
  • STANLEY S.J., (2006), Tomographic imaging during reactive precipitation: mixing with chemical reaction, Chemical Engineering Science, Vol.61, pp. 7850-7863.
  • WANG M., MA Y., HOLLIDAY N., DAI Y., WILLIAMS R.A., LUCAS G., (2005), A high performance EIT system, IEEE Sensors Journal Vol.5, pp. 289-299.
  • ZIMMERMANN E., KEMNA.A., BERWIX J., GLAAS W., (2007), EIT Measurement System with High Phase Accuracy for the Imaging of Spectral Induced Polarization Properties of Soils and Sediments, Proceedings 5th World Congress on Industrial Process Tomography, Bergen, Norway, pp. 51-58.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-LOD1-0020-0031
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