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Using a particular sampling method for impedance measurement

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Języki publikacji
EN
Abstrakty
EN
The paper presents an impedance measurement method using a particular sampling method which is an alternative to DFT calculation. The method uses a sine excitation signal and sampling response signals proportional to current flowing through and voltage across the measured impedance. The object impedance is calculated without using Fourier transform. The method was first evaluated in MATLAB by means of simulation. The method was then practically verified in a constructed simple impedance measurement instrument based on a PSoC (Programmable System on Chip). The obtained calculation simplification recommends the method for implementation in simple portable impedance analyzers destined for operation in the field or embedding in sensors.
Rocznik
Strony
497--508
Opis fizyczny
Bibliogr. 19 poz., rys., tab., wykr., wzory
Twórcy
autor
  • Gdansk University of Technology, Faculty of Electronics Telecommunications and Informatics Gdansk, Poland
Bibliografia
  • [1] Sawicki, J. (1988) The Finding of the Vector of the Fundamental Harmonic by the Method of a Particular Sampling, Proc. Of 11thIMEKO Triennial World Congress “Instrumentation for the 21s’ Century”, Houston, USA, Vol. Applications, 581-589.
  • [2] Sawicki, J. (1989) The Finding of the Vector of the Third Harmonic Component by the Method of a Particular Sampling, Proc. 3rdIMEKO TC-4 Int. Symp. on Measurement in Electrical and Electronic Power Systems, Zurich Switzerland, Sept. 20-22, 1-9.
  • [3] Skale, S., Doleżek, V., Slemnik, M. (2008). Electrochemical impedance studies of corrosion protected surfaces covered by epoxy polyamide coating systems, Prog. Organic Coat., (62), No. 12, 2456-2460.
  • [4] Bordzilowski, J., Darowicki, K., Krakowiak, S., Krolikowska, A., (2003). Impedance measurements of coating properties on bridge structures, Progress in Organic Coatings, Vol. 46, 216-219.
  • [5] Krejci, I., Parilkowa, J. (2005) Electrode Systems and Their Switching Used in Monitoring of Dike Status, Proc. 10-th IMEKO TC10 Int. Conf. on Technical Diagnostics, Budapest, Hungary, 2005, 63-65.
  • [6] Krejci, I., Parilkowa, J. (2005) Impedance Spectrometer for in situ Dike Monitoring, Proc. of 14-th IMEKO TC-4 Int. Symp. on New Technologies in Meas. and Instrumentation, Jurata, 2005, 283-288.
  • [7] Parilkowa, J., Krejci, I, Vesely, J. (2005) Two Non-invasive Methods of Dike Monitoring and Their Results, Proc. 10-th IMEKO TC10 Int. Conf. on Technical Diagnostics, Budapest, Hungary, 2005, 67-71.
  • [8] Chachulski, B., Gębicki, J., Jasiński, G., Jasiński, P., Nowakowski, A. (2006) Properties of a polyethyleneimine-based sensor for measuring medium and high relative humidity, Meas. Sci. Technol., Vol. 17, No. 1, 12-16.
  • [9] Angelini, E., Carullo, A., Corbellini, S., Ferraris, F., Gallone, V., Grassini, S., Parvis, M., Vallan, A. (2006). Handheld-impedance-measurement system with seven-decade capability and potentiostatic function. IEEE Trans. Instrum. Meas., vol. 55, no. 2, Apr. 2006, 436-141.
  • [10] Santos, J., Ramos, P. (2011) DSPIC-Based Impedance Measuring Instrument. Metrology and Measurement Systems. Vol. XVIII, Issue 2, pp. 185-198.
  • [11] Hoja, J., Lentka G. (2010). Interface circuit for impedance sensors using two specialized single-chip Microsystems. Sensors and Actuators A-physical, Vol. 163, No. 1, 191-197.
  • [12] Hoja, J., Lentka G. (2011). Method using square-pulse excitation for high-impedance spectroscopy of anticorrosion coatings, IEEE Transactions on Instrumentation and Measurement, Vol. 60, 957-64.
  • [13] Hoja, J., Lentka, G., Zielonko, R. (2002) Measurement microsystem for high impedance spectroscopy of anticorrosion coatings, Metrology and Measurement Systems, Vol. 9, No 1, 31-44.
  • [14] Hoja, J., Lentka, G. (2007) New concept of the measurement probe for high impedance spectroscopy, Metrology and Measurement Systems, Vol. 14, No. 4, 543-554.
  • [15] Ramos, P. M., Radil, T., Janeiro, F. M. (2012) Implementation of sine-fitting algorithms in systems with 32-bit floating point representation, Measurement, Vol. 45, No. 2, 155-163.
  • [16] Ramos, P., Janeiro, F., Radil, T. (2010) Comparative Analysis of Three Algorithms for Two-Channel Common Frequency Sinewave Parameter Estimation: Ellipse Fit, Seven Parameter Sine Fit and Spectral Sinc Fit. Metrology and Measurement Systems. Vol. 17, Issue 2, pp. 255-270.
  • [17] Smith, W. H. (1999) The Scientist and Engineer’s Guide to Digital Signal Processing, California Technical Publishing, San Diego, USA, 1999.
  • [18] Analog Devices (2005) Datasheet: AD5933 1 MSPS, 12-Bit Impedance Converter, Network Analyzer.
  • [19] Cypress Semiconductor (2013) PSoC™ Mixed Signal Array Technical Reference Manual, Rev. H.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-123785c9-3b0d-4044-b3ee-ac93260caf55
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