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Multiplicative method for reduction of bias in indirect digital measurement result

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The error reduction technique, based on inverse transformation, for a shunt active resistance measurement using an ammeter and voltmeter is considered. When computing a corrected reading only multiplicative operations on two measurement results are used, namely squaring and division. The proposed method allows to increase resistance measurement accuracy by about two orders of magnitude what has been validated by both theoretical and experimental outcomes.
Rocznik
Strony
481--489
Opis fizyczny
Bibliogr. 14 poz., rys., tab., wykr.
Twórcy
  • National Research Tomsk Polytechnic University, Institute of Cybernetics, Department of Computer-aided Measurement Systems and Metrology, Pr. Lenina, 30, 634050 Tomsk, Russia, muravyov@camsam.tpu.ru
Bibliografia
  • [1] Quaresma, H.J.Q., Silva, A., Serra, A.C. (2003). Improving dynamic resistance and differential capacitance measurement of active devices. In Proceedings of the XVII IMEKO World Congress. Dubrovnik, Croatia, 1, 959-962.
  • [2] Nadi, M., Margo, C., Kouider, M., Prado, J., Kourtiche, D. (2008). Embedded system design and implementation of standard auto-calibrated measurement chain. International Journal on Smart Sensing and Intelligent Systems, 1(1), 21-33.
  • [3] Taymanov, R., Sapozhnikova, K., Druzhinin I. (2011). Sensor Devices with Metrological Self-Check. Sensors & Transducers Journal, 10(2), 30-45.
  • [4] Bromberg, E.M., Kulikovsky, K.L. (1978). Test methods for measurement accuracy improvement. Moscow: Energija. (in Russian).
  • [5] Aliev, T.M., Ter-Khachaturov, A.L., Shekikhanov, A.M. (1986). Iteration methods for measurement accuracy improvement. Moscow: Energoatomizdat. (in Russian)
  • [6] Piotrowski, J. (1992). Theory of physical and technical measurement. Amsterdam: Elsevier.
  • [7] Ziegler, S., Woodward, R.C., Iu, H.H.C., Borle, L.J. (2009). Current Sensing Techniques: A Review. IEEE Sensors Journal, 9(4), 354-376.
  • [8] Muravyov, S.V., Borikov, V.N., Natalinova, N.M. (2009). A Computer System: Measurement of Welding Surge Current. Measurement & Control, 42(2), 44-47.
  • [9] Kawamura, T., Haginomori, E., Goda, Y., Nakamoto, T. (2007). Recent Developments on High Current Measurement Using Current Shunt. Transactions on Electrical and Electronic Engineering, 2, 516-522.
  • [10] Regtien, P.P.L. (2005). Measurement Science for Engineers. London: Kogan Page Science.
  • [11] Achieving Accurate and Reliable Resistance Measurements in Low Power and Low Voltage Applications. (2004). White Paper. Keithley Instruments, Inc.
  • [12] Muravyov, S.V. (2000). Model of procedure for measurement result correction. In Proceedings of the XVI IMEKO World Congress. Vienna, Austria, 5, 135-139.
  • [13] NIST/SEMATECH e-Handbook of Statistical Methods, 2. Measurement Process Characterization, 2.5. Uncertainty analysis, http://www.itl.nist.gov/div898/handbook/mpc/section5/mpc5.htm, retrieved 12.05.2011.
  • [14] Muravyov, S.V., Borikov, V.N., Natalinova, N.M. (2009). Arrangement for shunts calibration. Patent on utility model no. 80585 (Russian Federation). Bull., (4). (in Russian)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BSW1-0083-0013
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