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Application of multi-stage window comparator circuit with safety mode for swell voltage control in low voltage systems

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
PL
Zastosowanie kaskadowych komparatorów w trybie bezpieczeństwa do kontroli spiętrzenia napięcia w systemach niskonapięciowych
Języki publikacji
EN
Abstrakty
EN
This article presents the application of a multi-stage window comparator circuit with safety mode for swell voltage control in low voltage systems that lack stability and electrical quality. High-voltage transistors were used to build a simple voltage detecting circuit with multi-stage functions and electronic load to detect and control swell voltage . SVSS as the overloaded energy receptor resulted in clamping voltage. The voltage of a device is equal to the voltage flowing to smart electronic loads and not over the IEEE 1159 and 1100 standards. The device worked normally without causing damages. Failure Mode and Effect Analysis (FMEA) might occur using a multi-stage window comparator circuit in the safety mode. The reliability and stability in detecting voltage and controlling electronic loads to work safely under many kinds of situations were also assessed.
PL
W artykule zaprezentowano wykorzystanie komparatorów do kontroli zwiększonego napięcia w systemach niskiego napięcia. Napięcie nie przekracza zaleceń norm IEEE 1159 i 1100.
Rocznik
Strony
84--90
Opis fizyczny
Bibliogr. 29 poz., rys., tab.
Twórcy
  • Department of Electrical Engineering, Pathumwan Institute of Technology, 833 Rama1 Wangmai District, Bangkok, Thailand
autor
  • Department of Electrical Engineering, Pathumwan Institute of Technology, 833 Rama1 Wangmai District, Bangkok, Thailand
Bibliografia
  • [1] SB. Kjaer, JK. Pedersen, and F. Blaabjerg, “A review of single-phase grid-connected inverters for photovoltaic modules," in IEEE Transactions on Industry Applications, 41(2005), 1292-1306
  • [2] D. O. Johnson, K. A. Hassan. “Issues of Power Quality in Electrical Systems," International Journal of Energy and Power Engineering, 5 (2016), No. 4, 148-154
  • [3] J. Kaniewski, “Transformator hybrydowy z dwubiegunowym przekształtnikiem AC/AC bez magazynu energii DC," Przegląd Elektrotechniczny, ISSN 0033-2097, 94 (2018), nr 5, 80-85
  • [4] V. Radulovic, S. Mujovic, and Z. Miljanic, “Characteristics of Overvoltage Protection with Cascade Application of Surge Protective Devices in Low-Voltage AC Power Circuits," Advances in Electrical and Computer Engineering, 15 (2015), No. 3, 153-160
  • [5] IEEE Std C62.41.1-2002, IEEE Guide on the Surge Environment in Low-Voltage (1000 V and Less) AC Power Circuits, April 2003.
  • [6] P. Hasse, Overvoltage Protection of Low Voltage Systems, 2nd ed. United Kingdom: The Institution of Electrical Engineers, 2000.
  • [7] D. Paul, “Low-voltage power system surge overvoltage protection," in IEEE Transactions on Industry Applications, 37 (2001), 223-229
  • [8] IEEE Std 1159-2009, IEEE Recommended Practice for Monitoring Electric Power Quality, November 2009.
  • [9] IEEE Std 1100-2005, IEEE Recommended Practice for Powering and Grounding Electronic Equipment, December 2005.
  • [10] Z. He and Y. Du, “SPD Protection Distances to Household Appliances Connected in Parallel," in IEEE Transactions on Electromagnetic Compatibility, 56 (2014), No. 6, 1377-1385
  • [11] E. J. Wade, and D. S. Davidson, “Application of Transistors to Safety Circuits," in IRE Transactions on Nuclear Science, 5 (1958), No. 2, 44-46
  • [12] K. Futsuhara, and M. Mukaidono, “Application of Window Comparator to Majority Operation," in The Nineteenth International Symposium on Multiple-Valued Logic, (1989), 114-121
  • [13] K. Futsuhara, and M. Mukaidono, “A Realization of Fail-safe Sensor Using Electromagnetic Induction," in Conference on Precision Electromagnetic Measurements CPEM, (1988), 99- 100
  • [14] M. Sakai, M. Kato, K. Futsuhara, and M. Mukaidono, “Application of Fail-safe Multiple-valued Logic to Control of Power Press," in 1992 Proceedings The Twenty-Second International Symposium on Multiple-Valued Logic, (1992), 271-350
  • [15] P. Sagar, P. P. R. Madhava, “A Novel, High Speed Window Comparator Circuit," in 2013 International Conference on Circuits, Power and Computing Technologies (ICCPCT), (2013), 691-693
  • [16] M.W.T. Wong, and Y. Zhang, “Design and Implementation of Self-Testable Full Range Window Comparator," in Proceedings of the 13th Asian Test Symposium (ATS2004), (2004), 1-5
  • [17] S. Maheshwari, “Current Conveyor Based Window Comparator Circuits," Advances in Electrical Engineering, (2016), 1-8
  • [18] V. A. Pedroni, “Low-voltage high-speed Schmitt trigger and compact window comparator," in Electronics Letters, 41 (2005), No. 22, 1213-1214
  • [19] Y. Zhang and M.W.T. Wong, “Self-Testable Full Range Window Comparator," in IEEE Region 10 Conference TENCON 2004, (2004), 262-265
  • [20] N. Mungkung, S. Wongcharoen, C. Sukkongwari, and S. Arunrungrasmi, “Design of AC Electronics Load Surge Protection," in International Journal of Electrical, Computer, and Systems Engineering, ISSN 1307-5179, 1 (2007), No. 2, 126- 131
  • [21] N. Mungkung, S. Wongcharoen, K. Chomsuwan, P. Nuchuay, K. Permsupsin and T. Yuji, “Electronics Load for Voltage Swell Protection," in Conference on Embedded Systems and Intelligent Technology, (2008), 303-307
  • [22] R. N. Eldine, I. Amor, A. Massoud, and L. B. Brahim, “Smart Low Voltage ac Solid State Circuit Breakers for Smart Grids," in Global Journal of Advanced Engineering Technologies, 2 (2013), No. 3, 71-79
  • [23] IEC Std 60812-2018, Failure modes and effects analysis (FMEA and FMECA), 3th ed. IEC International Standard, July 2018.
  • [24] C. Summatta, W. Khamsen, A. Pilikeaw and S. Deeon, “Design and Simulation of Relay Drive Circuit for Safe Operation Order," in Conference on Mathematics, Engineering & Industrial Applications 2016 (ICoMEIA 2016), August 2016.
  • [25] S. Deeon, Y. Hirao, K. Tanaka, “A Relay Drive Circuit for a Safe Operation Order and its Fail-safe Measures," in The Journal of Reliability Engineering Association of Japan, 34 (2012), No.7, 489-500
  • [26] S. Deeon, Y. Hirao and K. Futsuhara, “A Fail-safe Counter and its Application to Low-speed Detection," in The Journal of Reliability Engineering Association of Japan, 33 (2011), No.3, 135-144
  • [27] IEC Std 61496-1, Safety of machinery-Electro-sensitive protective equipment-Part 1: General requirements and tests, IEC International Standard, April 2012.
  • [28] IEEE Std C62.41.1-2002, IEEE Guide on the Surge Environment in Low-Voltage (1000 V and Less) AC Power Circuits, April 2003.
  • [29] IEC Std 6100-4-5-2014, Electromagnetic Compatibility (EMC), Part 4-5, Testing and measurement techniques, Surge immunity test, IEC International Standard, June 2014.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-53c8a128-72b5-4b19-bff0-907306740d46
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