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Tekhnologiya i Konstruirovanie v Elektronnoi Apparature, 2022, no. 1-3, pp. 3-7.
DOI: 10.15222/TKEA2022.1-3.03
UDC 621.31
Influence of ambient temperature on electrical properties of varistor-positor structure
(in Ukrainian)
Ivanchenko A. V., Tonkoshkur A. S.

Ukraine, Dnipro, Oles Honchar Dnipro National University.

Recently, the combined two-layer structure based on varistor ceramics and polymer posistor nanocomposites with carbon filler (known as PolySwitch resettable fuses) has been seen as one of the promising elements for protecting electrical circuits from long-term overvoltages. The varistor and posistor layers are in thermal contact. The main functional property of such a structure is a sharp increase (by several orders of magnitude) in the electrical resistance of the posistor nanocomposite layer during the transfer of thermal energy from the varistor layer heated by overvoltage.
Detailed information about the behavior of such combined varistor-posistor structures under different conditions, particularly in different temperature conditions, is necessary for the effective technical application of such structures as electrothermal overvoltage limiters.
This paper offers research results on the effect of ambient temperature on the electrical characteristics of such voltage limiters.
Structures based on metal oxide ceramics used in the production of serial varistors VCR 14D and a posistor nanocomposite for FRX-type PPTC fuses were used in the experiments of this study.
It has been established that with an increase in the ambient temperature, the temperature and output voltage of such a device change insignificantly in the limitation region, while the current and power dissipation of the layers significantly decrease.
At a fixed ambient temperature, the total power dissipated by the varistor and posistor layers practically does not change in the range of input voltage limitation. The dependence of the power dissipated by the varistor layer on the input voltage is identical to the analogous dependence of the current, and the power dissipation of the posistor layer tends to increase.

Keywords: varistor ceramics, polymer posistor nanocomposite, voltage limiter, electrical characteristics, temperature.

Received 23.02 2022
References
  1. Golubovic B., Becker P. N., Moore R. P. Circuit protection device having thermally coupled MOV overvoltage element and PPTC overcurrent element. Patent USA, no. 7660096.
  2. Tonkoshkur A. S., Ivanchenko A. V. Electrical properties of structures based on varistor ceramics and polymer nanocomposites with carbon filler. Journal of Advanced Dielectrics, 2019, vol. 9, no. 03, 1950023. https://doi.org/10.1142/S2010135X19500231
  3. Tonkoshkur A.S., Nakashidze L. V. The use of resttable fuses Polyswitch to prevent current overloads in photovoltaic systems. Vidnovluvana Energetika, 2020, no. 2. pp. 3444. https://doi.org/10.36296/1819-8058.2020.2(61).34-44 (Rus)
  4. Tonkoshkur A. S., Ivanchenko A. V., Nakashydze L. V. et al. Application of polymer posistor nanocomposites in systems for protecting photovoltaic components of solar arrays from electrical overloads. Monograph. USA, Boston, Primedia eLaunch, 2021, 172 p. https://doi.org/10.46299/978-1-63972-054-5
  5. Valeev Kh. S., Kvaskov V. B. Nonlinear metal-oxide semiconductors. Moscow, Energoizdat, 1983, 160 p.
  6. Gupta T. K. Application of zinc oxide varistors. Journal of the American Ceramic Society, 1990, vol. 73, no. 7, pp. 18171840. https://doi.org/10.1111/j.1151-2916.1990.tb05232.x
  7. Standler R. B. Protection of electronic circuits from overvoltages. Mineola, New York, Dover Publications, INC., 2002, 442 p.
  8. Ivanchenko A. V., Tonkoshkur A. S., Makarov V. O. Desorption thermal degradation model of zinc oxide ceramics. Journal of the European Ceramic Society, 2004, vol. 24, no. 1516, pp. 37093712. https://doi.org/10.1016/j.jeurceramsoc.2003.12.004
  9. Tonkoshkur A. S., Ivanchenko A. V. Modeling of degradation of metal oxide varistor elements for protection of electrical circuits. Dnipro, Aktsent PP, 2019, 157 p.
  10. Brice C. W., Dougal R. A., Hudgins J. L. Review of technologies for current-limiting low-voltage circuit breakers. IEEE Transactions on Industry Applications, 1996, vol. 32, no. 5, pp. 10051010. https://doi.org/10.1109/28.536858
  11. Cheng S., Tom K., Pecht M. Failure precursors for polymer resettable fuses. IEEE Transactions on Device and Materials Reliability, 2010, vol. 10, no. 3, pp. 374380. https://doi.org/10.1109/TDMR.2010.2053371
  12. Metal oxide varistors, Transient voltage surge suppressors. https://www.hitano.com.tw/wp-content/uploads/doc/14D_20180620.pdf (Data of access: 20 February 2022)
  13. FRX Series - Radial Leaded PTC. https://www.fuzetec.com/products_2.php?bgid=1&gid=31 (Data of access: 20 February 2022)
  14. [The thermal conductivity of the thermal pastes, comparison of the thermal pastes for thermal conductivity and viscosity]. http://thermalinfo.ru/svojstva-materialov/materialy-raznye/teploprovodnost-termopast-sravnenie-termopast-po-teploprovodnosti-i-vyazkosti (Data of access: 20 February 2022) (Rus)
  15. Sheftel I. T. Thermistors. Moscow, Nauka, 1973, 415 p. (Rus)
  16. Thermistor types their workings and applications. https://www.elprocus.com/introduction-to-thermistor-types-with-its-workings-and-applications/ (Data of access:20 February 2022)