Destruction of polymer insulation and threshold amplitudes of current pulses of different temporal shapes for electric wires and cables in the low- and high-current circuits of pulse power engineering, electrical engineering and electronic devices

Authors

DOI:

https://doi.org/10.20998/2074-272X.2021.6.05

Keywords:

electrical wires and cables with polymer insulation, electrothermal resistance of cable and wire products, destruction of insulation, threshold amplitudes of current pulses for wires and cables

Abstract

Goal. Development of engineering method for settlement of threshold amplitudes Impk of single-pulse current ip(t) of different temporal shapes for electric wires and cables with polyethylene (PET), polyvinylchloride (PVC) and rubber (R) half-length insulation, used in modern pulsed power engineering, electrical engineering and electronics in their low- and high-current circuits. Methodology. Basis of the theoretical and applied electrical engineering, electrical power engineering, electrophysics bases of technique of high-voltage and large pulsed currents, bases of low- and high-current electronics, measuring technique, electromagnetic compatibility and standardization. Results. Development of engineering method is executed on close calculation determination of threshold amplitudes Impk of single-pulse axial-flow current ip(t) of different temporal shapes for electric wires and cables with copper (aluminum) current-carrying parts and PET, PVC and R half-length insulation, used in the ow- and high-current circuits of pulsed electrical power engineering, electrical engineering and electronics. Electrothermal resistibility of half-length insulation of the examined cable and wire products (CWP), proper maximum to the possible temperatures of heating of current-carrying and insulating parts of the probed wires and cables and shutting out the offensive of the phenomenon destruction in the indicated insulation of CWP, was fixed based on this method. Calculation analytical correlations are obtained for finding in probed CWP of threshold numeral values of Impk amplitudes of pulses of current ip(t), time-varying both on aperiodic dependence of type τfp with duration of their front τf and duration of their pulses τp and by law of exponential attenuation sinewave. It is shown that at Imp>Impk destruction of their half-length insulation, resulting in the decline of service life of CWP, will come from the thermal overheat of current-carrying parts of the examined electric wires and cables. The examples of practical application of the offered method are resulted upon settlement for a radiofrequency coaxial cable RC 50-4-11 with middle sizes is easily soiled with continuous PET insulation of threshold amplitudes of Impk of standard aperiodic pulses of current ip(t) from nano-, micro- and millisecond temporal ranges of shape of τfp=5 ns/200 ns, τfp=10 μs/350 μs and τfp=7 ms/160 ms. It is shown that with the proper growth of parameter τp>>τf for flow on a continuous copper tendon and split copper shell of radiofrequency coaxial cable RC 50-4-11 with middle sizes is easily soiled indicated homopolar pulses of current ip(t) substantial diminishing of their threshold amplitudes of Impk (with 531,2 кА for the nanosecond pulse of current of type 5 ns/200 ns to 1.84 кА for the millisecond impulse of current of type of 7 ms/160 ms takes place). Originality. An engineering method is first developed for close settlement of threshold numeral values of Impk amplitudes of single-pulse axial-flow current ip(t) of arbitrary peak-temporal parameters for electric wires and cables with copper (aluminum) current-carrying parts and PET, PVC and R half-length insulation. Practical value. Application in electrical engineering practice of the offered engineering method for determination of threshold amplitudes Impk of the indicated pulses of axial-flow current ip(t) for the probed electric wires and cables will allow considerably to increase service life of examined CWP.

Author Biographies

M.I. Baranov, Research and Design Institute «Molniya» of National Technical University «Kharkiv Polytechnic Institute»

Doctor of Technical Science, Professor

S.G. Buriakovskyi, Research and Design Institute «Molniya» of National Technical University «Kharkiv Polytechnic Institute»

Doctor of Technical Science, Professor

V.V. Kniaziev, Research and Design Institute «Molniya» of National Technical University «Kharkiv Polytechnic Institute»

PhD, Leader Research Scientist

References

Orlov I.N. Elektrotehnicheskij spravochnik. Proizvodstvo i raspredelenie elektricheskoj energii. Tom 3, Kn. 1 [Electrical engineering handbook. Production and distribution of electric energy. Vol. 3, Book 1. Ed. I.N. Orlov]. Moscow, Energoatomizdat Publ., 1988. 880 p. (Rus).

Dashuk P.N., Zayents S.L., Komel’kov V.S., Kuchinskyi G.S., Nikolayevskaya N.N., Shkuropat P.I., Shneerson G.A. Tehnika bol'shih impul'snyh tokov i magnitnyh polej [The technique of large pulsed currents and magnetic fields]. Moscow, Atomizdat Publ., 1970. 472 p. (Rus).

Mesiats G.A. Impul'snaia energetika i elektronika [Pulsed power and electronics]. Moscow, Nauka Publ., 2004. 704 p. (Rus).

Ricketts L.U., Bridges J.E., Mayletta J. Elektromahnitnij impul's i metody zashchity [Electromagnetic pulse and methods of protection]. Moscow, Atomizdat Publ., 1979. 328 p. (Rus).

Myrova L.O., Chepizhenko A.Z. Obespechenie stoikosti apparatury svyazi k ioniziruyushchim i elektromagnitnym izlucheniyam [Providing of resistibility of apparatus of connection to the ionizing and electromagnetic radiations]. Moscow, Radio and Connection Publ., 1988. 296 p. (Rus).

Shidlovskyi A.K., Shcherba A.A., Zolotaryov V.M., Podoltsev A.D., Kucheryavaya I.N. Kabeli s polimernoy izolyatsiey na sverhvysokie napryazheniya [Cables with a polymeric isolation on over-voltage]. Kyiv, Institute of Electrodynamics of NAS of Ukraine Publ., 2013. 550 p. (Rus).

Pugach V.N., Polyakov D.A., Nikitin K.I., Tereshchenko N.A., Komarov I.V. Research of temperature destruction effect on cables insulation operation life. Omsk Scientific Bulletin, 2019, no. 6 (168), pp. 70-74. (Rus). doi: https://doi.org/10.25206/1813-8225-2019-168-70-74.

Miller-Chou B.A., Koenig J.L. A review of polymer dissolution. Progress in Polymer Science, 2003, vol. 28, no. 8, pp. 1223-1270. doi: https://doi.org/10.1016/s0079-6700(03)00045-5.

Brzeziński M., Wedepohl S., Kost B., Calderón M. Nanoparticles from supramolecular polylactides overcome drug resistance of cancer cells. European Polymer Journal, 2018, vol. 109, pp. 117-123. doi: https://doi.org/10.1016/j.eurpolymj.2018.08.060.

Schulte R., Ostwald R., Menzel A. Gradient-Enhanced Modelling of Damage for Rate-Dependent Material Behaviour – A Parameter Identification Framework. Materials, 2020, vol. 13, no. 14, p. 3156. doi: https://doi.org/10.3390/ma13143156.

Spirescu V.A., Chircov C., Grumezescu A.M., Andronescu E. Polymeric Nanoparticles for Antimicrobial Therapies: An up-to-date Overview. Polymers, 2021, vol. 13, no. 5, p. 724. doi: https://doi.org/10.3390/polym13050724.

Belorussov N.I., Saakjan A.E., Jakovleva A.I. Elektricheskie kabeli, provoda i shnury. Spravochnik [Electrical cables, wires and cords. Directory]. Moscow, Energoatomizdat Publ., 1988. 536 p. (Rus).

Knopfel' G. Sverkhsil'nye impul'snye magnitnye polia [Ultra strong pulsed magnetic fields]. Moscow, Mir Publ., 1972. 391 p. (Rus).

Baranov M.I., Rudakov S.V. Electrothermal action of the pulse of the current of a short artificial-lightning stroke on test specimens of wires and cables of electric power objects. Journal of Engineering Physics and Thermophysics, 2018, vol. 91, no. 2, pp. 544-555. doi: https://doi.org/10.1007/s10891-018-1775-2.

Baranov M.I., Kniaziev V.V., Rudakov S.V. Calculation and experimental estimation of results of electro-thermal action of rationed by the international standard IEC 62305-1-2010 impulse current of short blow of artificial lightning on the thin-walled coverage from stainless steel. Electrical Engineering & Electromechanics, 2017, no. 1, pp. 31-38. doi: https://doi.org/10.20998/2074-272X.2017.1.06.

Gurevich V.I. Elektromagnitnyi impul's vysotnogo iadernogo vzryva i zashchita elektrooborudovaniia ot nego: monografiia [Electromagnetic impulse of high-altitude nuclear explosion and protection of electrical equipment from it: monograph]. Moscow, Infra-Engineering Publ., 2019. 516 p. (Rus).

IEC 62305-1: 2010. Protection against lightning. Part 1: General principles. Geneva, IEC Publ., 2010. Available at: https://cs.spz-bc.com.ua/-/Du44pi68kxwVNlVLm0wh0g/sv/document/4b/f8/7c/437461/255/IEC-62305-1_v1_LQ.pdf?1559637095 (accessed 25 May 2021).

Baranov M.I., Koliushko G.M., Kravchenko V.I., Rudakov S.V. A generator aperiodic current pulses of artificial lightning with a rationed temporal form of 10/350 μs with an amplitude of ±(100-200) kA. Instruments and Experimental Techniques, 2015, vol. 58, no. 6, pp. 745-750. doi: https://doi.org/10.1134/s0020441215060032.

SAE ARP 5412: 2013. Aircraft Lightning Environment and Ralated Test Waveforms. SAE Aerospace. USA, 2013, pp. 1-56. Available at: https://www.sae.org/standards/content/arp5412b (accessed 25 May 2021).

Baranov M.I., Buriakovskyi S.G., Rudakov S.V. The tooling in Ukraine of model tests of objects of energy, aviation and space-rocket engineering on resistibility to action of pulsed current of artificial lightning. Electrical Engineering & Electromechanics, 2018, no. 4, pp. 45-53. doi: https://doi.org/10.20998/2074-272X.2018.4.08.

Published

2021-12-03

How to Cite

Baranov, M., Buriakovskyi, S., & Kniaziev, V. (2021). Destruction of polymer insulation and threshold amplitudes of current pulses of different temporal shapes for electric wires and cables in the low- and high-current circuits of pulse power engineering, electrical engineering and electronic devices. Electrical Engineering & Electromechanics, (6), 31–38. https://doi.org/10.20998/2074-272X.2021.6.05

Issue

Section

Electrical Insulation and Cable Engineering