Abstract
An analysis of the transient processes of the oscillatory charge of the capacitive energy storage (CES) in the electric discharge installation (EDI) from the direct voltage source (DVS) of the UDVS was carried out under the condition of a non-zero voltage of the CES at the start time of the charge. The dependences of the maximum charging voltage of CES and energy characteristics (dosage of energy consumed from the DVS and one entered to capacitor, energy losses and efficiency) on the magnitude and sign (polarity) of the initial voltage CES and the Q factor of the charge circuit were obtained. It is shown that an increase in the absolute value of the negative initial voltage of the CES together with an increase in the Q factor of the charging circuit leads to an increase in the maximum voltage of the CES charge. The most energetically appropriate capacitor charge modes were determined. It is substantiated that increasing the initial voltage on the capacitor, as well as the Q factor of the charging circuit, leads to an increase in the charge efficiency. Analysis of the ratio between the dose of energy entering the capacitor during one charge cycle W*C and the energy losses W*losses showed that the ratio W*C / W*losses becomes larger with the change of the U0C voltage from –UDVS to + UDVS. References 15, figures 3.
References
Bluhm H. Pulsed power systems: principles and applications. Berlin: Springer-Verlag, 2006. Pp. 288–305.
Livshits A.L., Otto M.S. Pulse electrical engineering. Moskva: Energoatomizdat, 1983. 352 p. (Rus)
Vovchenko A.I., Bohuslavsky L.Z., Myroshnychenko L.N. Trends in development of high-powered high-voltage pulse current generators in the Institute of Pulse Processes and Technology of Ukraine. Tekhnichna Elektrodynamika. 2010. No 5. Pp. 69–74.
Dubovenko K.V., Kurashko Yu.I., Shvets I.S. Power Supplies for Compact Sub-merged High Voltage Equipment. IEEE Intl Pulsed Modulator Conf. (PMC’2002). Report PA55. Hollywood, California, USA. 2002. P. 73.
Friungel F. Pulse technique. Generation and application of capacitor discharges. Moskva: Nauka, 1970. 320 p. (Rus).
Pentegov I.V. Fundamentals of the theory of charging circuits of capacitive energy storage devices. Kiev: Naukova Dumka, 1982. 422 p. (Rus)
Vovchenko A.I., Tertilov R.V. Synthesis of nonlinear parametric capacitive energy sources for a discharge pulse technologies. Zbirnyk naukovyh prats Natsionalnoho universytetu korablebuduvania. 2010. No 4. Pp. 118–124. (Rus)
Kravchenko V.I., Petkov А.А. Parametrical synthesis of high-voltage pulse test devices with capacitive energy storage. Elektrotekhnika i Elektromekhanika. 2007. No 6. Pp. 70–75.
Sizonenko O.N., Grigoryev E.G., Zaichenko A.D., Pristash N.S., Torpakov A.S., Lipyan Y.V., Tregub V.A., Zholnin A.G., Yudin A.V., KovalenkoA.A. Plasma methods of obtainment of multifunctional composite materials, dispersion-hardened by nanoparticles. IOP Conference Series: Materials Science and Engineering. 2016. Vol. 130. Issue 1. 012048. DOI: https://doi.org/10.1088/1757-899X/130/1/012048.
Casanueva R., Azcondo F.J., Branas C., Bracho S. Analysis, design and experimental results of a high fre-quency power supply for spark erosion. IEEE Transactions on Power Electronics. 2005. Vol. 20. Pp. 361–369. DOI: https://doi.org/10.1109/TPEL.2004.842992
Kornev Ia., Saprykin F., Lobanova G., Ushakov V., Preis S. Spark erosion in a metal spheres bed: Experimental study of the discharge stability and energy efficiency. Journal of Electrostatics. 2018. Vol. 96. Pp. 111–118. DOI: https://doi.org/10.1016/j.elstat.2018.10.008.
Ochin P., Gilchuk A.V., Monastyrsky G.E., Koval Y., Shcherba A.A., Zaharchenko S.N. Martensitic Transformation in Spark Plasma Sintered Compacts of Ni-Mn-Ga Powders Prepared by Spark Erosion Method in Cryogenic Liquids. Materials Science Forum. 2013. Vol. 738-739. Pp. 451-455. DOI: https://doi.org/10.4028/www.scientific.net/MSF.738-739.451.
Shcherba А.А., Ivashchenko D.S., Suprunovska N.I. Development of difference equations method for analysis of transient processes in the circuits of electro-discharge systems at stochastic changing of load resistance. Tekhnichna Elektrodynamika. 2013. No 3. Pp. 3–11. (Rus)
Suprunovska N.I., Shcherba А.А. Processes of energy redistribution between parallel connected capacitors. Tekhnichna Elektrodynamika. 2015. No 4. Pp. 3–11. (Rus)
Shcherba A.A., Suprunovska N.I. Electric energy loss at energy exchange between capacitors as function of their initial voltages and capacitances ratio. Tekhnichna Elektrodynamika. 2016. No 3. Pp. 9–11. DOI: https://doi.org/10.15407/techned2016.03.009.

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