COMPARATIVE ANALYSIS OF CONSTRUCTIVE TYPES OF COMBINED LINEAR PULSE ELECTROMECHANICAL CONVERTERS
ARTICLE_18_PDF (Українська)

Keywords

linear pulse electromechanical converter
constructive types
electrically conductive armature
coil armature
efficiency criterion лінійний імпульсний електромеханічний перетворювач
конструктивний тип
електропровідний якір
котушковий якір
критерій ефективності

How to Cite

[1]
Bolyukh, V. et al. 2022. COMPARATIVE ANALYSIS OF CONSTRUCTIVE TYPES OF COMBINED LINEAR PULSE ELECTROMECHANICAL CONVERTERS. Tekhnichna Elektrodynamika. 2018, 4 (Dec. 2022), 084. DOI:https://doi.org/10.15407/techned2018.04.084.

Abstract

A computer model of a linear pulsed electromechanical converter (LPEC) of a cylindrical configuration that describes electromagnetic and electromechanical processes with spatially-distributed parameters is developed. The analysis of constructive types of combined LPEC designed to create mechanical impulses whose armatures are made in the form of a copper disk and/or multi-turn coil, which is connected in series or in parallel with the inductor, is analyzed. The nature of the electromechanical processes and distribution of the magnetic field in the active zone of the constructive types of combined LPEC is established. Using the efficiency criterion, which takes into account the electrical, force and field (induction of the magnetic scattering field) indicators and reliability in a relative form, it is shown that for all variants of the estimation strategy, the most effective design is the of the constructive type of combined LPEC design with the front and rear electrically conductive armature, and with the coil armature, which is connected in series with the inductor. References 10, figures 3, tables 2.

https://doi.org/10.15407/techned2018.04.084
ARTICLE_18_PDF (Українська)

References

Bolyukh V.F., Oleksenko S.V., Shchukin I.S. Comparative analysis of linear pulsed electromechanical converters of electromagnetic and induction types. Tekhnichna Elektrodynamika. 2016. No 5. Pp. 46-48. (Rus) DOI: https://doi.org/10.15407/techned2016.05.046

Ivanov V.V., Paranin S.N., Nozdrin A.A. Semiautomatic installation of magnetic pulse compaction of powders. Materialovedenie. 2011. No 7. Pp. 42-45. (Rus)

Ivashin V.V., Penchev V.P. Features of the dynamics of work and energy diagrams of pulsed electromagnetic drive with parallel and series connection of excitation windings. Elektrotekhnika. 2013. No 6. Pp. 42-46. (Rus)

Kondratenko I.P., Zhiltsov A.V., Pashchin M.O., Vasyuk V.V. Choice of parameters of an electromechanical converter of an induction type for electrodynamic treatment of welded joints. Tekhnichna Elektrodynamika. 2017. No 5. Pp. 83–88. (Ukr) DOI: https://doi.org/10.15407/techned2017.05.083

Lobanov L.M., Kondratenko I.P., Zhiltsov A.V., Karlov O.M., Pashchin M.O., Vasyuk V.V. Non-stationary electrophysical processes in systems of reduction of residual stresses of welded joints. Tekhnichna Elektrodynamika. 2016. No 6. Pp. 10– 19. (Ukr) DOI: https://doi.org/10.15407/techned2016.06.010

Tomaszewski D.N., Koshkin A.N. Modelling of linear impulse motors. Elektrotekhnika. 2006. No 1. Pp. 24-27. (Rus)

Comsol Multiphysics modeling and simulation software. URL: http://www.comsol.com/ .

Bissal A., Magnusson J., Engdahl G. Comparison of two ultra-fast actuator concept. IEEE Transactions on Magnetics. 2012. Vol. 48. No 11. Pp. 3315-3318.

Bolyukh V.F., Luchuk V.F., Rassokha M.A., Shchukin I.S. High-efficiency impact electromechanical converter. Russian Electrical Engineering. 2011. Vol. 82. No 2. Pp. 104-110.

Bach J., Bricquet C. Electric switching device with ultra-fast actuating mechanism and hybrid switch comprising one such device. Assignee: Schneider Electric Industries SAS. Patent US No 8686814, 2014.

Creative Commons License

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

Copyright (c) 2022 Tekhnichna Elektrodynamika

Abstract views: 284 | PDF Downloads: 46

Downloads

Download data is not yet available.