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No 2 (2021) Technical mechanics
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UDC 621.002.56+537.87+629.76+519.816
Technical mechanics, 2021, 2, 126 - 138
Study of functional elements of control systems
DOI:
https://doi.org/10.15407/itm2021.02.126
Zabolotnyi P. I., Gorev N. B., Gryshkevych O. D., Mamchuk V. M.
Zabolotnyi P. I.
Institute of Technical Mechanics of the National Academy of Sciences of Ukraine and the State Space Agency of Ukraine
Gorev N. B.
Institute of Technical Mechanics of the National Academy of Sciences of Ukraine and the State Space Agency of Ukraine
Gryshkevych O. D.
Institute of Technical Mechanics of the National Academy of Sciences of Ukraine and the State Space Agency of Ukraine
Mamchuk V. M.
Institute of Technical Mechanics of the National Academy of Sciences of Ukraine and the State Space Agency of Ukraine
This paper presents the results of investigations conducted at the Department for Functional Elements of
Control Systems of the Institute of Technical Mechanics of the National Academy of Sciences of Ukraine
and the State Space Agency of Ukraine over the past five years. The investigations into microwave probe
measurements resulted in a two-probe implementation of microwave interferometry for displacement
measurement. The possibility of using as few as two probes was demonstrated by analyzing the roots of
the equation that relates the magnitude of the unknown complex reflection coefficient to the currents
of the semiconductor detectors connected to the probes. To improve the measurement accuracy, methods
were developed to do this by accounting for the reflection coefficient of the horn antenna, by changing
the operating wavelength according to the measured reflection coefficient, and by compensating the
interprobe distance error.
The results of development and study of microwave meters of ionospheric plasma parameters are presented.
Experimental and computer models of microwave meters of plasma parameters were developed and studied.
An experimental and theoretical basis was prepared for the development of meters based on biconical
cavities to assess the electron density in a rarefied low-temperature plasma. A novel circuit for a
pulse discharge source was designed. The performance characteristics of a magnetron system were studied
in the regime of generation of a directed gas and metal ion flow. To provide ion beam focusing, a
self-contained anode-layer ion sorce was upgraded.
The paper presents the results of development and study of prototype ion-plasma, ion-beam, and combined
process devices for auxiliary and main surface strengthening operations and combined strengthening
treatment in a single vacuum cycle.
complex reflection coefficient, displacement, electrical probe, microwave interferometry,
waveguide section, low-density plasma, plasma processing devices, biconical cavity
1. Pylypenko O. V., Gorev N. B., Doronin A. V., Kodzhespirova I. F. Phase ambiguity resolution in relative displacement measurement by microwave interferometry. Teh. Meh. 2017. No. 2. Pp. 3-11. https://doi.org/10.15407/itm2017.02.003
2. Pylypenko O. V., Doronin A. V., Gorev N. B., Kodzhespirova I. F. Two-probe implementation of microwave interferometry for motion sensing and complex reflection coefficient measurement. Teh. Meh. 2018. No. 3. Pp. 138-150. https://doi.org/10.15407/itm2018.03.138
3. Silvia M. T., Robinson E. A. Deconvolution of Geophysical Time Series in the Exploration for Oil and Natural Gas. Amsterdam-Oxford-New York: Elsevier Scientific Publishing Company, 1979. 447 pp.
4. Pylypenko O. V., Doronin A. V., Gorev N. B., Kodzhespirova I. F. Experimental verification of a two-probe implementation of microwave interferometry for displacement measurement. Teh. Meh. 2018. No. 1. Pp. 5-12. https://doi.org/10.15407/itm2018.01.005
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https://doi.org/10.1002/ecja.20375
6. Pylypenko O. V., Doronin A. V., Gorev N. B., Kodzhespirova I. F. Analysis of the possibility of accounting for the antenna reflection coefficient in displacement measurements by probe methods. Teh. Meh. 2019. No. 1. Pp. 85-93. https://doi.org/10.15407/itm2019.01.085
7. Pylypenko O. V., Doronin A. V., Gorev N. B., Kodzhespirova I. F. Two-probe measurements of the displacement of an object with account for the antenna reflection coefficient. Teh. Meh. 2019. No. 3. Pp. 88-97. https://doi.org/10.15407/itm2019.03.088
8. Pylypenko O. V., Doronin A. V., Gorev N. B., Kodzhespirova I. F. Two-probe measurements of the displacement of mechanical objects over a wide range of the reflection coefficient. Teh. Meh. 2020. No. 2. Pp. 89-98. https://doi.org/10.15407/itm2020.02.089
9. Pylypenko O. V., Doronin A. V., Gorev N. B., Kodzhespirova I. F. Interprobe distance error compensation in probe measurements of mechanical displacement. Teh. Meh. 2021. No. 1. Pp. 77-83.
https://doi.org/10.15407/itm2021.01.077
10. Gryshkevych O. D., Hryniuk S. I. Plasma process devices based on closed electron drift discharge. Development and application. Teh. Meh. 2013. No. 3. Pp. 43-57. (in Russian).
11. Gryshkevych O. D., Hryniuk S. I. Use of magnetron devices in a package plasma immersion technology of surface treatment. Teh. Meh. 2019. No. 3. Pp. 96-111. (in Russian).
https://doi.org/10.15407/itm2019.03.098
12. Gryshkevych O. D., Hryniuk S. I. Magnetron formation and use of intensive gas-metal plasma flows. Teh. Meh. 2019. No. 2. Pp. 3-13. (in Russian).
https://doi.org/10.15407/itm2019.02.102
13. Gryshkevych O. D., Hryniuk S. I. Development and study of a prototype low-frequency power source for a high-current pulsed magnetron discharge. Teh. Meh. 2019. No. 4. Pp. 137-147. (in Russian).
https://doi.org/10.15407/itm2019.04.137
14. Gryshkevych O. D., Hryniuk S. I. Development of plasma process devices for a combined technology of parts strengthening. Teh. Meh. 2017. No. 4. Pp. 96-110. (in Russian).
https://doi.org/10.15407/itm2017.04.096
15. Gryshkevych O. D. Development of a combined technology for parts strengthening. Teh. Meh. 2017. No. 3. Pp. 100-114. (in Russian).
https://doi.org/10.15407/itm2017.03.100
16. Gryshkevych O. D., Hryniuk S. I., Antoniuk S. L. Preparation and properties of a magnetron chrome coating on the working surfaces of a power titanium cylinder. Teh. Meh. 2014. No. 3. Pp. 100-113. (in Russian).
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23. Mamchuk V. M. Determination of the priority of R&D projects using a criteria scaling algorithm. Teh. Meh. 2020. No. 1. Pp. 91-105. (in Russian).
https://doi.org/10.15407/itm2020.01.091
Copyright (©) 2021 Zabolotnyi P. I., Gorev N. B., Gryshkevych O. D., Mamchuk V. M.
Copyright © 2014-2021 Technical mechanics
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