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Publications in Math-Net.Ru |
Citations |
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2020 |
| 1. |
R. A. Torgashov, N. M. Ryskin, A. G. Rozhnev, A. V. Starodubov, A. A. Serdobintsev, A. M. Pavlov, V. V. Galushka, I. Sh. Bahteev, S. Yu. Molchanov, “Theoretical and experimental study of a compact planar slow-wave structure on a dielectric substrate for the $W$-band traveling-wave tube”, Zhurnal Tekhnicheskoi Fiziki, 90:4 (2020), 686–692 ; Tech. Phys., 65:4 (2020), 660–665 |
31
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2018 |
| 2. |
Yu. A. Kalinin, A. V. Starodubov, “Transparent traveling-wave tubes with multivelocity electron beams”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 44:18 (2018), 53–59 ; Tech. Phys. Lett., 44:9 (2018), 830–832 |
1
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2017 |
| 3. |
S. A. Makarkin, A. V. Starodubov, Yu. A. Kalinin, “Application of permutation entropy method in the analysis of chaotic, noisy, and chaotic noisy series”, Zhurnal Tekhnicheskoi Fiziki, 87:11 (2017), 1712–1717 ; Tech. Phys., 62:11 (2017), 1714–1719 |
7
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| 4. |
Yu. A. Kalinin, A. V. Starodubov, A. S. Fokin, “Higher harmonics in the output spectrum of a generator with turbulent electron beam”, Zhurnal Tekhnicheskoi Fiziki, 87:8 (2017), 1243–1247 ; Tech. Phys., 62:8 (2017), 1255–1258 |
5
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2016 |
| 5. |
D. I. Trubetskov, Yu. A. Kalinin, A. V. Starodubov, A. S. Fokin, “Turbulence in microwave electronics: Teoretical approaches and experimental results”, Izvestiya VUZ. Applied Nonlinear Dynamics, 24:5 (2016), 4–36 |
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2015 |
| 6. |
Yu. A. Kalinin, A. V. Starodubov, A. S. Fokin, “An experimental study of the interaction between a pulsed electron beam and a large-amplitude electromagnetic wave”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 41:1 (2015), 79–86 ; Tech. Phys. Lett., 41:1 (2015), 40–42 |
3
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2014 |
| 7. |
Yu. A. Kalinin, A. V. Starodubov, N. N. Kuznetsov, Yu. I. Levin, “Investigation of the broadband noise-like microwave generator on multispeed nonlaminar electron beams”, Izvestiya VUZ. Applied Nonlinear Dynamics, 22:1 (2014), 16–26 |
| 8. |
S. S. Milkin, A. V. Starodubov, S. B. Venig, “Computerization of experiments on interaction of microwave electromagnetic radiation with heterogeneous liquids”, Zhurnal Tekhnicheskoi Fiziki, 84:1 (2014), 121–126 ; Tech. Phys., 59:1 (2014), 119–123 |
2
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| 9. |
S. S. Milkin, A. V. Starodubov, S. B. Venig, “Modeling the microwave field and specific absorbed-power distributions in a sample of magnetic fluid”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 40:19 (2014), 67–74 ; Tech. Phys. Lett., 40:10 (2014), 860–863 |
| 10. |
Yu. A. Kalinin, A. S. Fokin, A. V. Starodubov, “Transparent traveling wave tubes with electron-beam modulation at the cathode”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 40:18 (2014), 33–37 ; Tech. Phys. Lett., 40:9 (2014), 791–792 |
1
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2013 |
| 11. |
A. V. Starodubov, Yu. A. Kalinin, “Multivelocity electron beam as a source of microwave oscillations in the collector region of a traveling-wave tube”, Zhurnal Tekhnicheskoi Fiziki, 83:10 (2013), 108–112 ; Tech. Phys., 58:10 (2013), 1498–1502 |
2
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| 12. |
Yu. A. Kalinin, A. V. Starodubov, N. N. Kuznetsov, “On the scenario of transition to the broadband oscillation regime in the prototype of a low-voltage vircator”, Zhurnal Tekhnicheskoi Fiziki, 83:6 (2013), 151–154 ; Tech. Phys., 58:6 (2013), 923–926 |
3
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2011 |
| 13. |
Yu. A. Kalinin, A. V. Starodubov, A. V. Mushtakov, “Turbulent electron beams generated by magnetron injection guns”, Zhurnal Tekhnicheskoi Fiziki, 81:6 (2011), 92–96 ; Tech. Phys., 56:6 (2011), 838–842 |
8
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| 14. |
Yu. A. Kalinin, A. V. Starodubov, “Ultralow-voltage generator of chaotic microwave oscillations with secondary-emission cathode”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 37:16 (2011), 37–43 ; Tech. Phys. Lett., 37:8 (2011), 760–762 |
| 15. |
Yu. A. Kalinin, A. V. Starodubov, “Ultralow-voltage generator of chaotic microwave oscillations on counterpropagating electron beams”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 37:2 (2011), 87–94 ; Tech. Phys. Lett., 37:1 (2011), 91–93 |
| 16. |
Yu. A. Kalinin, A. V. Starodubov, L. N. Volkova, Yu. I. Levin, “Small-size ultralow-voltage generator of chaotic microwave oscillations”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 37:1 (2011), 32–39 ; Tech. Phys. Lett., 37:1 (2011), 27–29 |
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