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Self-synchronized Controlled Vibration Drive with Automated Oscillation Parameters Monitoring System for High-Tech Equipment

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Part of the book series: Lecture Notes in Mechanical Engineering ((LNME))

Abstract

This article raises one of the important problems of the high-tech industry—aviation and rocket and space industry. The development of modern aircraft is accompanied by stringent requirements for resistance to the dynamic loads acting on them, as well as for the utilization of the fragile components included in the design of the aircraft. Complexity, in the process of utilization of fragile components, arises when certain requirements are meted out to geometrical shapes and sizes. Complexity, in the process of utilization of fragile components, arises when certain requirements are meted out to geometrical shapes and sizes. The most striking examples of fragile components being disposed of are solid propellant charges. In addition to the problem of recycling fragile components, aircraft are subjected to vibrational loads throughout the life cycle. The moment of take-off of the aircraft and the change in flight regimes, as well as the separation of stages are accompanied by intense vibration in a wide range of frequencies associated with a high level of overload. The main purpose of this article is to create a vibration drive that can be used in various technological operations, ranging from vibration testing of aircraft structures to the utilization of fragile LA components. In the course of research, a fundamentally new method for exciting synchronous oscillations in vibration drives was developed. To control and maintain the specified vibration parameters, an automated control system has been developed that allows one to perform vibration testing of the structure under various vibration modes that can be laid in the program part of the controller.

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References

  1. Kozhevnikov VP, Tokach YuE, Ognev MN (2015) Sovremennye resheniya po pererabotke tverdykh bytovykh otkhodov v BGTU im. V.G. Shukhova (Modern solutions for processing of solid waste wastes in BSTU named after. V.G. Shukhov). Vestnik Belgorodskogo gosudarstvennogo tekhnologicheskogo universiteta im. V.G. Shukhova, Belgorod

    Google Scholar 

  2. Parafes’ SG, Smyslov VI (2015) Design of unmanned aerial vehicle structure and stabilization system for aeroelastic stability. Izd MAI-PRINT 58:271–278. https://doi.org/10.3103/S1068799815030046

    Article  Google Scholar 

  3. Afanasyev VA, Barsukov VS, Gofin MYa, Zakharov YuF, Strelchenko AN, Shalunov NP (1994) Eksperemental’naya otrabotka kosmicheskih letatel’nyh apparatov (Experimental working off for space aircrafts). Izd MAI-PRINT, Moscow

    Google Scholar 

  4. Bychkov AS (2016) Osnovnye idy i prichiny razrusheniya stal’nykh detalei agregatov otechestvennykh vozdushnykh sudov transportnoi kategorii (The main ideas and reasons for the destruction of steel parts of domestic aircraft assemblies of the transport category). University of them. NOT. Zhukovsky “KhAI”, Khar’kov

    Google Scholar 

  5. Ovchinnikov IN, Ermishkin VA (2012) Dostovernost’ rezul’tatov ispytanii na vibratsiyu. Diagnostika i prognozirovanie ustalostnogo razrusheniya (Reliability of the test results for vibration. Diagnosis and prediction of fatigue failure). Publishing House “Nauchtekhlitizdat”, Moscow

    Google Scholar 

  6. Gatitulin MN (2008) Rotatsionnoe rezanie resursoberezhlivye tekhnologii izmel’cheniya materialov (Rotational cutting of resources, resourceful technologies of grinding materials). Zaural’skiy nauchnyy vestnik. Nauchno–innovatsionnyy zhurnal, Kurgan

    Google Scholar 

  7. Regan CD, Taylor BR (2016) mAEWing1: design, build, test. In: Proceedings of the AIAA SciTech conference, San Diego, 2016

    Google Scholar 

  8. Dorobantu A, Johnson W, Lie FA, Taylor B, Murch A, Paw YC, Gebre-Egziabher D, Balas G (2013) An airborne experimental test platform: from theory to flight. Proc Am Control Conf (ACC) 15:659–673

    Google Scholar 

  9. Aghababa MP, Aghabab HP (2012) Synchronization of mechanical horizontal platform systems in finite time. Appl Math Model 36:4579–4591

    Article  MathSciNet  Google Scholar 

  10. Roberts C, Ewins D (2016) Multi-axis vibration testing of an aerodynamically excited structure. J Vib Control. https://doi.org/10.1177/1077546316642064

    Article  Google Scholar 

  11. Kostyuchenkov NV, Kostyuchenkova ON, Alizhanov KD, Alimzhanov MD, Kairzhanov AB, Altai AE, Gerasimov OYu (2013) On the analysis of drive models of vibrating machines. Bulletin of the Kursganskaya GSAA, Kurgansk

    Google Scholar 

  12. Xiangxi K, Xueliang Zh, Xiaozhe Ch, Bangchun W, Bo W (2016) Synchronization analysis and control of three eccentric rotors in a vibrating system using adaptive sliding mode control algorithm. Mech Syst Signal Process 73:432–450

    Google Scholar 

  13. Modano M, Fabbrocino F, Gesualdo A, Matrone G, Farina I, Fraternali F (2015) On the forced vibration test by vibrodyne. In: 5th ECCOMAS thematic conference on computational methods in structural dynamics and earthquake engineering, pp 209–217. https://doi.org/10.7712/120115.3390.3213

  14. Radkowski S, Szulim P (2014) Analysis of vibration of rotors in unmanned aircraft. In: 19th international conference on methods and models in automation and robotics (MMAR), pp 748–753

    Google Scholar 

  15. Sergeev YuS, Sergeev SV, Reshetnikov BA, Gordeev EN, Zakirov RG, Gogolev VP, Mikryukov AA, Irshin AV (2014) Method of excitation of oscillations. RF Patent 2013121307/28, 32, 11

    Google Scholar 

  16. Blechman II (1971) Synchronization of dynamic systems. Nauka, Moscow

    Google Scholar 

  17. Sergeyev SV (2007) Vibration rotary drives of machines. Monograph, Publishing House of SUSU, Chelyabinsk

    Google Scholar 

  18. Yaroshevich TS, Sylyvonyuk AV, Yaroshevich MP (2013) Issledovanie puskovyh rezhimov vibromashin s dvumja debalansnymi vozbuditeljami (Investigation of the starting regimes of vibrating machines with two debologant pathogens). Publishing House of SevNTU, Sevastopol

    Google Scholar 

  19. Blekhman II, Yaroshevich NP (2009) Perehodnye rezhimy v inercionno-vozbuzhdaemyh poslerezonansnyh vibraciionnyh ustrojstvah s neskol’kimi stepenjami svobody nesushhej sistemy. Nelineinye problemy teorii kolebanii i teorii upravleniya (Transient regimes in inertial-excited postresonant vibrational devices with several degrees of freedom of the carrier system. Nonlinear problems in the theory of oscillations and control theory). Vibratsionnaya mekhanika, Nauka, Sankt-Peterburg

    Google Scholar 

  20. Irvine T (2015) Using a random vibration test specification to cover a shock requirement via a pseudo velocity fatigue damage spectrum. Procedia Eng 101:211–218

    Article  Google Scholar 

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Acknowledgements

South Ural State University is grateful for financial support of the Ministry of Education and Science of the Russian Federation (grant No. 9.7960.2017/BP).

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Correspondence to A. V. Kononistov .

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Sergeev, S.V., Sergeev, Y.S., Kononistov, A.V. (2019). Self-synchronized Controlled Vibration Drive with Automated Oscillation Parameters Monitoring System for High-Tech Equipment. In: Radionov, A., Kravchenko, O., Guzeev, V., Rozhdestvenskiy, Y. (eds) Proceedings of the 4th International Conference on Industrial Engineering. ICIE 2018. Lecture Notes in Mechanical Engineering. Springer, Cham. https://doi.org/10.1007/978-3-319-95630-5_40

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  • DOI: https://doi.org/10.1007/978-3-319-95630-5_40

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  • Publisher Name: Springer, Cham

  • Print ISBN: 978-3-319-95629-9

  • Online ISBN: 978-3-319-95630-5

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