Preview

Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering

Advanced search

On the variation of kinetic energy in a hydraulic inertial motion converter

https://doi.org/10.25206/2588-0373-2024-8-4-5-11

EDN: ZGJDCK

Abstract

The research investigates the dynamics of a hydraulic inertial motion converter in a non-conservative system. The hydraulic inertial motion converter portion of the inertial tubes in the piston is overlapped synchronously with the change in direction of piston velocity. The cylinder piston is forced into progressive oscillating motion by a servo drive, which is mounted on a movable platform along with the cylinder.

The relative movement of the cylinder piston in a non-conservative system leads to an increase in kinetic energy, which could affect the motion of the moving platform, both in the absence of resistance forces and when the resistance is small and proportional to the platform velocity.

About the Authors

Yu. A. Burian
Omsk State Technical University
Russian Federation

BURIAN Yuriy Andreyevich, Doctor of Technical Sciences, Professor, Professor of Fundamentals of Mechanics Theory and Automatic Control Department

AuthorID (SCOPUS): 57194827159

ResearcherID: E-2283-2014



G. S. Russkikh
Omsk State Technical University
Russian Federation

RUSSKIKH Grigoriy Serafimovich, Candidate of Technical Sciences, Head of Fundamentals of Mechanics Theory and Automatic Control Department

AuthorID (SCOPUS): 57191032330

ResearcherID: L-9913-2013



References

1. Savelyev A. V. Osobennosti patentovaniya izobreteniy v oblasti bezopornogo i kvazibezopornogo dvizheniya [Peculiarities of patenting inventions in the field of unassisted and quasiunassisted motion] // Zhurnal formiruyushchikhsya napravleniy nauki. International Journal of Unconventional Science. 2013. Vol. 1, no. 3. P. 72–88. (In Russ.).

2. Tolchin V. N. Inertsoid, sily inertsii kak istochnik dvizheniya [Inertsoid, forces of inertia as a source of motion]. Perm, 1977. 162 p. (In Russ.).

3. Shipov G. I. Mekhanika oriyentiruyemoy tochki i obshchiy printsip inertsii [Mechanics of an orientated point and the general principle of inertia] // Izvestiya vuzov. Fizika. Izvestiya Vuzov. Physics. 1983. No. 3. P. 74. (In Russ.).

4. Shipov G. I. Teoriya fizicheskogo vakuuma [Physical vacuum theory]. Moscow, 1997. 340 p. (In Russ.).

5. Zhukovitskiy E. M. [et al.]. K teorii inertsoida [To the theory of the inertoid] // Uchenyye zapiski permskogo gosudarstvennogo universiteta. Scientific Notes of Perm State University. 1971. P. 89–98. (In Russ.).

6. Shipov G. I., Sidorov A. N. Teoreticheskiye i eksperimental’nyye issledovaniya reaktivnogo dvizheniya bez otbrasyvaniya massy [Theoretical and experimental research of reactive motion without mass recoil]. URL: https://trinitas.ru/rus/ doc/0231/004a/02310000.pdf (accessed: 12.03.2024). (In Russ.).

7. Gubarev A. E. Dinamika oriyentiruyemoy tochki i inertsiya [Dynamics of the orientated point and inertia]. Moscow, 2003. P. 1–16. ISBN 5-88708-041-8. EDN: QJMCZF. (In Russ.).

8. Zhigalov V. A. Nekotoryye aktual’nyye voprosy bezopornogo dvizheniya [Some current issues of unsupported motion]. URL: http://www.second-physics.ru/lib/articles/ zhigalov_issues.pdf (accessed: 05.09.2023). (In Russ.).

9. Astakhov A. A. Bezopornoye postupatel’noye dvizheniye [Unsupported translatory motion]. URL: https://studylib.ru/doc/2211258/bezopornoe-postupatel._noe-dvizhenie.-astahov (accessed: 05.09.2023). (In Russ.).

10. Ivan′ko Yu. V., Balabay V. I. Osnovy opornogo i bezopornogo dvizheniya [Fundamentals of supported and unsupported motion]. URL: https://mob.skif.biz/index.php?name=Pages&op=page&pid=120 (accessed: 05.09.2023). (In Russ.).

11. Patent 2757427 Russian Federation, IPC F03G 3/00, B62D 57/00S2. Sposob peremeshcheniya transportnogo sredstva i ustroystvo dlya yego osushchestvleniya [Method of vehicle movement and device for its implementation] / Buryan Yu. A., Sitnikov D. V., Silkov M. V. No. 2019144275. (In Russ.).

12. Butenin N. V., Lunts Ya. L., Merkin D. R. Kurs teoreticheskoy mekhaniki. V 2 t. [Theoretical Mechanics Course. In 2 Vol.]. Moscow, 1985. Vol. 2. 496 p. (In Russ.).

13. Gordeyev V. A., Yerofeyev V. I., Sinev A. V. [et al.]. Sistemy vibrozashchity s ispol′zovaniyem inertsionnosti i dissipatsii reologicheskikh sred [Vibration protection systems based on inertia and dissipation of rheological media]. Moscow, 2004. 176 p. (In Russ.).

14. Zakatov M. M. K teorii «inertsioida» [To the theory of «Inertioid»] // Nauchnyye i obrazovatel’nyye problemy grazhdanskoy zashchity. Scientific & Educational Problems of the Civil Protection. 2011. No. 3. P. 94–101. EDN: OHFVTN. (In Russ.).

15. Kopytov V. I. Novyy sposob sozdaniya dvizhushchey sily dlya peremeshcheniya i upravleniya transportnym sredstvom [A new way of generating motive power for moving and driving a vehicle] // Vestnik nauki Sibiri. Journal of Wellbeing Technologies. 2013. No. 1 (7). P. 11–15. EDN: PVXRAD. (In Russ.).

16. Bezopornyy dvizhitel’ [Unsupported propulsion]. URL: https://patents.google.com/patent/WO2014158044A1/ru (accessed: 01.12.2024). (In Russ.).


Review

For citations:


Burian Yu.A., Russkikh G.S. On the variation of kinetic energy in a hydraulic inertial motion converter. Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering. 2024;8(4):5-11. (In Russ.) https://doi.org/10.25206/2588-0373-2024-8-4-5-11. EDN: ZGJDCK

Views: 105

JATS XML


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2588-0373 (Print)
ISSN 2587-764X (Online)