Have a personal or library account? Click to login
An Experimental Study of the Vibrational Characteristics of a Diamond Circular Blade Using Electronic Speckle-Pattern Interferometry and FEM Cover

An Experimental Study of the Vibrational Characteristics of a Diamond Circular Blade Using Electronic Speckle-Pattern Interferometry and FEM

Open Access
|May 2021

References

  1. 1. Babakov I.M. (1965), Theory of vibrations [Teorija kolebanil], Science [Nauka]. [In Russian]
  2. 2. Beeck M.A., Hentschel W. (2000), Laser metrology - a diagnostic tool in automotive development processes, Optics and Lasers in Engineering, 34(2), 101–120.10.1016/S0143-8166(00)00077-4
  3. 3. Bystrov, N. D., Zhuzhukin, A. I. (2017), Speckle Interferometry in the Investigation of Large-Size Turbine Engine Structures Vibration, Procedia Engineering., 176: 471–475.10.1016/j.proeng.2017.02.346
  4. 4. Careva A.M., Tupoleva A.N. (2006), Application of an experimental calculation method for determining resonant frequencies and vibration modes of a disk of constant thickness [Primenenie eksperimentalno-raschetnogo metoda dlya opredeleniya rezonansnyh chastot i form kolebanij diska postoyannoj tolshiny], Kama State Academy of Engineering and Economics [Kamskaya gosudarstvennaya inzhenerno-ekonomicheskaya akademiya]. [In Russian]
  5. 5. Chi-Hung H., Yu-Chih L., Chien-Ching M. (2004) Theoretical analysis and experimental measurement for resonant vibration of piezoceramic circular plates, IEEE Transactions On Ultrasonics, Ferroelectrics, And Frequency Control, 51(1), 12-24.10.1109/TUFFC.2004.1268463
  6. 6. Chladni. E., Beyer T. (2015), Treatise on Acoustics, Springer International Publishing Switzerland.10.1007/978-3-319-20361-4
  7. 7. Foitzik A.H., Kaese W., Vogt T., Sommerer M., Arkhipov S. (2003), Static and Dynamic Characterization of MEMS via ESPI, International Journal Of Computational Engineering Science, 4(3), 467–470.10.1142/S1465876303001538
  8. 8. Gorbatenko B.B., Lyakin D.V., Perepelitsyna O.A., Ryabukho V.P. (2001), Optical schemes and statistical properties of displacement speckle interferometer signal [Opticheskie shemi I statisticheskie harakteristiki signala spekl-interferometrov peremeshenij], Computer optics [Kompyuternaya optika], tom 33, №3. [In Russian]
  9. 9. Halama R., Hornacek L., Pecenka L., Krejsa M., Smach J. (2016), 3-D ESPI Measurements Applied to Selected Engineering Problems, Applied Mechanics and Materials, 827, 65–68.10.4028/www.scientific.net/AMM.827.65
  10. 10. Joenathan C., Sohmer A., Burkle L. (1995), Increased sensitivity to in-plane displacements in electronic speckle pattern interferometry, Appl. Opt., Vol. 34, No.16, 2880-288510.1364/AO.34.002880
  11. 11. Jones R., Wykes C. (1989), Holographic and Speckle Interferometry. 2 edition, Cambridge University Press.10.1017/CBO9780511622465
  12. 12. Komarov Yu.S. (2004), Noise-resistant digital speckle interferometer for vibrometry of objects based on the method of averaging over time [Pomehoustojchivyj cifrovoj spekl-interferometr dlya vibrometrii obektov na osnove metoda usredneniya vo vremeni], Abstract of dissertation for the degree of candidate of technical sciences [Avtoreferat dissertacii na soiskanie uchenoj stepeni k.t.n]. [In Russian]
  13. 13. Levin A.V. (1953), Working Blades and Disks of Steam Turbines [Rabochije lopatki I diski parovyh turbin], Gosenergoizdat [Gosenergoizdat]. [In Russian]
  14. 14. Makaeva R.Kh., Tsareva A.M., Karimov A.Kh. (2008), Determination of natural frequencies and forms of vibrations of the disk of constant thickness, fixed in the center // Izv. vuzov. Aviation technique, No 1 - C. 41 - 45.
  15. 15. Makaeva R.Kh., Tsareva A.M., Karimov A.Kh. (2008), Determination of natural frequencies and vibration modes of a constant thickness centrally secured disk. Russ. Aeronaut. 51, 53–59 (2008).10.3103/S1068799808010091
  16. 16. Mihaylova E., Naydenova I., Martin S., Toal V. (2004), Electronic speckle pattern shearing interferometer with a photopolymer holographic grating, Appl. Opt., Vol. 43, No. 12, 2439-2442.10.1364/AO.43.002439
  17. 17. Mihaylova E., Naydenova I., Martin S., Toal V. (2006), Photopolymer diffractive optical elements in electronic speckle pattern shearing interferometry, Opt. Lasers Eng., Vol. 44, No. 9, 965-974.10.1016/j.optlaseng.2005.06.017
  18. 18. Mrozek P., Mrozek E., Werner A. (2018), Electronic speckle pattern interferometry for vibrational analysis of cutting tools, Acta Mechanica et aAutomatica, vol 12, no.2.10.2478/ama-2018-0021
  19. 19. Petrov V., Lau B. (1996), Electronic speckle pattern interferometry with a holographically generated reference wave,” Opt. Eng. Vol. 35, No. 8, 2363-2370.10.1117/1.600788
  20. 20. Qin J., Gao Z., Wang X., Yang S. (2016), Three-Dimensional Continuous Displacement Measurement with Temporal Speckle Pattern Interferometry, Sensors, (Basel, Switzerland).10.3390/s16122020
  21. 21. Richardson M.O.W., Zhang Z.Y., Wisheart M., Tyrer J.R. Petzing J. (1998), ESPI non-destructive testing of GRP composite materials containing impact damage, Composites Part A, 29A, 721–729.10.1016/S1359-835X(98)00004-9
  22. 22. Tkach M. et al. (2021) Improving the Noise Immunity of the Measuring and Computing Coherent-Optical Vibrodiagnostic Complex, In: Nechyporuk M., Pavlikov V., Kritskiy D. (eds) Integrated Computer Technologies in Mechanical Engineering - 2020. ICTM 2020, Lecture Notes in Networks and Systems, vol 188. Springer, Cham.10.1007/978-3-030-66717-7_23
  23. 23. Tkach M.R., Zolotiy Yu.G., Dovgan D.V., Guk I.Yu. (2012), Determination of the natural vibration forms of gas turbine engine elements in real time by electron speckle interferometry [Opredelenie form sobstvennih kolebanij elementov GTD v realnom vremeni metodom electronnoj spekl-interferometrii], Aerospace technic and technology [Aviacionno-kosmicheskaya tehnika i tehnologiya] № 8 (95). [In Russian]
  24. 24. Tkach M.R., Zolotiy Yu.G., Dovgan D.V., Guk I.Yu. (2015), Patent: Method of determining of forms of resonant vibrations shapes of blades of gas turbine engine by speckle interferogram, UA 103068. [In Ukrainian]
  25. 25. Tkach, M., Morhun, S., Zolotoy, Y., Zhuk, I. (2020), Modal analysis of the axial compressor blade: advanced time-dependent electronic interferometry and finite element method, Int. J. Turbo Jet-Eng.10.1515/tjj-2020-0014
  26. 26. Van der Auweraer H., Steinbichler H., Vanlanduit S., Haberstok C., Freymann R., Storer D., Linet V. (2002), Application of stroboscopic and pulsed-laser electronic speckle pattern interferometry (ESPI) to modal analysis problems, Measurements Science and Technology, 13, 451–463.
  27. 27. Vest. C. M. (1982), Holographic Interferometry, John Wiley and Sons, New York.
  28. 28. Wailer, M.D., (1961), Chladni Figures: a Study in Symmetry, G. Beil & Sons (London).
  29. 29. Yang L., Xie X., Zhu L., Wu S., Wang Y. (2014), Review of Electronic Speckle Pattern Interferometry (ESPI) for Three Dimensional Displacement Measurement, Chinese Journal Of Mechanical Engineering, 27(1), 1–13.10.3901/CJME.2014.01.001
  30. 30. Yelenevsky D.S., Shaposhnikov Yu.N. (2001), Investigation of acoustic emission procession of the structures through electronic speckle interferometry methods [Issledovanie processov zvukoizluchenia konstrukcij metodami elektronnoj spekl-interferometrii], Izvestiya of the Samara Science Centre of the Russian Academy of Sciences [Izvestiya Samarskogo Nauchnogo Centra Rossijskoj Akademii Nauk]. [In Russian]
  31. 31. Zhuzhukin A.I. (2011), A mobile speckle interferometer for studying vibration modes of vibrating objects outside bench conditions [Mobil-nyj spekl-interferometr dlya issledovaniya form kolebanij vibriruyushih obektov vo vne stendovyh usloviyah], Electronic journal «Trudy MAI» [Elektronnyj zhurnal «Trudy MAI»] № 48. [In Russian]
  32. 32. Zhuzhukin A.I., Solyannikov V.A. (2014), Method of reducing speckle-interferometer sensitivity for the study of turbomachine elements vibration [Metod umensheniya chuvstvitelnosti speklinterferometra pri issledovanii vibratsii detalej turbomashin], Vestnik of Samara University: Aerospace and Mechanical Engineering [Vestnik Samarskogo gosudarstvennogo aerokosmicheskogo universiteta] № 1(43). [In Russian]10.18287/1998-6629-2014-0-1(43)-194-200
DOI: https://doi.org/10.2478/ama-2021-0003 | Journal eISSN: 2300-5319 | Journal ISSN: 1898-4088
Language: English
Page range: 16 - 23
Submitted on: Mar 13, 2020
Accepted on: Mar 13, 2021
Published on: May 15, 2021
Published by: Bialystok University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Mykhaylo Tkach, Yurii Halynkin, Arkadii Proskurin, Irina Zhuk, Volodymyr Kluchnyk, Igor Bobylev, published by Bialystok University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.