RAYLEIGH — RITZ METHOD AND METHOD OF INITIAL PARAMETERS IN THE PROBLEM OF CALCULATION OF DYNAMIC CHARACTERISTICS OF MULTIBEAM ELASTIC STRUCTURES



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Abstract

The solution of the problem of dynamic synthesis based on the application of the Rayleigh — Ritz method is considered. A method is proposed for determining the dynamic characteristics of a composite beam structure, taking into account the calculation of the shapes of oscillations of partial substructures using the method of initial parameters. Two variants of the formation of coordinate functions, using static and dynamic condensation, are considered. When carrying out static condensation, in order to increase the accuracy of the result, the internal physical degrees of freedom of the element were added to the boundary degrees of freedom to the reduced model degrees of freedom. When conducting dynamic condensation, modal degrees of freedom were added to the physical degrees of freedom of the boundary nodes of the reduced model, which are, in fact, coefficients in the accepted decomposition of the field of partial forms calculated with fixed boundary degrees of freedom. In the framework of the proposed approach, test calculations were carried out for a beam with variable mass-stiffness characteristics along the length, which showed good convergence of the target parameters to exact values. The proposed approach can be used to carry out calculations of composite elastic structures based on the method of initial parameters in cases where the application of the finite element method is irrational or difficult. In addition, if necessary, on the basis of the approach considered in this paper, the combined use of these two methods can be organized.

About the authors

A. A. Avramenko

Samara National Research University

Author for correspondence.
Email: morenov@ssau.ru
ORCID iD: 0000-0001-6798-4196

Candidate of Engineering Sciences, associate professor, professor of
the Department of Theoretical Mechanics

O. I. Malykhina

Samara National Research University

Email: morenov@ssau.ru
ORCID iD: 0000-0002-9580-6853

postgraduate student of the Department of Theoretical Mechanics

References

  1. Biderman V.L. Teoriya mekhanicheskikh kolebanii: Uchebnik dlya vuzov . M.: Vyssh. shkola, 1980, 480 p. Available at: http://bookfi.net/book/635808.
  2. Gantmakher F.R. Lektsii po analiticheskoi mekhanike . M.: Gosudarstvennoe izdatel’stvo fiziko-matematicheskoi literatury, 1960, 296 p. Available at: http://alexandr4784.narod.ru/gantmacher.html .
  3. Rychkov S.P. MSC.visualNASTRAN dlya Windows . M.: NTPress, 2004, 552 p. .
  4. Bate K.-J., Wilson E.L. Chislennye metody analiza i metod konechnykh elementov. Per. s angl.; pod red. Smirnova A.F . M., 1982, 448 p. Available at: http://bookre.org/reader?file=584992 .
  5. Ignatyev V.A. Reduktsionnye metody rascheta v statike i dinamike plastinchatykh sistem . Saratov: SGU, 1992, 142 p. .
  6. Ignatyev V.A., Romashkin V.N. Posledovatel’naya chastotno-dinamicheskaya kondensatsiya: Materialy nauch.-tekhn. Internet-konferentsii . Volgograd: VolgGASU, 2010, pp. 63–87 .
  7. Ignatyev V.A., Makarov A.V. Reshenie nepolnoi algebraicheskoi problemy sobstvennykh vektorov i sobstvennykh znachenii dlya zadach dinamiki i ustoichivosti metodom chastotno-dinamicheskoi kondensatsii . Stroitel’naya mekhanika i raschet sooruzhenii , 2005, no. 1, pp. 14–20 .
  8. Przhemnitskiy E.S. Matrichnyi metod issledovaniya konstruktsii na osnove analiza podstruktur . Raketnaya tekhnika i kosmonavtika, 1963, no. 1, pp. 88–95 .
  9. Sapozhnikov A.I. Metody superelementov v statike i dinamike panel’nykh zdaniy . Stroitel’stvo i arkhitektura , 1980, pp. 33–37 .
  10. Guyan R.J. Reduction of stiffness and mass matrices. AIAA Journal, 1965, Vol. 3, no. 2, 380 p. Available at: https://ru.scribd.com/document/409169074/1965-Reduction-of-Stiffness-and-Mass-Matrices .
  11. Craig R.R., Bampton M.C. Coupling of substructures for dynamic analysis. AIAA Journal, 1968, Vol. 6, pp. 1313–1319. Available at: https://hal.archives-ouvertes.fr/hal-01537654/document .
  12. Zhidyaev K.A. Ispol’zovanie metoda dinamicheskogo sinteza (Kreiga-Bemptona) v MSC.NASTRAN . In: Metodicheskie materialy MSC.Software , 1999, 5 p. .
  13. Leung Y.T. Multilevel dynamic substructures. Computers and structures, 2011, Vol. 89, pp. 302–315 .
  14. Xian L. Simplified dynamic condensation in multi-substructure systems. Computers and structures, 1988, Vol. 30, pp. 851–854 .
  15. Bennighof J.K., Lehoucq R.B. An automated multilevel substructuring method for eigenspace computation in linear elastodynamics. SIAM Journal on computing, 2004, Vol. 25, pp. 2084–2106. doi: 10.1137/S1064827502400650 .
  16. Kim C.W. Analysis of vibration levels of large structural system with recursive component mode synthesis method: theory and convergence. Proceedings of the Institution of Mechanical Engineers, 2006, Vol. 220, pp. 1339–1345. doi: 10.1243/09544062JMES274 .
  17. Ivanteev V.I., Chuban V.D. Raschet form i chastot svobodnykh kolebanii konstruktsii metodom mnogourovnevoi dinamicheskoi kondensatsii . Uchenye zapiski TsAGI , 1984, Vol. XV, no. 4, pp. 81–92. Available at: https: // cyberleninka.ru / article / n / raschet - form - i - chastot - svobodnyh - kolebaniy - konstruktsiy - metodom - mnogourovnevoy-dinamicheskoy-kondensatsii.
  18. George A., Liu J.W.-H. Chislennoe reshenie bol’shikh razrezhennykh sistem uravneniy. Per. s angl. . M., 1984, 333 p. Available at: http://bookre.org/reader?file=789003&pg=1 .
  19. Voss H., Yin J., Chen P. Preconditioning Subspace Iteration for Large Eigenvalue Problems with Automated Multi-Level Sub-structuring. Proceedings of the Conference on Applied Linear Algebra –– in honor of Ivo Marek. Prague, 2013, pp. 1–20. doi: 10.13140/2.1.3119.3929 .
  20. Dmitriev S.N. Primenenie metoda sinteza form dlya rascheta kolebanii kosmicheskogo letatel’nogo apparata: uchebnoe posobie / S.N. Dmitriev, I.Yu. Kalugin, O.N. Tushev; Moskovskii gosudarstvennyi tekhnicheskii universitet imeni N.E. Baumana . M.: Izdatel’stvo MGTU im. N.E. Baumana, 2009, 16 p. Available at: http://www.medcollegelib.ru/book/bauman_0174.html .
  21. Akhtulov A.D., Akhtulova L.H. Raschet kolebanii konstruktsii avtomaticheskogo kosmicheskogo apparata metodom podkonstruktsii . Dinamika sistem, mekhanizmov i mashin , 2012, no. 2, pp. 112–115. Available at: https://elibrary.ru/item.asp?id=21653603 .
  22. Belostotskiy A.M., Dubinskiy S.I., Potapenko A.L. Metody dinamicheskogo sinteza podkonstruktsii v zadachakh modelirovaniya slozhnykh inzhenernykh sistem . Stroitel’naya mekhanika i raschet sooruzhenii , 2006, no. 6, p. 45.
  23. Grigoriev V.G. Metodologiya issledovaniya dinamicheskikh svoistv slozhnykh uprugikh i gidrouprugikh sistem: dis. . . d-ra tekhn. nauk . M., 2000, 328 p. Available at: http://bookre.org/reader?file=488721 .
  24. Ignat’ev V.A., Romashkin V.N. Algebraicheskaya problema sobstvennykh vektorov i sobstvennykh znachenii vysokogo poryadka v zadachakh dinamiki i ustoichivosti konstruktsii (obzor) . ISSN 1994-0351. Internet-vestnik VolgGASU, 2015, Vol. 2(38), www.vestnik.vgasu.ru, 54 p. Available at: http://vestnik.vgasu.ru/attachments/7IgnatievRomashkin-2015_2_38_.pdf .
  25. Kirilin A.N., Akhmetov R.N., Sollogub A.V. Proektirovanie, dinamika i ustoichivost’ dvizheniya raket-nositelei: Metody, modeli, algoritmy, programmy v srede MathCad . M.: Mashinostroenie, 2013, 296 p. Available at: http://epizodsspace.airbase.ru/bibl/kirilin/proektirovanie/01.html .
  26. Krylov A.N. O raschete balok, lezhashchikh na uprugom osnovanii . L.: Izd-vo AN SSSR, 1931, 154 p. Available at: https://dwg.ru/dnl/8998 .
  27. Vlasov V.Z., Leontyev N.N. Balki, plity i obolochki na uprugom osnovanii . M.: Izd-vo fiz.-mat. lit-ry, 1960, 491 p. Available at: https://dwg.ru/dnl/10476 .
  28. Babakov I.M. Teoriya kolebanii: ucheb. posobie . M.: Drofa, 2004, 591 p. Available at: http://bookre.org/reader?file=486366 .
  29. Osnovy otrabotki prochnosti raketno-kosmicheskikh konstruktsii. A.V. Karmishin . . Fundamentals of testing the strength of rocket and space structures]. M.: Mashinostroenie, 2007, 480 p. Available at: http://elast.math.msu.su/Sites/companysite/Uploads/Seminar%202%20kurs% 20Sukhinin.6D0F1C57201345DAACB6A989FC0855EE.pdf .
  30. Chadaev Y.A. Opredelenie spektra poperechnykh kolebanii sterzhnei, nagruzhennykh prodol’noi nagruzkoi . Izvestiya Tul’skogo gosudarstvennogo universiteta. Estestvennye nauki. Mekhanika , 2014, Issue 1, Part 1, pp. 225–231. Available at: https : // tidings. tsu. tula.ru/ tidings/ pdf/web/ preview_ therest_en.php?x=tsu_izv_natural_sciences_2014_01_ part_1&year=2014 .
  31. Chadaev Y.A. Poperechnye kolebaniya sostavnykh sterzhnei, szhatykh prodol’noi nagruzkoi . Izvestiya TulGU. Tekhnicheskie nauki. Mashinostroenie i mashinovedenie , 2014, Vol. 5, pp. 3–10. Available at: https: //tidings. tsu. tula.ru /tidings /pdf/web/preview_therest_ru.php?x=tsu_izv_technical_sciences_2014_05& year=2014 .
  32. Golovin K.A., Sarychev V.I., Voroncov I.I. Sovremennyi podkhod k otsenke nesushchei sposobnosti vodoprovodnykh trub v dorozhnykh nasypyakh dlya povysheniya nadezhnosti konstruktsii i obespecheniya bezopasnosti dvizheniya . News of the Tula state umiversity. Sciences of Earth, 2017, Issue 4, pp. 152–161. Available at: https:// tidings. tsu. tula.ru /tidings /pdf/web/preview_therest_ru.php?x=tsu_izv_earth_science_2017_04&year= =2017 .
  33. Kolesnikov K.S. Dinamika raket: Uchebnik dlya vuzov . M.: Mashinostroenie, 2003, 520 p. Available at: http://bookre.org/reader?file=592344 .

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