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Analysis of parametric models of MR linear damper

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Analiza modeli parametrycznych liniowego tłumika magnetoreologicznego
Języki publikacji
EN
Abstrakty
EN
This work deals with the analysis of parametric models of a MR linear damper, which suit various rheological structures of the MR fluid. The MR fluid structure and properties, damper description and parametric damper models which are connected in various ways with the actual behaviour of the MR fluid are presented. Based on computer simulations, the effectiveness of the models under predicted MR linear damper behaviour is shown. The values of the parametric models used in the simulations were determined in an identification experiment.
PL
W pracy dokonano analizy parametrycznych modeli fenomenologicznych liniowego tłumika magnetoreologicznego (MR), które odpowiadają różnym strukturom reologicznym cieczy MR wypełniającej tłumik. Przedstawiono własności cieczy, budowę tłumika oraz modele parametryczne tłumika przybliżające w różny sposób rzeczywiste zachowanie cieczy MR. W oparciu o symulacje komputerowe pokazano efektywność modeli do przewidywania rzeczywistego zachowanie liniowego tłumika MR. Wartości parametrów modeli wykorzystywane w symulacjach wyznaczono na podstawie eksperymentu identyfikacyjnego.
Rocznik
Strony
3--240
Opis fizyczny
Bibliogr. 28 poz., rys., tabl.
Twórcy
autor
  • Department of Process Control, University of Mining and Metalurgy
autor
  • Department of Process Control, University of Mining and Metalurgy
Bibliografia
  • 1. BOLTER R., JANOCHA H., 1997, Design rules for MR actuators in different working modes, Proc. of SPIE, 3045, 148-159
  • 2. BROKATE M., SPREKELS J., 1996, Hysteresis and Phase Transitions, Applied Mathematical Sciences, Springer Verlag, 121
  • 3. CARLSON J.D., SPRONSTON J.L., 2000, Controllable fluids in 2000 status of ER and MR fluid technology, "Actuator 2000" - 7th International Conference on New Actuators
  • 4. CHOI S.B., LEE S. K., PARK Y.P., 2001, A hysteresis model for the field -dependent damping force of a magnetorheological damper, Journal of Sound and Vibration, 245, 375-383
  • 5. DYKE S., SPENCER B., SAIN M., CARLSON J., 1996, Phenomenological model of a magnetorheological damper, Journal of Engineering Mechanics
  • 6. GANDHI F., CHOPRA I., 1996, A time-domain non-linear viscoelastic damper model, Smart Materials and Structures, 5, 517-528
  • 7. GINDER J.M., 1996, Rheology controlled by magnetic fields, Encyclopedia of Applied Physics, 16, 487-503
  • 8. HSU J.C., MEYER A.U., 1995, Modern Control Principles and Applications, McGraw-Hill, 116-120
  • 9. JOLLY M., BENDER J.W., CARLSON J.D., 1999, Properties and applications of commercial magnetorheological fluids, Journal of Intelligent Material Systems and Structures, 10, 5-13
  • 10. KAMATH G.M., WERELY N.M., 1997, Nonlinear viscoelastic-plastic mechani-sms based model of an electrorheological damper, Journal ofGuidance, Control and Dynamics, 6, 1125-1132
  • 11. KEMBŁOWSKI Z., 1973, Reometria płynów nienewtonowskich, WNT, Warszawa
  • 12. KORDOŃSKI W., 1993, Elements and devices based on magnetorheological ef-fect, Journal ofIntelligent Systems and Structures, 4, 65-69
  • 13. KORMANN C., LAUN M., KLETT G., Actuator 94, 4th Int. Conf. On New Actuators, eds. H. Borgmann and Lenz, Axon Technologies Consult GmbH,271
  • 14. LI W.H., YAO G.Z., CHEN G., YEO S.H., YAP F.F., 2000, Testing and steady state modelling of a linear MR damper under sinusoidal loading, Smart Materials and Structures, 9, 95-102
  • 15. MCCLAMROCH N.H., GAVIN H.P., 1995, Closed loop structural control using electrorheological dampers, Proceedings ofAmerican Control Conferences, Seattle, Washington
  • 16. SAPIŃSKI B., KRUPA S., JARACZEWSKI M., Influence of magnetic field distribution of linear magnetorheological damper, 25th International Conference on Fundametals of Electrotechnics and Circuit Theory, IC-SPETO, May 22-25, 2002, Gliwice-Ustroń 2001, Poland, 29-32
  • 17. SAPIŃSKI B., 2002, Parametric identification of MR linear automotive size damper, Journal of Theoretical and Applied Mechanics, 40, 703-722
  • 18. SAPIŃSKI B., 2002, Non-parametric representations of MR linear damper behavior, IUTAM Symposium on Dynamics of Advanced Materials and Smart Structures, Yonezawa, Japan, Kluwer Academic Publishers, 347-357
  • 19. SHULMAN Z.P., KORDOŃSKI V.I., 1978, The Magnetorheological Effect, Science and Technic, Mińsk
  • 20. SHULMAN Z.P., KORDOŃSKI V.I., ZALTSGENDLER E.A., PROKHOROV I.V., KHUSID B.M., DEMCHUK S.A., 1985, Structure, Physics and Dynamic Properties ofMRs, Bielarus
  • 21. SIMS N.D., PEEL D.J., STANWAY R., JOHNSON A.R., BULOUGH W.A., 2000, The electrorheological long-stroke damper: a new modeling technique with experimental validation, Journal of Sound and Vibration, 229, 207
  • 22. SNYDER R.A., KAMTH G.M., WERELY N.M., 2000, Characterization and analysis of magnetorheological damper behaviour due to sinusoidal loading, Proceedings of SPIE Symposium on Smart Materials and Structures, 3989, New Port Beach, California, 213-229
  • 23. SPENCER B.F. JR., YANG G., CARLSON J.D., SAIN M.K., 1998, Smart dampers for seismic protection of structures: a full-scale study, Proc. 2 nd World Conference on Structural Control
  • 24. STANWAY R., SIMS N.D., JOHNSON A.R., 2000, Modelling and control of a magnetorheological vibration isolator, Smart Structures and Materials 2000:Damping and Isolation, Proc. ofSPIE, 3989, 184-192
  • 25. SUNAKODA K., SODEYAMA H., IWATA N., FUJITANI H., SODA S., 2000, Dynamic characteristics of magnetorheological fluid damper, Smart Structures and Materials: Damping and Isolation, Proc. of SPIE, 3989, 194-202
  • 26. WEISS K.D., CARLSON J.D., NIXON D.A., 1994, Viscoelastic properties of magnetoelectrorheological fluids, Journal of Intelligent Systems and Structures, 5, 772
  • 27. WEN Y., 1976, Method for random vibration of hysteretic systems, Journal of the Engineering Mechanics Division, 249-263
  • 28. WERELEY N.M., PANG L., KAMATH G.M., 1998, Idealized hysteresis modeling of electrorheological and magnetorheological dampers, Journal of Intelligent Material Systems and Structures, 9, 642
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BWM2-0014-0081
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