PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Dynamical Flexibility of the Damped Rod System in Transportation

Identyfikatory
Warianty tytułu
Konferencja
International Conference on Modelling and Simulation of the Friction Phenomena in the Physical and Technical Systems "FRICTION 2008" (5 ; 31.05-1.06.2008 ; Warsaw, Poland) ; French-Polish Seminar of Mechanics (16 ; 31.05-1.06.2008 ; Warsaw, Poland)
Języki publikacji
PL
Abstrakty
EN
One of the most popular method of analyzing vibrations and dynamical states of systems is the method of dynamical flexibility. There is considered the system of damped rod in rotational transportation. The dynamical flexibility was derived from previously recognized equations of motion. Dynamical characteristics were presented in form of charts of attenuation depending on frequency. There were compared the known characteristics of stationary systems with characteristics of systems in rotational transportation without the damping and also with characteristics of rotating systems with taking into consideration the damping.
Rocznik
Strony
121--128
Opis fizyczny
Bibliogr. 9 poz., wykr.
Twórcy
Bibliografia
  • Bajkowski, J., Zalewski, R., 2006, Influence of grain's material on the isotropic hardening function coefficients in compression tests, Proceedings of the XI International Conference Computer Simulation in Machine Design-COSIM 2006, Krynica Zdrój, 9-17.
  • Bajkowski, J., Zalewski, R., 2008, Some problems connected with designing of magnetorheological fluids and dampers, Transactions of the VŠB - Technical University of Ostrava Metallurgical Series, 1, 172-179.
  • Bechtel, S., Washington, G., Ahmadkhanlou, F., Wang, Y., 2004, Microstructural Analysis and Control of Magneto-Rheological Fluid, Proceedings of IMECE'04, 2. (electronic version).
  • Carlson, J.D., 2001, Magnetorheological Brake with Integrated Flywheel, US Patent, No 6,186, 290B1.
  • Carlson, J.D., Catanzarite, D.M., St. Claire, K.A., 1996, Commercial Magneto-Rheological Fluid Devices, Proc. of the 5th Int. Conf. on ER,MR Suspensions and Associated Technology, W.A. Bullough Ed., World Scientific, Singapore, 20-28.
  • Chaboche, J.L., Rousselier, G., 1993, On the plastic and viscoplastic constitutive equations - Part I, ASME Journal of Pressure Vessel Technology, 105, 153-164.
  • Climent, E., Maxey, M.R., Karniadakis, G.E., 2004, Dynamic of Self-Assembled Chaining in Magnetorheological Fluids, Langmuir, 20(2), 507-513.
  • Filisko, F.E., Henley, S., 2000, Parameters Affecting Lamellar Formations in ER Fluids: An Alternative Model for ER Activity, Proceeding of the 7 th International Conference on Electrorheological (ER) Fluids and Magneto-Rheological (MR) Suspensions, R. Tao, Ed., World Scientific, Singapore, 143-151.
  • Gamota, D.R., Filisko, F.E., 1991, Dynamic Mechanical Studies of Electrorheological Materials: Moderate Frequecies, Journal of Rheology, 35, 39-42.
  • Hass, K.C., 1993, Computer Simulations of Nonequilibrium Structure Formation in Electrorheological Fluids, Phys. Rev. E, 47(3), 3362-3373.
  • Kavlicoglu, B., Gordaninejad, F., Evrensel, C.A., Cobanoglu, N., Xin, M., Heine, C, Fuchs, A., and Korol, G., 2002, A High-Torque Magneto-Rheological Fluid Clutch, In: Proceedings of SPIE Conference on Smart Materials and Structures, (electronic version).
  • Klingenberg, D.J., Van Swol, F., Zukoski, C.F., 1991, The Small Shear Rate Response of Electrorheological Suspensions, II Expansion Beyond the Point-Dipole Limit, J. Chem. Phys., 94(9), 6170-6178.
  • Mohebi, M., Jamasbi, N., Liu, J., 1996, Simulation of the Formation of Nonequilibrium Structures in Magnetorheological Fluids Subject to an External Magnetic Field, Phys. Rev. E, 54(5), 5407-5413.
  • Sim, H.G., Ahn, K.H., Lee, S.G., 2003, Three-Dimensional Dynamics Simulation of Electrorheological Fluids Under Large Amplitude Oscillatory Shear Flow, J. Rheol., 47(4), 879-895.
  • Volkova, O., Bossis, G., Carletto, P., Cebers, A., 2000, Shear Banded Structures and Nematic to Isotropic Transition in MR Fluids, Proceeding of the 7th International Conference on Electrorheological (ER) Fluids and Magneto-Rheological (MR) Suspensions, R. Tao, Ed., World Scientific, Singapore, 358-365.
  • Von Pfeil, K., Graham, M.D., Klingenberg, D.J., Morris, J.F., 2001, A Two-Fluid Model for Electro- and Magnetorheological Suspensions, Proceedings of the 8th International Conference on ER Fluids and MR Suspensions, G. Bossis, Ed., World Scientific, Singapore, 759-765.
  • Yang, G., 2001, Large-Scale Magnetorheological Fluid Damper for Vibration Mitigation: Modeling, Testing and Control, Ph.D. Thesis, University of Notre Dame.
  • Zalewski, R., 2005, Analiza właściwości mechanicznych struktur utworzonych z granulatów umieszczonych w przestrzeni z podciśnieniem, Rozprawa Doktorska, Politechnika Warszawska.
  • Zalewski, R., Bajkowski, J., 2006, Evaluation of the viscous stress in the new "smart structures" built on the basis of the granular materials in uniaxial tensile test, Proceeding of the XIV Ukrainian-Polish Conference on "CAD in Machinery Design", Polyana, Ukraine, 16-20.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BWA9-0024-0041
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.