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The analysis of tribological processes in the inking unit of the offset printing machine

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In this paper is proposed the mathematical description of the temperature distribution resulting from the friction between the two inking rollers (one of which is made off steel and the second one has elastic layer) in the offset printing machine. So-called in printing industry steel vibrator roller perform simultaneously rotary and reciprocating motion. This reciprocating motion is the main source of the heat generation. Using the Laplace transform method for heat conduction equations with boundary conditions taking into account the real processes taking place in the inking unit in contact area we obtained and analyzed the solution that could be useful for determination and regulation of parameters in order to decrease time of process stabilization.
Rocznik
Strony
170--174
Opis fizyczny
Bibliogr. 14 poz., rys., wykr.
Twórcy
autor
  • Faculty of Production Engineering, Institute of Mechanics and Printing, Division of Graphic Art Technologies, Warsaw University of Technology, ul. Konwiktorska 2, 00-217 Warszawa, Poland
  • Faculty of Production Engineering, Institute of Mechanics and Printing, Division of Graphic Art Technologies, Warsaw University of Technology, ul. Konwiktorska 2, 00-217 Warszawa, Poland
Bibliografia
  • 1. Abramowitz M, Stegun I. (1965) Handbook of mathematical functions: with formulas, graphs, and mathematical tables, Dover Publications Inc., New York
  • 2. Awrejcewicz J., Grzelczyk D. (2013) Modeling and analysis of thermal processes in mechanical friction clutch-numerical and experimental investigations, International Journal of Structural Stability and Dynamics, Vol. 13, No. 7, 1340004-1-18.
  • 3. Awrejcewicz J., Pyryev Y. (2009) Nonsmooth Dynamics of Contacting Thermoelastic Bodies, Springer Varlag.
  • 4. Blok H. (1940) Fundamental mechanical aspects of boundary lubrication, S.A.E. J., 40, 2, 54-68.
  • 5. Carslaw H. S., Jaeger J. C. (1959) Conduction of heat in solids, Clarendon Pres, Oxford.
  • 6. Chou, S.M., L.J. Bain, R. Durand, Sanderson E. (1996) Novel printing press for waterless lithography. In: TAPPI Proceedings, International Printing & Grpahic Arts Conference. Atlanta, 165–174.
  • 7. Jurkiewicz A., Krzyżkowski J., Piętak Z., Pyr’yev Y. (2011) Modeling of selected phenomena which occur in offset printing presses, [In:] Scientific basis of modern technologies: experience and prospects, Shalapko Y. I., Dobrzanski L. A., Jaremche, 154-168.
  • 8. Olejnik P., Awrejcewicz J. (2013) Low-speed voltage-input tracking control of a DC-motor numerically modelled by a dynamical system with stick-slip friction, Differential Equations and Dynamical Systems, Vol. 21, No. 1-2, 3-13.
  • 9. Piętak Z. M., Pyryev Y. (2011) Mathematical modelling and description of friction and temperature phenomena in inking unit of the offset printing machine, Challenges of Modern Technology, Vol. 2, No. 1, 41-44.
  • 10. Pyryev Y., Piętak Z.M. (2010) Modelowanie i opis matematyczny zjawisk tarciowych w zespole farbowym offsetowej maszyny drukującej, VI International Conference “Friction 2010”. Modelling and Simulation of the Friction Phenomena in the Physical and Technical Systems, Warszawa, 111- 116.
  • 11. Talati F., Jalalifar S. (2009) Analysis of heat conduction in a disk brake system, Heat Mass Transfer, Vol. 45, No. 8, 1047–1059.
  • 12. VanSant J. H. (1983) Conduction heat transfer solutions, CA: Lawrence Livermore National Laboratory, University of California, Livermore.
  • 13. Yevtushenko A., Kuciej M. (2009) Temperature in a frictionally-heated ceramic-metal patch and cast iron disc during braking, Numerical Heat Transfer, Part A: Applications: An International Journal of Computation and Methodology, Vol. 56, No. 2, 97-108.
  • 14. Yevtushenko A., Kuciej M. (2012) One-dimensional thermal problem of friction during braking: The history of development and actual state, International Journal of Heat and Mass Transfer, Vol. 55, No. 15-16, 4148-4153.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5fa01ad0-ae36-4b9f-a98d-df3f1e1389e3
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