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Flow behaviour of rubber in capillary and injection moulding dies

Plastics, rubber, and composites : PRC, v.46 no.3, 2017년, pp.110 - 118  

Mitsoulis, Evan (School of Mining Engineering and Metallurgy, National Technical University of Athens, Athens, Greece) ,  Battisti, Markus (Department of Polymer Engineering, Institute of Injection Molding of Polymers, Montanuniversitä) ,  Neunhäuserer, Andreas (t Leoben, Austria) ,  Perko, Leonhard (Department of Polymer Engineering, Institute of Injection Molding of Polymers, Montanuniversitä) ,  Friesenbichler, Walter (t Leoben, Austria) ,  Ansari, Mahmoud (Woco Industrietechnik GmbH, Bad Soden-Salmü) ,  Hatzikiriakos, Savvas G. (nster, Germany)

초록이 없습니다.

참고문헌 (27)

  1. Perko, L., Fasching, M., Friesenbichler, W.. Model for the prediction of bulk temperature changes and pressure losses in rubber compounds flowing through conical dies: An engineering approach. Polymer engineering and science, vol.55, no.3, 701-709.

  2. Rubber Fibres Plast Int Perko L 117 10 2015 

  3. Melt rhelolgy and its role in plastics processing - theory and applications Dealy JM 1990 

  4. Laun, Hans Martin. Pressure dependent viscosity and dissipative heating in capillary rheometry of polymer melts. Rheologica acta, vol.42, no.4, 295-308.

  5. Laun, Hans Martin. Capillary rheometry for polymer melts revisited. Rheologica acta, vol.43, no.5, 509-528.

  6. Bagley, E. B.. End Corrections in the Capillary Flow of Polyethylene. Journal of applied physics, vol.28, no.5, 624-627.

  7. Cogswell, F. N.. Measuring the Extensional Rheology of Polymer Melts. Transactions of the Society of Rheology, vol.16, no.3, 383-403.

  8. Polymer melt rhelolgy - a guide to industrial practice Cogswell FN 1981 

  9. Binding, D.M.. An approximate analysis for contraction and converging flows. Journal of non-Newtonian fluid mechanics, vol.27, no.2, 173-189.

  10. Binding, D.M.. Further considerations of axisymmetric contraction flows. Journal of non-Newtonian fluid mechanics, vol.41, no.1, 27-42.

  11. Padmanabhan, Mahesh, Macosko, Christopher W., Padmanabhan, M.. Extensional viscosity from entrance pressure drop measurements. Rheologica acta, vol.36, no.2, 144-151.

  12. Ansari, Mahmoud, Zisis, Thanasis, Hatzikiriakos, Savvas G., Mitsoulis, Evan. Capillary flow of low‐density polyethylene. Polymer engineering and science, vol.52, no.3, 649-662.

  13. J Non-Newton Fluid Mech Ansari M 18 167 2012 

  14. Engineering rheology Tanner RI 2000 10.1093/oso/9780198564737.001.0001 2 

  15. 10.1002/9783527630257.ch4 

  16. 10.3139/9783446412811 

  17. Papanastasiou, A. C., Scriven, L. E., Macosko, C. W.. An Integral Constitutive Equation for Mixed Flows: Viscoelastic Characterization. Journal of rheology, vol.27, no.4, 387-410.

  18. Luo, X.‐L., Tanner, R. I.. Finite element simulation of long and short circular die extrusion experiments using integral models. International journal for numerical methods in engineering, vol.25, no.1, 9-22.

  19. Kajiwara, T., Barakos, G., Mitsoulis, E.. Rheological Characterization of Polymer Solutions and Melts with an Integral Constitutive Equation. International journal of polymer analysis and characterization, vol.1, no.3, 201-215.

  20. Luo, X. -L., Tanner, R. I.. A pseudo-time integral method for non-isothermal viscoelastic flows and its application to extrusion simulation. Rheologica acta, vol.26, no.6, 499-507.

  21. Hatzikiriakos, S. G., Dealy, J. M.. Wall slip of molten high density polyethylene. I. Sliding plate rheometer studies. Journal of rheology, vol.35, no.4, 497-523.

  22. Hatzikiriakos, Savvas G., Dealy, John M.. Wall slip of molten high density polyethylenes. II. Capillary rheometer studies. Journal of rheology, vol.36, no.4, 703-741.

  23. Mitsoulis, Evan, Kazatchkov, Igor B., Hatzikiriakos, Savvas G.. The effect of slip in the flow of a branched PP melt: experiments and simulations. Rheologica acta, vol.44, no.4, 418-426.

  24. Mitsoulis, E., Hatzikiriakos, S.G.. Steady flow simulations of compressible PTFE paste extrusion under severe wall slip. Journal of non-Newtonian fluid mechanics, vol.157, no.1, 26-33.

  25. Hannachi, A., Mitsoulis, E.. Sheet coextrusion of polymer solutions and melts: Comparison between simulation and experiments. Advances in polymer technology, vol.12, no.3, 217-231.

  26. Luo, X.‐L., Mitsoulis, E.. An efficient algorithm for strain history tracking in finite element computations of non‐Newtonian fluids with integral constitutive equations. International journal for numerical methods in fluids, vol.11, no.7, 1015-1031.

  27. Ansari, M., Alabbas, A., Hatzikiriakos, S. G., Mitsoulis, E.. Entry Flow of Polyethylene Melts in Tapered Dies. International polymer processing : the journal of the Polymer Processing Society, vol.25, no.4, 287-296.

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