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Development of microstructure affected by in-mould manipulation in polymer composites and nanocomposites

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: Investigation of microstructure of polymer nanocomposites subjected to high shear rates during solidification phase. Design/methodology/approach: Injection moulding technique combined with specially designed mould gives possibility to manipulate solidifying polymer or polymer's mixture inside cavity mould. Findings: Significant increment of fracture energy depending of applied conditions including melt temperature and time of shearing of polymer blend. Research limitations/implications: Obtained nanocomposites contain better mechanical properties comparing to polymer composites and application of SCORIM technique brought satisfying and improved results comparing to conventional methods. Practical implications: Implicated advanced technique to conventional injection moulding gives high performance material with good increased toughness and nanoplatteled particles, uniformly distributed, thanks to the applied technique, inside matrix well reinforce final products. Originality/value: SCORIM technique is rarely used technology and has influence on creation and development of morphology of processed materials.
Rocznik
Strony
71--76
Opis fizyczny
Bibliogr. 26 poz., tab., wykr.
Twórcy
autor
autor
  • Division of Materials Processing Technology, Management and Computer Techniques in Materials Science, Institute of Engineering Materials and Biomaterials, Silesian University of Technology, ul. Konarskiego 18a, 44-100 Gliwice, Poland, marcin.bilewicz@polsl.pl
Bibliografia
  • [1] K. Friedrich, M. Evstatiev, S. Fakirov, O. Evstatiev, M. Ishii, M. Harrass, Microfibrillar reinforced composites from PET/PP blends: processing, morphology and mechanical properties, Composites Science and Technology 65/1 (2005) 107-116.
  • [2] M. Bilewicz, J. C. Viana, A. M. Cunha, L. A. Dobrzański, Polymer composite strengthening by developed injection moulding technique, Archives of Materials Science and Engineering 30/2 (2008) 69-72.
  • [3] M. Arroyo, R. V. Suárez, B. Herrero, M. A. López-Manchado, Optimization of nano-composites based on polypropylene/polyethylene blends and organo-bentonite, Journal of Materials Chemistry 13 (2003) 2915-2921.
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  • [5] M. Sarkissova, Ch. Harrats, G. Groeninckx, S. Thomas, Design and characterisation of microfibrillar reinforced composite, materials based on PET/PA12 blends, Composites part a-applied science and manufacturing 35/4 (2004) 489-499.
  • [6] M. Evistatiev, S. Fakirov, J. Schultz, K. Friedrich, In situfibrillar reinforced PET/PA-6/PA-66 blend, Polymer Engineering Science 41/2 (2001) 192-204.
  • [7] D. Sapoundjieva, Z. Denchev, M. Evstatiev, S. Fakirov, N. Stribeck, M. Stamm, Transcrystallization with reorientation in drawn PET-PA12 blend as revealed by WAXS from synchrotron radiation, Journal of Materials Science 34 (1999) 3063-3081.
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  • [12] M. Bilewicz, J. C. Viana, A. M. Cunha, L. A. Dobrzański, Morphology diversity and mechanical response of injection moulded polymer composites and polymer-polymer composites, Journal of Achievements in Materials and Manufacturing Engineering 15 (2006) 159-165.
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  • [14] T. Jaruga, E. Bociąga, Structure of polypropylene parts from multicavity injection mould, Archives of Materials Science and Engineering 28/7 (2007) 429-432.
  • [15] J. C. Viana, Development of the skin layer in injection moulding: phenomenological model, Polymer 45 (2004) 993-1005.
  • [16] L. A. Dobrzański, M. Król, M. Bilewicz, J. C. Viana, Microstructure and mechanical properties of Polypropylene/Polycarbonate blends, Journal of Achievements in Materials and Manufacturing Engineering 27/1 (2008) 19-22.
  • [17] G. Kalay, M. J. Bevis, The effect of shear controlled orientation in injection moulding on the mechanical properties of an aliphatic polyketone, Journal of Polymer Science: Polymer Physics 35 (1997) 415-430.
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  • [22] M.-X. Wang, W.-B. Hu, Y. Ma, Y.-Q. Ma, Orientational relaxation together with polydispersity decides precursor formation in polymer melt crystallization, Macromolecules 38 (2005) 2806-2812.
  • [23] R. H. Somania, L. Yanga, B. S. Hsiao, Effects of high molecular weight species on shear-induced orientation and crystallization of isotactic polypropylene, Polymer 47/15 (2006) 5657-5668.
  • [24] R. H. Somania, L. Yanga, L. Zhub, B. S. Hsiao, Flow-induced shish-kebab precursor structures in entangled polymer melts, Polymer 46/20 (2005) 8587-8623.
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  • [26] D. Tchalamov, Non-conventional injection molding methods for processing of polymers, PhD thesis, 2005.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BWAN-0003-0045
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