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Tytuł artykułu

The elimination of micropores and surface defects in aramid-silicon laminated materials with special properties

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: Development of the manufacturing technology of aramid-silicon laminated material and define of the micro-cavities amount during production of the laminates and identification of their influence on product properties with assumed medical implantation. Design/methodology/approach: Aramid-silicon laminated material was made by method of manual formation of laminates, that is impregnation of reinforcement with matrix, to hardening silicone process using hardening methods connected with hot. Created material was observed on Olimpus HIGLIGHT 2000 optical microscope with magnification 40x. Findings: The results show that the preliminary manufacturing technology of aramid-silicon laminated materials allows to create a material with specific and special properties. Aramid-silicone laminate could be used in medicine for example as gullet prosthesis. Research limitations/implications: Carried out investigations show the problem with cautioning and ageing which are very important in having proper percentage of intensifier in developed material. Originality/value: Taking into account the material specific properties one can suppose that the aramid-silicon laminated material would be useful in medicine. Aramid silicone laminate could be attractive alternative for composite material used in medical and others purposes.
Rocznik
Strony
121--128
Opis fizyczny
Bibliogr. 26 poz., rys., tabl.
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, agnieszka.j.nowak@polsl.pl
Bibliografia
  • [1] L. A. Dobrzański, Principle of materials science, metallography, Publication of WNT, Gliwice - Warsaw 2006.
  • [2] I. Hyla, Polimers materials, Publication of Silesian University of Technology, Gliwice, 2004.
  • [3] P. Rościeszewski, M. Zielecka, Silicones, Publication of WNT, Warsaw, 2002.
  • [4] W. Szlezinger, Polimers materials vol 1, Publication of FOSZE, Rzeszów, 1999.
  • [5] P. Czub, Z. Bończa-Tomaszewski, P. Penczek, Pieluchowski J. Chemistry and technology enrolments resin, Publication of WNT, Warsaw, 2002.
  • [6] W. Szlezinger, Polimers materials vol 3, Publication of FOSZE, Rzeszów, 2001.
  • [7] U. Sianko, Polimers materials, Publication of WNT, Warsaw, 2000.
  • [8] D. Żuchowska, Constructionals polimers, Publication of WN–T, Warsaw, 2000.
  • [9] K. Imielińska, R. Wojtyra, M. Castaings, Impact resistance and damage tolerance of hybrid: carbon, glass, Kevlar/epoxy laminatem, Composites 4 (2001) 188-191.
  • [10] K. Kurek, K.A. Błędzki, The effect of micropores on mechanical properties of laminatem, Polimery 4 (2000) 271-281.
  • [11] L. A. Dobrzański., Materiaals design as a fundamental aim of materials engineering, Rudy Metale 6 (2005) 296-311.
  • [12] Technical information: Basic enrolments resin, Chemical Industry 8 (2000) 34-50.
  • [13] W. Królikowski, Special polimers materials, Publication of Stettin University of Technology, Stettin, 1998 (in Polish).
  • [14] J. Pieluchowski, A. Puszyński, Polimers materials technology, Publication of WNT, Warsaw, 1992 (in Polish).
  • [15] L. A. Dobrzański, A. Pusz, A. J. Nowak, Aramid-silicon Laminated materials with special properties-new perspective of its usage, Journal of Achievements In Materials and Manufacturing Engineering 28/1 (2008) 148-156.
  • [16] B. Żywicka, Opinion of aramid fabric biocompatibls -summary physician 's discussion, Polimers in Medicine 3 (2004) 68-76.
  • [17] R. Kijowska, Progress in technology biomaterials applicable in surgery human being organ, Chemical Industry 4 (1998) 243-248.
  • [18] Y. S. Lipatov, Biocompatible polymers for medical application, Publication of Stettin University of Technology, Stettin 1998 (in Polish).
  • [19] E. Bociaga, T. Jaruga, Experimental investigation of polymer flow in injection mould, Archives of Materials Science and Engineering 28/3 (2007) 165-172.
  • [20] W. Okularczyk, D. Kwiatkowski, Prognosing the durability of polymer sealings, Journal of Achievements in Materials and Manufacturing Engineering 17 (2006) 125-128.
  • [21] J. Myalski, Properties of laminates containing polymer glass fiber recyclates, Journal of Achievements in Materials and Manufacturing Engineering 14 (2006) 54-58.
  • [22] K. Dobrucki, A method of designing of polymer composites for impact loading, Proceedings of the 10th Jubilee International Scientific Conference “Achievements in the Mechanical and Materials Engineering” AMME’2001, Gliwice 􀃭 Sopot, 2001, 56-60.
  • [23] M. Rojek, J. Stabik, S. Sokol, Fatigue and ultrasonic testing of epoxy-glass composites, Journal of Achievements in Materials and Manufacturing Engineering 20 (2006) 183-186.
  • [24] D. Kwiatkowski, J. Nabialek, A. Gnatowski, The examination of the structure of PP composites with the glass fibre, Archives of Materials Science and Engineering 28/7 (2007) 405-408.
  • [25] W. C. D. Cheong, L. C. Zhang, Monocrystalline silicon subjected to multi-asperity sliding: nano-wear mechanisms, subsurface damage and effect of asperity interaction, International Journal of Materials and Product Technology 4 (2003) 398-407.
  • [26] S. H. Zhang, H. L. Chen, X. P. Wang, Numerical parametric investigation of loss factor of laminated composites with interleaved viscoelastic layers, International Journal of Vehicle Noise and Vibration 2 (2006) 62-74.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BOS2-0020-0069
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