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Characterisation of polyacrylonitrile yarns by thermal analysis

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Konferencja
International Conference MTE 2000: Metrology in Textile Engineering (II ; 23-24.11.2000 ; Łódź, Poland)
Języki publikacji
EN
Abstrakty
EN
Six polyacrylonitrile yarns of different linear density were characterised by both differential scanning calorimetry and thermomechanical analysis. The DSC technique, when working with a sealed pan, showed a step-like change around 80°C, which was associated with a glass-transition temperature, and a small cold crystallisation peak around 200°C. The DSC thermograms, when working with perfored pans, showed a single glass transition temperature around 95°C in the cooling scan (210 -0°C) and two breaks of the slope in the range 85-105°C in the reheating curve (0-210°C). The TMA scan exhibited two thermal transitions at ≈ 95°C and ≈ 160 °C. The former was very reproducible and was identified with the step-like change observed in the DSC scan. The latter was not very reproducible and, as with the DSC exothermic peak, seemed to be affected by the linear density of the yarn.
Rocznik
Tom
Strony
145--152
Opis fizyczny
Bibliogr. 10 poz.
Twórcy
autor
  • Ecotechnologies Department, I.I.Q.A.B., Consejo Superior de Investigaciones Cientificas, Barcelona, Spain
autor
  • Ecotechnologies Department, I.I.Q.A.B., Consejo Superior de Investigaciones Cientificas, Barcelona, Spain
autor
  • Universidade da Beira Interior, DCTT, Covilhã, Portugal
autor
  • Laboratory of Thermal Analysis, I.I.Q.A.B., Consejo Superior de Investigaciones Científicas, Barcelona, Spain
Bibliografia
  • [1] Bashir Z., Polyacrylonitrile, an unusual linear homopolymer with two glass transitions, Indian Indian J. Fibre Text. Res., 24(1), 1999, 1-9.
  • [2] Sawai D., Kanamoto T., Porter R. S., Differential Scanning Calorimetry evidence for the existence of a first-order thermal transition in ultraoriented at- poly(acrylonitrile), Macromolecules, 31(6), 1998, 2010-2012.
  • [3] Scobbo, J.J., Nakajima N., Dynamic Mechanical Analysis of thermoplastics composites and resins, Polym. Compos., 12(2), 1991, 102-107.
  • [4] Qian B., Wu, Z., Yang P., Qin, J., Thermal Analysis of fibers. Basic thermal analytical results of swollen fibers, Int. Polym. Process, 1(3), 1987, 123-129.
  • [5] Price D.M., Foster G.M., Modulated-Temperature Thermomechanical Analysis of Fibres, J. Thermal Analysis and Calorimetry, 56, 1999, 649-654.
  • [6] Gacén J., Fibras Acrílicas, UPC-ETSIIT, Terrassa, 2nd Edition, 1987, 52.
  • [7] Ussman M., Modelizaçao Viscoelastica e Alteraçoes Mirostruturais, de Fibras e Fios Texteis em Funçao das Condiçoes de Fabricaçao e tratamentos de Acabamento. PhD Thesis. Universidade da Beira Interior, 1997, Covilhä, Portugal.
  • [8] Manich A.M., Ussman M., Gacén J., Maillo J., Barella A., Influence of the textile manufacturing process on the acrylic fibre microstructure, Anales de Qufmica Int. ed., 93, 2, 1997, 76-80.
  • [9] Bohn C.R., Schaefgen J.R., Statton W.O., J. Polym. Sei., 55, 1961, 531.
  • [10] Jaffe M., Menczel D., Bessey W.E., Chapter 7: Fibres, in Thermal Characterization of Polymeric Materials. Vol. II, E. A. Turi ed., Second Edition, Academic Press, New York, 1997, 1909.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-LOD1-0017-0023
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