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Shrink-Proof Treatment Parameter Optimisation of Cashmere Yarn

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Cashmere fiber has soft hand and good elasticity. However, it exhibits shrink because of its scale. In this work, cashmere yarn (38.26 tex) was treated using NaCl-KMnO4 to reduce the shrink of cashmere yarn. Orthogonal design and fuzzy comprehensive evaluation were used for optimizing treating parameters. Experimental results showed that the yarn shrink percentage of treated yarn was 0.56% which was less than that untreated yarn, and the treated yarn strength had a little drop compared with untreated yarn. The fiber scale outline of treated yarn could be observed by SEM, but the scale edge is blunt and irregular.
Rocznik
Strony
57--60
Opis fizyczny
Bibliogr. 15 poz., rys., tab.
Twórcy
autor
  • School of Textile Science & Engineering, Xi’an Polytechnic University, Xi’an 710048, P.R. China
autor
  • Science and Technology Department, Xi’an Polytechnic University, Xi’an 710048, P.R. China
autor
  • School of Textile Science & Engineering, Xi’an Polytechnic University, Xi’an 710048, P.R. China
autor
  • School of Textile Science & Engineering, Xi’an Polytechnic University, Xi’an 710048, P.R. China
autor
  • School of Textile Science & Engineering, Xi’an Polytechnic University, Xi’an 710048, P.R. China
Bibliografia
  • 1. Zhan L, Yang Y, Li G, et al. 2020. Drying kinetics and mechanical properties of low temperature microwave dried cashmere fibers. Textile Research Journal 90: 2745-2754.
  • 2. Zhan L, Li Y, Ji F, et al. 2021. Analysis of states of water in cashmere fibers and utilizing water as molecular probe for pore size distribution. Polymer Testing 101: doi: 10.1016/j.polymertesting.2021.107285
  • 3. Zhan L, Wang G, Zhao X, et al . 2021. Effect of low-temperature dyeing on properties of cashmere fibers, Journal of Natural Fibers, doi: 10.1080/15440478.2020.1870617
  • 4. Li Q, Li L, Shao J. 2012. Effect of low temperature dyeing on physical property and surface morphology of cashmere fibers. Journal of Engineered Fibres & Fabric 7(1) :58-61.
  • 5. Li L, Qin C, Liu C. 2018. Comparison of the structure and properties of wool and cashmere fibers under potassium permanganate treatment. Fibers & Textiles in Eastern Europe 26 (4): 29-33.
  • 6. Whewell C. S., Rigelhaupt L., Selim A. 1944. Mechanism of the milling shrinkage of wool fabrics. Nature 154(16): 772.
  • 7. João C, Bonner P. L. R and Martin G. 2004. Application of transglutaminases in the modification of wool textiles. Enzyme and Microbial Technology 34(1): 64-72.
  • 8. Li L, Li H. 2004. Cashmere processing technology. Shanghai: Donghua University Press.
  • 9. Makinson K. R. 1964. Felting: the Present Picture. Recent Observation on the Mechanism of Felting. Wool Science Review 24:34-48.
  • 10. Mercer E. H, Makinson K. R. 1947.The Friction Properties of Wool and Other textile Fibres. Journal of Textile Institute 38:T227-240.
  • 11. Li L, Jiang F, Jia G. 2012. Anti-felting oxidation treatment of cashmere fibers. Journal of Engineering fibers and Fabrics 7(3): 111-117.
  • 12. Huang S. 1988. Felting test of wool fibers. Beijing: Textile Industry Press.
  • 13. Wang W, Yuan X, Li T. 1998. Study on the optimization of sugar manufacture parameters by fuzzy orthogonality. China Beet & Sugar 3: 4-7.
  • 14. Wang Z, Li G, Liu J, et al. 2001. The optimum design for gleditsin dishwashing detergent by fuzz transform and orthogonal methods. China Surfactant Detergent & Cosmetics 31(3):14-16.
  • 15. He Z. 1983. Fuzzy mathematics and its application. Tianjin: Tianjin Science and Technology Press.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-6d41b739-4b9f-4ed8-b4dc-94f75b046752
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