Page 122 - Handbook of Properties of Textile and Technical Fibres
P. 122
Properties of wool 103
Xue Z, Jin-Xin H: Effect of microwave irradiation on the physical properties and structures of
wool fabric, J Appl Polym Sci 119:944e952, 2011.
Yang S, Ravin MD, Lamb PR, Blenman NG: Wool fibre bundle strength measurement with
Sirolan-tensor, Top-Tech 96, Geelong, 1996, CSIRO Division of Wool Technology, pp
293e304.
Yu W, Gyan H, Postle R: Evaluating single fiber and fiber bundle tensile curves, Text Res J 73:
875e882, 2003. https://doi.org/10.1177/004051750307301005.
Zahn H, Kusch P: Wool as a biological composite system, Mell Textilber Eng Ed 10:75e85,
1981.
Zahn H, Wortmann F-J, Wortmann G, Sch€ afer K, Hoffmann R, Finch R: Wool, Ullmann’s
encyclopedia of industrial chemistry, vol. A28. Hoboken, NJ, 2003, John Wiley & Sons,
Inc., pp 395e421
Zhang R, Zaisheng CAI: Effect of chemical and enzymatic modification on the performance of
wool. In Proceedings of the 2009 international conference on advanced fibers and polymer
materials, Shanghai, Beijing, 2009, Chemical Industry Press, pp 270e273.
Zhang R, Cai Z, Zhang H: Studies on the remedial effect of transglutaminase on protease anti-
felting treated wool, J Text Inst 101:1015e1021, 2010. https://doi.org/10.1080/
01441640903083804.
Zhang H, Sun R-J, Zhang XT: Effect of hydrothermal processing on the structure and properties
of wool fibres, Ind Textila 65:123e128, 2014.
Zimmermann M, H€ ocker H: Typical fracture appearance of broken wool fibers after simulated
sunlight irradiation, Text Res J 66:657e660, 1996. https://doi.org/10.1177/00405175
9606601007.