Optimization of Decolorizing and Carding Condition for Recycle Materials of Colored Waste Silk Fabrics

폐견직물의 재활용을 위한 탈색과 개섬조건의 최적화

  • 이윤응 (삼성정밀화학(주), 기술연구소) ;
  • 이순근 ((주)백산린텍스, 기술연구소) ;
  • 주창환 (충남대학교 공과대학 섬유공학과)
  • Published : 2005.12.01

Abstract

Silk fabrics are widely used as high quality cloth, interior, quilting and bedding materials because of having excellent touch, drape, resilience and low specific gravity characteristics. But, many waste silk materials are produced during the reeling, spinning, weaving, dyeing and finishing processes. From this fact, the recycle of waste silks is interested in studying for the application of industrial textile materials such as filter, oil absorbent and wound protector. Thus, this research has surveyed the decolorizing and carding characteristics in order to recycle the colored waste silk materials. As the results, the carding condition of waste silk fabrics was optimized with different fiber lengths and curding passage. In addition, the fiber failure mechanism from the wasted silk microdamage caused by carding process was investigated. Also it was found that longitudinal and transverse cracks, abrasion and pilling were formed on the surface of wasted silk fibers.

Keywords

References

  1. Y. Matsumoto, I. Tsuchiya, K. Toriumi, and K. Harakawa, A Study of Throstle-spun Silk/Raw Silk Core-spun Yarns, J. Text. Inst., 81(1), 48-58(1990) https://doi.org/10.1080/00405009008658325
  2. M. Matsudaira, S. Kawabata and M. Niwa, The Loss of Crimp and Crimp Recovery of Wool Fibers during High-Speed Worsted Spinning, J. Text. Inst., 75(4), 267-272(1984) https://doi.org/10.1080/00405008408631701
  3. M. Matsudaira and S. Kawabata, A Study of the Mechanical Properties of Woven Silk Fabrics. Part I: Fabric Mechanical Properties and Handle Characterizing Woven Silk Fabrics, J. Text. Inst., 79(3), 458-475(1988) https://doi.org/10.1080/00405008808658280
  4. M. Matsudaira and S. Kawabata, A Study of the Mechanical Properties of Woven Silk Fabrics. Part II: Analysis of the Shearing Properties of Woven Silk Fabric, J. Text. Inst., 79(3), 476-489(1988) https://doi.org/10.1080/00405008808658281
  5. U. Mayer, J. Z. Wang, Y. Xia, J. Z. Yang, and H. Zollinger, Dye-Fiber Bond Stabilities of Some Reactive Dyes on Silk, J. Soc. Dyers Colour, 102(1), 6-11(1986) https://doi.org/10.1111/j.1478-4408.1986.tb01036.x
  6. Y. Xia, Surface Barrier Effects in Silk Dyeing, Part II: Studies of Surface Barrier and Bulk Diffusion Using a Radioactively Labelled Dye, J. Soc. Dyers Colour, 99(2), 56-63(1983) https://doi.org/10.1111/j.1478-4408.1983.tb03667.x
  7. G. A. Carnaby, Compressional Energy of the Random Fiber Assembly, Textile. Res. J., 62(4), 185-191(1992) https://doi.org/10.1177/004051759206200401
  8. G. A. Carnaby and G. R. B. Claridge, Carding of Tender Wool. Part I : Theory, Textile Res. J., 66(2), 90-98(1996) https://doi.org/10.1177/004051759606600205
  9. G. A. Carnaby, P. J. Moss, R. G. Djaja, and A. J. Carr, Finite Element Modeling of an Oriented Assembly of Continuous Fibers, Textile. Res. J., 62(8), 445-447(1992) https://doi.org/10.1177/004051759206200803
  10. B. Li, N.A.G. Johnson and X. Wang, The Measurement of Fiber-Withdrawal Forces in Simulated High-Speed Carding, J. Text. Inst., 87(2), 311-320(1996) https://doi.org/10.1080/00405009608659084
  11. A. A. Gharehaghaji and N. A. G. Johnson, Wool Fiber Microdamage Caused by Opening Processes. Part I: Sliver Opening, J. Text. Inst., 84(3), 336-347(1993) https://doi.org/10.1080/00405009308658966
  12. A. A. Gharehaghaji and N. A. G .. Johnson, Wool Fiber Microdamage Caused by Opening Processes. Part II: A Study of the Contact Between Opening Elements and Wool Fiber in Controlled Extension, J. Text. Inst., 86(3), 402-414(1995) https://doi.org/10.1080/00405009508658767
  13. G. R. B. Claridge, Carding of Tender Wool. Part II: Evaluation of the Model, Textile. Res. J., 66(3), 141-150(1996) https://doi.org/10.1177/004051759606600303