170
Views
2
CrossRef citations to date
0
Altmetric
Research Article

The Influence of Fiber Length Distribution on Yarn Properties Based on Fiber Random Arrangement in the Yarn

, , , &

References

  • Brown, G. H., and N. G. Ly. 1985. Statistics for the number of fiber ends in a segment of a random assembly of aligned fibers. Textile Research Journal 55:206–10. doi:10.1177/004051758505500402.
  • Cherkassky, A. 2010. Discrete-event simulation model of roll-drafting process. Journal of the Textile Institute 102:1044–58. doi:10.1080/00405000.2010.531950.
  • Cui, X., J. Rodgers, Y. Cai, L. Li, R. Belmasrour, and S. Pang. 2009. Obtaining cotton fiber length distribution from beard test method. Part 1 - theoretical distribution of cotton fiber length. Journal of Cotton Science 13:265–73.
  • Hearle, J. W. S., P. Grosberg, and S. Backer. 1969. Structural mechanics of fibers, yarns and fabrics. New York: Wiley-Interscience.
  • Hertel, K. I. 1940. A method of fibre-length analysis using the fibrograph. Textile Research Journal 10:510–20. doi:10.1177/004051754001001203.
  • Jiang, Z., Y. Hu, X. Kuang, C. Yu, and J. Yang. 2014a. Simulation on fiber random arrangement in the yarn. The Journal of the Textile Institute 105:1312–18. doi:10.1080/00405000.2014.891685.
  • Jiang, Z., X. Kuang, J. Yang, and C. Yu. 2017. Simulation on fiber random arrangement in the yarn part II: Joint effect of fiber length and fineness distribution. Journal of the Textile Institute 108:347–52. doi:10.1080/00405000.2016.1166821.
  • Jiang, Z., J. Yang, and C. Yu. 2014b. Simulation on yarn strength based on fiber random arrangement in the yarn. Journal of the Textile Institute 105:209–13. doi:10.1080/00405000.2013.834575.
  • Jiang, Z., C. Yu, J. Yang, G. Han, and M. Xing. 2019. Estimation of yarn strength based on critical slipping length and fiber length distribution. Textile Research Journal 89:182–94. doi:10.1177/0040517517741160.
  • Krifa, M. 2008. Fiber length distribution in cotton processing: A finite mixture distribution model. Textile Research Journal 78:688–98. doi:10.1177/0040517508083729.
  • Kuang, X., Y. Hu, J. Yang, and C. Yu. 2015. Application of finite mixture model in cotton fiber length probability distribution. The Journal of the Textile Institute 106:146–51. doi:10.1080/00405000.2014.906102.
  • Lin, Q., G. Yan, and C. Yu. 2008. Non-parameter kernel estimation of density function of cotton fiber length. Journal of Textile Research 29:22–25.
  • Lin, Q., G. Yan, and C. Yu. 2011. Effect of fiber length distribution and fineness on theoretical unevenness of yarn. Journal of the Textile Institute 102:293–307. doi:10.1080/00405001003616793.
  • Martindale, J. G. 1945. A new method of measuring the irregularity of yarns with some observations on the origin of irregularities in worsted slivers and yarns. Journal of the Textile Institute Transactions 36:35–47. doi:10.1080/19447024508659383.
  • Pan, N. 1992. Development of a constitutive theory for short fiber yarns: Mechanics of staple yarn without slippage effect. Textile Research Journal 62:749–65. doi:10.1177/004051759206201208.
  • Pan, N. 1993. Development of a constitutive theory for short fiber yarns. Part II: Mechanics of staple yarn with slippage effect. Textile Research Journal 63:504–14. doi:10.1177/004051759306300902.
  • Peirce, F. T. 1926. Tensile tests for cotton yarns V. – “The weakest link” theorems on the strength of long and of composite specimens. Journal of the Textile Institute 17:355–68. doi:10.1080/19447027.1926.10599953.
  • Rao, J. S. 1961. A mathematical model for the ideal sliver and its applications to the theory of roller drafting. Journal of the Textile Institute Transactions 52:571–601. doi:10.1080/19447027.1961.10750534.
  • Spencer-Smith, J. L., and H. A. C. Todd. 1941. A time series met with in textile research. Supplement to the Journal of the Royal Statistical Society 7:131–45. doi:10.2307/2983660.
  • Suh, M. W. 1976. Probabilistic assessment of irregularity in random fiber arrays – effect of fiber length distribution on variance length curve. Textile Research Journal 46:291–98. doi:10.1177/004051757604600410.
  • Yan, G. 2009. Study on the influence of fiber length distribution based on probabilistic function (Unpublished doctoral dissertation). Donghua University, Shanghai, China.
  • Zeidman, M., and P. S. Sawhney. 2002. Influence of fiber length distribution on strength efficiency of fibers in yarn. Textile Research Journal 72:216–20. doi:10.1177/004051750207200306.
  • Zeidman, M. I., M. W. Suh, and S. K. Batra. 1990. A new perspective on yarn unevenness: Components and determinants of general unevenness. Textile Research Journal 60:1–6. doi:10.1177/004051759006000101.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.