纺织学报 ›› 2021, Vol. 42 ›› Issue (04): 42-47.doi: 10.13475/j.fzxb.20200606806
YU Jinchao1,2(), JI Hong2, CHEN Kang2, GAN Yu2
摘要:
为得到弹性优良、手感柔软的复合纤维,采用热塑性弹性体聚醚酯(TPEE)与聚对苯二甲酸丁二醇酯(PBT)进行并列复合纺丝,研究了双组分熔体的流变性能、组分配比对并列复合纤维成形稳定性的影响,并分析了复合纤维卷曲形成的机制。结果表明:TPEE组分的加入可降低复合纤维的弹性模量,增加复合纤维的柔软性,但不利于复合纤维断裂强度的提高;当TPEE与PBT的体积比为5∶5时,复合纤维的断裂强度为1.4 cN/dtex,弹性模量为13 cN/dtex,卷曲率高达80%;复合纤维中TPEE组分的热收缩性远高于PBT组分,致使TPEE组分在收缩过程中易受PBT组分的阻碍,形成了TPEE/PBT并列复合纤维的卷曲机制。
中图分类号:
[1] | HU J, LU J, ZHU Y. New developments in elastic fibers[J]. Polymer Reviews, 2008,48(2):275-301. |
[2] | HAN K, LI W, WU C, et al. Study on hyperbranched polyesters as rheological modifier for Spandex spinning solution[J]. Polymer International, 2006,55(8):898-903. |
[3] | CHEN S H, WANG S Y. Tensile and fracture behaviors of PET/PTT side-side bicomponent filament[J]. International Journal of Polymer Analysis & Characterization, 2010,15(3):147-154. |
[4] | OH T H. Melt spinning and drawing process of PET side-by-side bicomponent fibers[J]. Journal of Applied Polymer Science, 2006,101(3):1362-1367. |
[5] | 李明明, 陈烨, 李夏, 等. 纺丝工艺对并列复合聚酯纤维性能的影响[J]. 纺织学报, 2019,40(12):16-20. |
LI Mingming, CHEN Ye, LI Xia, et al. Influence of spinning process on property of parallel composite polyester fiber[J]. Journal of Textile Research, 2019,40(12):16-20. | |
[6] | PRAHSAM C, KLINSUKHON W, ROUNGPAISAN N, et al. Self-crimped bicomponent fibers containing polypropylene/ethylene octene copolymer[J]. Materials Letters, 2013,91:232-234. |
[7] | AYAD E, CAYLA A, RAULT F, et al. Influence of rheological and thermal properties of polymers during melt spinning on bicomponent fiber morphology[J]. Journal of Materials Engineering and Performance, 2016,25(8):3296-3302. |
[8] | YAN T, YAO Y, JIN H, et al. Elastic response of copolyether-ester fiber on its phase morphology under different heat-treatment condition[J]. Journal of Polymer Research, 2016,23(11):226. |
[9] | YU J, YAN T, JI H, et al. The evolution of structure and performance in copolyether-ester fibers with different heat-treatment process[J]. Journal of Polymer Research, 2019,26(2):50. |
[10] | CHOR Y B, KIM S Y. Effects of interface on the dynamic mechanical properties of PET/nylon 6 bicomponent fibers[J]. Journal of Applied Polymer Science, 1999,74(8):2083-2093. |
[11] | ABBASI M, KOTEK R. Effects of drawing process on crimp formationability of side-by-side bicomponent filament yarns produced from recycled, fiber-grade and bottle-grade PET[J]. The Journal of The Textile Institute, 2019,110(10):1439-1444. |
[12] | RWEI S P, LIN Y T, SU Y Y. Study of self-crimp polyester fibers[J]. Polymer Engineering & Science, 2005,45(6):838-845. |
[13] | 施楣梧, 肖红. PET/PTT双组分弹性长丝的结晶取向结构和卷曲性能[J]. 高分子通报, 2009 (1):37-44. |
SHI Meiwu, XIAO Hong. The crystallinity and orientation structure and crimp properties of PET/PTT bicomponent filament[J]. Polymer Bulletin, 2009(1):37-44. |
[1] | 廖壑, 王建宁, 张东剑, 甘学辉, 张玉梅, 王华平. 并列复合纺丝孔道内流动组分的界面分布数值模拟[J]. 纺织学报, 2021, 42(01): 30-34. |
[2] | 张静静 王颖 宋丹 国凤敏 陈超. 聚对苯二甲酸乙二醇酯与聚对苯二甲酸丁二醇酯的热分解性能[J]. 纺织学报, 2016, 37(07): 34-38. |
[3] | 倪永 刘志红 胡腾蛟. PET、PTT与PBT材料的定性与定量鉴别方法[J]. 纺织学报, 2012, 33(10): 28-32. |
[4] | 程贞娟. 聚醚酯的热氧化和抗热氧化[J]. 纺织学报, 1998, 19(03): 40-42. |
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