纺织学报 ›› 2026, Vol. 47 ›› Issue (04): 9-16.doi: 10.13475/j.fzxb.20250705001
林启松1, 戴钧明1(
), 查全亮2, 徐涛1, 吕汪洋1,3
LIN Qisong1, DAI Junming1(
), ZHA Quanliang2, XU Tao1, LÜ Wangyang1,3
摘要:
生物可降解聚丁二酸丁二醇酯(PBS)纤维具有仿羊毛的良好手感,但目前适合用于熔融纺丝的原料特性及纺丝工艺尚不明确。通过研究不同特性黏度PBS的纺丝性能,建立原料与PBS成纤性能之间的联系,并利用声速取向仪和X射线衍射分析纤维取向及晶体结构等聚集态特征随PBS纤维特性黏度、牵伸倍率等因素变化的关系规律。结果表明:高黏PBS有助于提高纤维纺丝速度,但其在纺丝过程中黏度下降显著,如原始特性黏度1.99 dL/g的PBS其无油丝黏度降为0.51 dL/g,导致纤维力学性能下降;部分支化的低黏PBS(特性黏度为1.53 dL/g)可在2 700 m/min的高速纺丝条件下制备预取向丝(POY)纤维,并保持1.74 cN/dtex的断裂强度;POY的断裂强度与纺丝速度成正比,且纺丝速度对其牵伸丝(POY-DT)的力学性能具有显著提升作用,POY纺丝速度由1 500 m/min提升至2 700 m/min时,最高牵伸倍率下得到的POY-DT的断裂强度由1.34 cN/dtex提升至2.91 cN/dtex;PBS纤维取向度随牵伸倍率的增大而提高,纤维特性黏度越高,其声速值越低,低黏PBS有利于纤维取向,但支化不利于纤维取向;纤维牵伸有助于晶粒尺寸细化和晶体结构完善,过程中结晶度可由无油丝的48.09%提升至牵伸2.00倍后的78.91%。
中图分类号:
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