纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 104-110.doi: 10.13475/j.fzxb.20251204401

• 纤维材料 • 上一篇    下一篇

紧张热定形工艺对聚酰亚胺纤维结构与性能的影响

张培炎1,2, 张家霖1,2, 董杰1,2, 张清华1,2()   

  1. 1 东华大学 先进纤维材料全国重点实验室, 上海 201620
    2 东华大学 材料科学与工程学院, 上海 201620
  • 收稿日期:2025-12-22 修回日期:2026-05-26 出版日期:2026-07-15 发布日期:2026-07-29
  • 通讯作者: 张清华(1970—),男,教授,博士。主要研究方向为高性能纤维等。E-mail:qhzhang@dhu.edu.cn
  • 作者简介:张培炎(1998—),男,博士生。主要研究方向为高性能纤维。
  • 基金资助:
    国家重点研发计划项目(2023YFB3811901);国家自然科学基金项目(52373318)

Influence of tension heat-setting process on structure and properties of polyimide fibers

ZHANG Peiyan1,2, ZHANG Jialin1,2, DONG Jie1,2, ZHANG Qinghua1,2()   

  1. 1 State Key Laboratory of Advanced Fiber Materials, Donghua University, Shanghai 201620, China
    2 College of Materials Science and Engineering, Donghua University, Shanghai 201620, China
  • Received:2025-12-22 Revised:2026-05-26 Published:2026-07-15 Online:2026-07-29

摘要:

针对热定形工艺参数对聚酰亚胺纤维结构与性能影响机制尚不明确的问题,以2-(4-氨基苯基)-5-氨基苯并咪唑、对苯二胺和3,3',4,4'-联苯四羧酸二酐为单体,采用干法纺丝技术制备聚酰亚胺原丝。通过改变热定形时间与牵伸倍率,制备了不同工艺条件下的纤维样品。利用傅里叶变换红外光谱、广角X射线衍射、小角X射线散射及纤维强力仪系统分析了纤维的化学结构、聚集态结构演变及力学性能。结果表明:热定形时间与牵伸倍率显著影响纤维的结晶度、取向度及微纤尺寸,进而决定其力学性能;经热定形处理后,纤维内部分子链排列更加规整,晶体结构趋于完善,取向度明显提升;在450 ℃温度下,采用1.0牵伸倍率热定形20 s时,纤维综合力学性能达到最优,其拉伸强度与弹性模量分别为2.35 GPa和142.8 GPa,相较于未热定形纤维分别提高了14%和8%。

关键词: 聚酰亚胺纤维, 紧张热定形, 聚集态结构, 干法纺丝, 拉伸强度, 弹性模量

Abstract:

Objective Polyimide (PI) fibers are widely applied in high-temperature filtration and protection fields by virtne of their excellent thermal stability and chemical resistance. However, the mechanical properties of commercially available PI fibers are often insufficient for high-load applications. Tension heat-setting is a critical post-treatment process to improve fiber performance, yet the evolution mechanism of the hierarchical structure during this process remains unclear. This study aims to investigate the influences of heat-setting time and draft ratio on the aggregation structure (including crystallization, molecular orientation, and microfibril evolution) and mechanical properties of PI fibers derived from 2-(4-aminophenyl)-5-aminobenzimidazole (BIA), p-phenylenediamine (PDA), and 3,3',4,4'-biphenyl tetracarboxylic dianhydride (BPDA). The goal is to establish a process-structure-property relationship to guide the production of high-strength and high-modulus PI fibers.

Method High-viscosity polyamic acid (PAA) solution was synthesized by copolymerizing BIA, PDA, and BPDA in DMAc. PI fibers were prepared by a dry spinning process with a spinneret temperature of 250 ℃ and a winding speed of 200 m/min. The nascent fibers were thermally imidized at 300 ℃ (draw ratio 1.15) and then drawn at 450 ℃ (draw ratio 2.0) to obtain precursor fibers (PI-2). Subsequently, tension heat-setting was performed at 450 ℃ under different conditions: time periods (12, 20, 30, and 60 s) and draft ratios (0.9, 1.0, and 1.1). The chemical structure was characterized by attenuated total reflectance fourier transform infrared spectroscopy (FT-IR). The aggregation structure, including crystal parameters and microfibril dimensions, was analyzed using synchrotron radiation wide-angle X-ray diffraction (WAXD) and small-angle X-ray scattering (SAXS). Mechanical properties were tested using a single fiber strength tester.

Results FT-IR spectra confirmed that the nascent fibers had a low degree of imidization (35.7%), while fibers treated at 450 ℃ achieved complete imidization. Mechanical testing revealed that the tensile strength and modulus were sensitive to both heat-setting time period and draft ratio. The optimal mechanical performance was achieved at a heat-setting temperature of 450 ℃, a draft ratio of 1.0, and a time period of 20 s. Under these conditions, the tensile strength and initial modulus reached 2.35 GPa and 142.8 GPa, respectively, representing increases of 14% and 8% compared to the fibers without heat-setting, respectively. WAXD analysis indicated that heat-setting significantly improved the crystal perfection and molecular orientation. The appearance of distinct diffraction spots corresponding to the (004) crystal plane of the BPDA-PDA unit confirmed the formation of ordered crystalline regions. The orientation factor increased monotonically with the draft ratio. SAXS results, analyzed using the Grubb model, elucidated the evolution of microfibrils. Under negative draft (0.9 draft ratio), the misalignment angle (Bf) increased significantly, indicating a disordered arrangement of microfibrils due to entropy elasticity. Under positive draft (1.1 draft ratio), the fibers exhibited the lowest average length of microfibrils (lf), suggesting the best orientation; however, the decrease of lf is likely due to the breakage of microfibrils under high tension. In contrast, the constant length heat-setting (1.0 draft ratio) facilitated the synergistic effect of thermal and stress fields, resulting in the maximum microfibril length and the most perfect crystal structure, which contributed to the highest mechanical strength.

Conclusion Tension heat-setting is an effective method to enhance the mechanical properties of BIA-modified PI fibers. The evolution of the fiber structure is governed by the competition between molecular chain disentanglement, crystallization, and degradation. While higher draft ratios improve orientation, they may cause structural damage to microfibrils. The constant length heat-setting (1.0 draft ratio) at 450 ℃ for 20 s provides the optimal balance, promoting the growth of long, well-oriented microfibrils and perfect crystals. These findings offer valuable experimental data and theoretical support for the industrial manufacturing of high-performance polyimide fibers.

Key words: polyimide fiber, tension heat-setting, aggregation structure, dry spinning, tensile strength, elastic modulus

中图分类号: 

  • TS102.52

图1

PI纤维制备流程的反应式"

表1

样品编号与热定形条件"

样品编号 热定形时间/s 热定形牵伸倍率
PI-A-0.9 60 0.9
PI-B-0.9 30 0.9
PI-B-1.0 30 1.0
PI-B-1.1 30 1.1
PI-C-0.9 20 0.9
PI-C-1.0 20 1.0
PI-C-1.1 20 1.1
PI-D-0.9 12 0.9
PI-D-1.0 12 1.0
PI-D-1.1 12 1.1

图2

PI-AS-SPUN和PI-2纤维的FT-IR谱图"

表2

不同热定形工艺下PI纤维的力学性能"

样品编号 拉伸强度/GPa 弹性模量/GPa 断裂伸长率/%
PI-2 2.06±0.02 132.7±2.4 1.82±0.02
PI-A-0.9 1.84±0.22 135.8±1.7 1.52±0.18
PI-B-0.9 2.10±0.11 123.1±3.6 2.15±0.17
PI-B-1.0 2.07±0.18 147.6±16.0 1.36±0.04
PI-B-1.1 1.99±0.13 145.5±12.4 1.57±0.09
PI-C-0.9 2.10±0.10 115.3±4.2 2.37±0.10
PI-C-1.0 2.35±0.07 142.8±4.4 1.99±0.05
PI-C-1.1 2.06±0.09 141.8±2.5 1.68±0.09
PI-D-0.9 2.16±0.04 105.1±4.1 2.78±0.14
PI-D-1.0 2.21±0.14 133.0±4.0 2.08±0.10
PI-D-1.1 2.21±0.11 144.5±3.7 1.78±0.10

图3

不同热定形条件下PI纤维的二维WAXD图谱"

图4

不同热定形工艺下PI纤维的WAXD一维积分曲线"

图5

不同热定形倍率下PI纤维(004)晶面的方位角扫描曲线"

图6

不同热定形倍率下PI纤维(004)晶面的取向度变化曲线"

图7

不同热定形工艺下PI纤维的二维SAXS图谱"

图8

不同热定形条件下PI纤维的Grubb曲线"

表3

不同热定形工艺下PI纤维的Grubb模型分析结果"

样品编号 lf/nm Bf/(°)
PI-2 353.67 19.00
PI-C-0.9 356.36 31.13
PI-C-1.0 446.40 16.12
PI-C-1.1 390.09 14.58
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