纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 104-110.doi: 10.13475/j.fzxb.20251204401
张培炎1,2, 张家霖1,2, 董杰1,2, 张清华1,2(
)
ZHANG Peiyan1,2, ZHANG Jialin1,2, DONG Jie1,2, ZHANG Qinghua1,2(
)
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%。
中图分类号:
| [1] |
ZHANG Q H, DAI M, DING M X, et al. Mechanical properties of BPDA-ODA polyimide fibers[J]. European Polymer Journal, 2004, 40(11): 2487-2493.
doi: 10.1016/j.eurpolymj.2004.06.020 |
| [2] |
YANG C R, DONG J, FANG Y T, et al. Preparation of novel low-κ polyimide fibers with simultaneously excellent mechanical properties, UV-resistance and surface activity using chemically bonded hyperbranched polysiloxane[J]. Journal of Materials Chemistry C, 2018, 6(5): 1229-1238.
doi: 10.1039/C7TC05153K |
| [3] |
LI X T, ZHU X M, DONG J, et al. Preparation of low-dielectric permittivity polyimide resins with high surface activity from chemically bonded hyperbranched polysiloxane[J]. Chinese Journal of Polymer Science, 2021, 39(9): 1200-1210.
doi: 10.1007/s10118-021-2585-0 |
| [4] |
LIAW D J, WANG K L, HUANG Y C, et al. Advanced polyimide materials: syntheses, physical properties and applications[J]. Progress in Polymer Science, 2012, 37(7): 907-974.
doi: 10.1016/j.progpolymsci.2012.02.005 |
| [5] | 王士华, 董杰, 徐圆, 等. 干法纺聚酰亚胺纤维的结构与性能[J]. 合成纤维工业, 2016, 39(2): 9-12. |
| WANG Shihua, DONG Jie, XU Yuan, et al. Structure and properties of polyimide fiber via dry spinning process[J]. China Synthetic Fiber Industry, 2016, 39(2): 9-12. | |
| [6] |
DONG J, YIN C Q, ZHAO X, et al. High strength polyimide fibers with functionalized graphene[J]. Polymer, 2013, 54(23): 6415-6424.
doi: 10.1016/j.polymer.2013.09.035 |
| [7] |
DONG J, FANG Y T, GAN F, et al. Enhanced mechanical properties of polyimide composite fibers containing amino functionalized carbon nanotubes[J]. Composites Science and Technology, 2016, 135: 137-145.
doi: 10.1016/j.compscitech.2016.09.021 |
| [8] | 郑森森, 郭涛, 董杰, 等. 含咪唑结构高强高模聚酰亚胺纤维的制备及其结构与性能[J]. 纺织学报, 2021, 42(2): 7-11, 20. |
|
ZHENG Sensen, GUO Tao, DONG Jie, et al. Preparation, structure and properties of high-strength high-moduluspolyimide fibers containing benzimidazole moiety[J]. Journal of Textile Research, 2021, 42(2): 7-11, 20.
doi: 10.1177/004051757204200102 |
|
| [9] | 黄显雯, 王微霞, 欧阳琴, 等. 热定型张力对PAN原丝结构与性能的影响[J]. 高科技纤维与应用, 2011, 36(6): 13-16. |
| HUANG Xianwen, WANG Weixia, OUYANG Qin, et al. Effect of heat setting tension on the structure and properties of polyacrylonitrile precursor fibers[J]. Hi-Tech Fiber & Application, 2011, 36(6): 13-16. | |
| [10] | 张鑫. 高亲水中空涤纶短纤维纺丝工艺探讨[J]. 合成纤维工业, 2017, 40(2): 59-62. |
| ZHANG Xin. Discussion of spinning process of high-hydrophilicity hollow polyester staple fiber[J]. China Synthetic Fiber Industry, 2017, 40(2): 59-62. | |
| [11] | 靳艳梅, 王宁, 刘海辉, 等. 紧张热定型工艺对多壁碳纳米管/聚醚醚酮复合纤维结构和性能的影响[J]. 复合材料学报, 2012, 29(3): 23-29. |
| JIN Yanmei, WANG Ning, LIU Haihui, et al. Effects of tension heat-set process on structures and properties of MWCNT/PEEK composite fibers[J]. Acta Materiae Compositae Sinica, 2012, 29(3): 23-29. | |
| [12] |
ZHU Y, WU C X, ZHANG Y W, et al. Study on the chain entanglement of polyvinyl alcohol fiber during the dry-jet wet spinning process[J]. Fibers and Polymers, 2015, 16(2): 345-353.
doi: 10.1007/s12221-015-0345-x |
| [13] |
DONG J, YIN C Q, LIN J Y, et al. Evolution of the microstructure and morphology of polyimide fibers during heat-drawing process[J]. RSC Advances, 2014, 4(84): 44666-44673.
doi: 10.1039/C4RA07129H |
| [14] |
WIBOWO E S, PARK B D, KOO B, et al. Relevance of molecular structure to the morphological properties of lignin extracted by various methods: X-ray scattering analysis[J]. Macromolecules, 2025, 58(8): 4147-4159.
doi: 10.1021/acs.macromol.4c01922 |
| [15] |
ZHENG S S, DONG H, WANG S H, et al. Scalable reaction-spinning of rigid-rod upilex-S® type polyimide fiber with an ultrahigh Tg[J]. Chinese Journal of Polymer Science, 2021, 39(5): 592-600.
doi: 10.1007/s10118-021-2508-0 |
| [16] |
YIN C Q, DONG J, TAN W J, et al. Strain-induced crystallization of polyimide fibers containing 2-(4-aminophenyl)-5-aminobenzimidazole moiety[J]. Polymer, 2015, 75: 178-186.
doi: 10.1016/j.polymer.2015.08.025 |
| [17] |
STEIN R S, NORRIS F H. The X-ray diffraction, birefringence, and infrared dichroism of stretched polyethylene[J]. Journal of Polymer Science, 1956, 21(99): 381-396.
doi: 10.1002/pol.12.v21:99 |
| [18] |
WILCHINSKY Z W. Orientation in crystalline polymers related to deformation[J]. Polymer, 1964, 5: 271-281.
doi: 10.1016/0032-3861(64)90144-2 |
| [19] |
GRUBB D T, PRASAD K. High-modulus polyethylene fiber structure as shown by X-ray diffraction[J]. Macromolecules, 1992, 25(18): 4575-4582.
doi: 10.1021/ma00044a018 |
| [20] |
BOCAHUT A, DELANNOY J Y, LONG D R, et al. Modeling molecular relaxation mechanisms in amorphous polymers: application to polyamides[J]. Macromolecules, 2016, 49(5): 1918-1932.
doi: 10.1021/acs.macromol.5b01963 |
| [21] | 甘锋, 董杰, 张殿波, 等. 热处理过程中聚酰亚胺纤维结构与性能的演变[J]. 合成纤维工业, 2018, 41(1): 21-25. |
| GAN Feng, DONG Jie, ZHANG Dianbo, et al. Evolution of structure and properties of polyimide fibers during thermal treatment[J]. China Synthetic Fiber Industry, 2018, 41(1): 21-25. | |
| [22] | 王莉莉, 朱平, 董侠, 等. 长碳链聚酰胺及其共聚物的拉伸诱导结晶[J]. 高分子学报, 2020, 51(1): 1-11. |
| WANG Lili, ZHU Ping, DONG Xia, et al. Strain-induced crystallization of long chain polyamide and its copolymers[J]. Acta Polymerica Sinica, 2020, 51(1): 1-11. |
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