纺织学报 ›› 2025, Vol. 46 ›› Issue (11): 238-246.doi: 10.13475/j.fzxb.20250301702

• 综合述评 • 上一篇    下一篇

高模量对位芳纶研究进展

袁颖1, 滕凤冬1, 曹煜彤2, 于俊荣1(), 李娜1, 胡祖明1, 王彦1   

  1. 1.东华大学 先进纤维材料全国重点实验室, 上海 201620
    2.中化高性能纤维材料有限公司, 江苏 扬州 211417
  • 收稿日期:2025-03-10 修回日期:2025-08-11 出版日期:2025-11-15 发布日期:2025-11-15
  • 通讯作者: 于俊荣(1971—),女,研究员,博士。主要研究方向为高分子材料成形工艺及理论、复合材料。E-mail:yjr@dhu.edu.cn
  • 作者简介:袁颖(1998—),女,博士生。主要研究方向为高性能纤维及复合材料。
  • 基金资助:
    国家重点研发计划项目(2021YFB3700103)

Research progress in high modulus para-aramid fibers

YUAN Ying1, TENG Fengdong1, CAO Yutong2, YU Junrong1(), LI Na1, HU Zuming1, WANG Yan1   

  1. 1. State Key Laboratory for Advanced Fiber Materials, Donghua University, Shanghai 201620, China
    2. Sinochem High Performance Fiber Materials Co., Ltd., Yangzhou, Jiangsu 211417, China
  • Received:2025-03-10 Revised:2025-08-11 Published:2025-11-15 Online:2025-11-15

摘要:

高模量对位芳纶作为重要的战略材料在航空航天、安全防护等尖端领域有广泛的应用。为推动高模量对位芳纶纤维的发展,突破行业技术瓶颈,综述了国内外高模量对位芳纶的研究进展。从市场需求和高模量对位芳纶性能优势出发深入分析了研究高模量对位芳纶的必要性;从纺丝工艺及纤维多尺度结构形态角度系统分析了影响对位芳纶模量的主要因素;重点总结了国内外制备高模量对位芳纶的方法,包括热处理、高分子量树脂纺丝、超临界二氧化碳增强、涂层处理、纳米材料增强及交联剂处理;最后介绍了高模量对位芳纶的主要应用。指出,高模量对位芳纶的发展不仅需要深化纤维结构的研究,超越传统的加工限制提高其产量和质量,也需与时俱进实现高性能多功能。

关键词: 高性能纤维, 高模量对位芳纶, 纤维结构, 模量, 热处理, 纤维改性

Abstract:

Significance As a critical strategic material for aerospace, personal protection, and other cutting-edge applications, structural failures in para-aramid products could trigger significant safety hazards and economic risks. Given the escalating operational demands on the comprehensive performance of para-aramid fibers in practical applications, transcending conventional processing limitations to achieve autonomous production of high-modulus para-aramid fibers has emerged as a pivotal challenge in advanced fiber technology sector. This study conducts in-depth analysis of the structure-property relationships between multiscale structural configurations and macroscopic performance, while systematically reviewing the developmental trajectory of high-modulus para-aramid preparation technologies. The review aims to establish theoretical foundations for optimizing heat treatment processes and developing novel modification approaches, thereby addressing industrial technical bottlenecks and enhancing the competitiveness of domestically produced high-modulus para-aramid fibers in premium application sectors. +++Progress The heat treatment process of para-aramid fibers involves synergistic control of temperature, tension, and time to rapidly remove internal moisture while strengthening hydrogen bonding between molecular chains, thereby significantly improving fiber modulus. However, this process relies on high-temperature and high-tension conditions, which not only increase the risk of molecular chain breakage but also impose stringent requirements on equipment precision and stability. In order to further enhance the modulus of para-aramid fibers, researchers have proposed various modification strategies centered on molecular structure design and processing innovations, each with distinct advantages yet facing practical challenges. In the field of spinning dope modification, the use of high-molecular-weight para-aramid resin effectively broadens the liquid crystal phase temperature range, enabling highly ordered molecular chain alignment and laying the foundation for constructing high-crystallinity, high-modulus para-aramid fibers. However, challenges arise in controlling the solubility of high-molecular-weight resin and the stability of the spinning dope, leading to increased filament breakage during spinning. Supercritical carbon dioxide modification technology leverages its strong small-molecule permeability to penetrate the amorphous regions of fibers, achieving densification and reorganization for significant modulus enhancement. However, this technique requires maintaining high-pressure and high-temperature supercritical conditions, with equipment costs and safety risks posing barriers to industrialization. Surface chemical coating modification directly enhances fiber mechanical properties by introducing rigid interfacial layers, offering a simple process compatible with existing production lines. However, the chemical inertness of para-aramid surfaces results in insufficient coating adhesion strength, often causing interfacial delamination during practical use. Nanoparticle composite modification utilizes the size effects of nanomaterials to form reinforcing phases within fibers. Yet, the stringent requirement for uniform nanoparticle dispersion leads to particle agglomeration in production, creating structural defects. Molecular crosslinking strategies enhance intermolecular interactions by constructing covalent bond networks, providing a novel approach to simultaneously improve strength and modulus. However, the high stability of para-aramid molecular chains makes selective crosslinking difficult, and byproduct accumulation may compromise fiber structural uniformity. Existing modification technologies, such as molecular alignment optimization and amorphous region restructuring, enhance para-aramid modulus. Additionally, studies combining emerging methods for synergistic performance optimization have diversified technical pathways for large-scale production of high-modulus para-aramid fibers, demonstrating broad prospects for engineering applications. +++Conclusion and Prospect The research on high-modulus para-aramid fibers holds strategic significance and technical urgency. By adjusting parameters such as temperature and tension, efficient and stable heat treatment processes can be achieved, laying a solid engineering foundation for the industrial production of high-modulus para-aramid fibers. However, significant challenges remain. On the one hand, there is a need to develop high-throughput, high-precision continuous spinning equipment to reduce production costs for high-quality para-aramid fibers, and on the other hand, innovative modification methods must be explored. While current para-aramid fiber modification technologies have achieved breakthroughs in principle, practical engineering applications still face multiple contradictions involving process complexity, cost control, and performance balance. Future technological development should integrate molecular-scale design innovations with macro-process compatibility. Key priorities include deepening research on fiber structures, establishing quantifiable modulus design models, and exploring comprehensive solutions that balance performance enhancement, production efficiency, and cost control to support China's self-reliance in advanced composite materials. Moreover, in today's rapidly evolving technological landscape, efforts should expand the multifunctional dimensions of high-modulus para-aramid fibers. This involves developing next-generation fiber materials that combine ultra-high modulus, extreme environment resistance, and intelligent responsiveness, thereby driving applications in emerging fields such as smart sensing and electromagnetic shielding.

Key words: high-performance fiber, high-modulus para-aramid fiber, fiber structure, modulus, heat treatment, fiber modification

中图分类号: 

  • TB321.3

图1

对位芳纶的主要应用领域"

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