纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 247-253.doi: 10.13475/j.fzxb.20250905102

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用于个人热管理的湿响应针织物研究进展

郭俊滔1,2, 包伟1,2(), 刘典波3   

  1. 1 青岛大学 纺织服装学院, 山东 青岛 266071
    2 青岛大学 生态纺织省部共建协同创新中心, 山东 青岛 266071
    3 即发集团有限公司, 山东 青岛 266200
  • 收稿日期:2025-09-12 修回日期:2026-05-13 出版日期:2026-07-15 发布日期:2026-07-29
  • 通讯作者: 包伟(1991—),女,讲师,博士。主要研究方向为绿色功能性纺织品。E-mail:18765919383@163.com
  • 作者简介:郭俊滔(2001—),男,硕士生。主要研究方向为服装舒适性与功能服装。
  • 基金资助:
    山东博士后科学基金项目(SDCX-ZG-202400272);青岛市博士后资助项目(QDBSH20230202004)

Research progress in moisture-responsive knitted fabrics for personal thermal management

GUO Juntao1,2, BAO Wei1,2(), LIU Dianbo3   

  1. 1 College of Textiles & Clothing, Qingdao University, Qingdao, Shandong 266071, China
    2 Collaborative Innovation Center for Eco-textiles of Shandong Province and the Ministry of Education, Qingdao University, Qingdao, Shandong 266071, China
    3 Jifa Group Co., Ltd., Qingdao, Shandong 266200, China
  • Received:2025-09-12 Revised:2026-05-13 Published:2026-07-15 Online:2026-07-29

摘要:

高温极端天气频发使人体热应激风险加剧,能够自主感知湿度变化并调节织物结构的湿响应纺织品需求日益提升。从纤维、纱线和织物结构设计3个层面,综述了湿响应针织物的设计方法、工作原理与性能特点。通过纤维改性或亲/疏水双组分设计实现纤维湿态下弯曲性能发生变化;通过设计纱线螺旋结构、织物不对称线圈可以调控湿态下线圈长度和形状变化;通过对纱线或织物的亲疏水多组分设计,可实现湿态下弯曲变形。然而目前还存在评价体系缺失、材料成本高、工艺复杂、耐久性有待提高及缺乏真实应用环境测试等问题。对于未来的湿响应针织物,可选用生物基绿色纤维,针对不同出汗速率工况定制面料响应特性,进一步研发纺织和整理工艺,以达成低成本、绿色环保、舒适耐用的目标,并最终实现规模化工业生产。

关键词: 湿响应针织物, 个人热管理, 热湿舒适性, 亲/疏水结构设计, 纤维溶胀

Abstract:

Significance With the intensification of global warming and the increasing frequency of extreme high-temperature weather, human body is more susceptible to overheating in hot and humid environments, posing significant risks to health, comfort, and productivity. Moisture-responsive textiles, as an emerging class of smart materials, can autonomously sense humidity changes and adapt their structural configurations to optimize personal thermal and moisture management. Compared with woven fabrics, knitted fabrics feature loop-based structures that are inherently flexible, deformable, and permeable, making them particularly suitable for moisture-triggered actuation. Upon exposure to moisture, fiber swelling or deswelling induces reversible loop deformation, enabling dynamic control over fabric porosity and heat dissipation. Therefore, the development of moisture-responsive knitted fabrics holds substantial promise for advancing next-generation intelligent clothing systems that enhance wearer comfort while reducing energy consumption for cooling. This review systematically examines recent progress in this field, emphasizing design strategies across multiple scales and identifying key challenges and future directions for practical implementation.

Progress Recent advances in moisture-responsive knitted fabrics were summarized across fiber, yarn, and fabric scales. At the fiber level, two main strategies are employed, i.e. modifying natural fibers and engineering bicomponent fibers. Chlorination of wool removes scale layers, enabling reversible crimp extension upon wetting, which enhances fabric porosity and reduces surface temperature compared to the dry state. Bicomponent fibers with asymmetric hydrophilicity-hydrophobicity components, such as triacetate-diacetate fibers and polyester-based asymmetric peanut-structured fibers, bend toward the hydrophobic side under humidity due to differential swelling, thereby enlarging fabric pores and improving permeability. At the yarn level, helical structures are fabricated from twisted cellulosic fibers. Double-helix yarns, obtained by self-balancing twisted fiber assemblies, generate reversible torsional actuation that can roll up fabric sleeves during sweating. Single-helix actuators with twist-stable configurations untwist and lengthen in wet states, increasing loop size and fabric porosity for enhanced evaporative cooling. At the fabric level, asymmetric loop arrangements induce directional contraction upon wetting, reducing skin coverage and improving air permeability. Bioinspired artificial pores are created by patterning hydrophilic hydrogels on hydrophobic knitted substrates, and the hydrogel swells upon moisture absorption, opening predefined slits to regulate evaporative cooling. Covalent crosslinking strategies have been developed to enhance the cyclic stability of such moisture-responsive actuators. These multi-scale strategies collectively optimize moisture management through coordinated fiber deformation, yarn actuation, and fabric architecture design.

Conclusion and Prospect Although moisture-responsive knitted fabrics have demonstrated considerable potential in laboratory settings, several barriers must be addressed to enable their transition to practical applications. Firstly, the absence of standardized evaluation protocols hinders cross-study comparisons and obscures critical performance attributes such as tactile comfort, durability, and wearability under realistic conditions. Future work should prioritize the development of comprehensive testing frameworks that incorporate human subject trials across varying sweat rates, environmental conditions, and activity levels. Secondly, the reliance on specialized materials and multistep fabrication processes such as double-helix yarns limits scalability and increases production costs. Simplifying manufacturing routes while preserving responsiveness is essential for industrial adoption. Finally, long-term durability, particularly resistance to repeated laundering and mechanical stress, remains underexplored. Systematic assessments of washing stability and material fatigue are urgently needed. In the futural research, integrating sustainable bio-based fibers, tailoring fabric responses to different sweating intensities, and advancing scalable finishing technologies will be critical. With continued innovation, moisture-responsive knitted fabrics can evolve into affordable, eco-friendly, and durable smart textiles suitable for mass production and everyday personal thermal management.

Key words: moisture-responsive knitted fabric, personal thermal management, thermal and moisture comfort, hydrophilic/hydrophobic structure design, fiber swelling

中图分类号: 

  • TS181.8

图1

基于纤维结构设计的湿响应针织物"

图2

基于双螺旋纱线结构设计的湿响应针织物"

图3

基于单螺旋纱线结构设计的湿响应针织物"

图4

基于织物结构设计的湿响应针织物"

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