纺织学报 ›› 2026, Vol. 47 ›› Issue (03): 255-262.doi: 10.13475/j.fzxb.20250804502
JIANG Gaoming(
), PAN Junyuan, XI Lifeng, LI Bingxian
摘要:
为满足人口健康管理对智能化、个性化与功能化的迫切需求,针织技术凭借内在的结构可编程性与多功能集成能力,成为推动健康纺织品范式演进的关键使能技术。围绕针织技术在运动健康、智能穿戴与生物医用三大领域的前沿研究进展,重点探讨了以特里科经编、贾卡提花与纬编无缝成形为代表的先进针织技术;深入分析了平型纬编技术在柔性传感单元一体化集成与自供能系统构建中的核心作用,并揭示了深度学习与针织感知系统协同在实现从物理信号采集到行为意图识别跨越中的机制与潜力;系统阐述了针织结构在体外膜肺氧合(ECMO)系统、疝气修补网等关键医疗组件中的创新应用,论证了其通过多孔结构、力学匹配与定制化编织在实现组织修复、气体交换/物质传输及生命支持等功能中的不可替代性。进一步指出,跨尺度结构设计、数字化智能制造与多学科交叉融合正推动健康纺织品向“感知-响应-干预”一体化方向发展。
中图分类号:
| [1] | United Nations Department of Economic and Social Affairs. World population prospects 2022: summary of results[R]. New York: United Nations, 2022. |
| [2] |
YIN B W, WANG L H, LIU J X, et al. Integrated Janus meta-fabric via an interlock stitch knitted structure for marginal physiological signal monitoring[J]. ACS Applied Electronic Materials, 2025, 7(3): 1120-1129.
doi: 10.1021/acsaelm.4c01969 |
| [3] |
LIN J H, HE C H, LEE M C, et al. Sports protective elastic knits: structure design and property evaluations[J]. The Journal of the Textile Institute, 2020, 111(3): 424-433.
doi: 10.1080/00405000.2019.1644122 |
| [4] |
ATALAY A, ATALAY O, HUSAIN M D, et al. Piezofilm yarn sensor-integrated knitted fabric for healthcare applications[J]. Journal of Industrial Textiles, 2017, 47(4): 505-521.
doi: 10.1177/1528083716652834 |
| [5] | 新机发布|卡尔迈耶HKS 2-SE PLUS机型:您步入弹力面料生产领域的优质选择[EB/OL].[2022-03-10]. https://www.karlmayer.com/zh/%E4%BA%A7%E5%93%81/%E7%BB%8F%E7%BC%96%E6%9C%BA/%E7%89%B9%E9%87%8C%E7%A7%91%E7%BB%8F%E7%BC%96%E6%9C%BA/hks-2-se-plus/. |
| New launch|Karl Mayer HKS 2-SE PLUS: an excellent choice for your foray into stretch fabric produ-ction[EB/OL]. [2022-03-10]. https://www.karlmayer.com/zh/%E4%BA%A7%E5%93%81/%E7%BB%8F%E7%BC%96%E6%9C%BA/%E7%89%B9%E9%87%8C%E7%A7%91%E7%BB%8F%E7%BC%96%E6%9C%BA/hks-2-se-plus/. | |
| [6] | KARL MAYER. HKS 2-SE TWO:新一代两梳弹力面料经编机[EB/OL]. [2025-04-05]. https://www.karlmayer.com/zh/%E4%BA%A7%E5%93%81/%E7%BB%8F%E7%BC%96%E6%9C%BA/%E7%89%B9%E9%87%8C%E7%A7%91%E7%BB%8F%E7%BC%96%E6%9C%BA/hks-2-se-two/. |
| KARL MAYER. HKS 2-SE TWO:A new-generation two-bar warp knitting machine for stretch fabrics[EB/OL]. [2025-04-05]. https://www.karlmayer.com/zh/%E4%BA%A7%E5%93%81/%E7%BB%8F%E7%BC%96%E6%9C%BA/%E7%89%B9%E9%87%8C%E7%A7%91%E7%BB%8F%E7%BC%96%E6%9C%BA/hks-2-se-two/. | |
| [7] | Karl Mayer. RJ 4/1 EL: 高性能拉舍尔簇尼克®经编机[EB/OL]. [2025-04-30]. https://www.karlmayer.com/zh/%E4%BA%A7%E5%93%81/%E7%BB%8F%E7%BC%96%E6%9C%BA/%E6%8B%89%E8%88%8D%E5%B0%94%E7%BB%8F%E7%BC%96%E6%9C%BA/rj-41-el/. |
| Karl Mayer. RJ 4/1 EL: High-performance Raschel Tunic® warp knitting machine[EB/OL]. [2025-04-30]. https://www.karlmayer.com/zh/%E4%BA%A7%E5%93%81/%E7%BB%8F%E7%BC%96%E6%9C%BA/%E6%8B%89%E8%88%8D%E5%B0%94%E7%BB%8F%E7%BC%96%E6%9C%BA/rj-41-el/. | |
| [8] | 凌子超. 再生涤纶经编鞋用间隔织物设计与开发[J]. 针织工业, 2025(6): 12-15. |
| LING Zichao. Design and development of recycled polyester warp knitted spacer fabric for shoe uppers[J]. Knitting Industries, 2025(6): 12-15. | |
| [9] | 聂美婷, 张琦, 张燕婷, 等. 经编贾卡鞋面材料的孔隙特征与透气透湿性研究[J]. 毛纺科技, 2024, 52(6): 10-15. |
| NIE Meiting, ZHANG Qi, ZHANG Yanting, et al. Study on pore characteristics and air permeability & moisture penetrability of warp-knitted jacquard shoe upper materials[J]. Wool Textile Journal, 2024, 52(6): 10-15. | |
| [10] | 孙园园. 经编三贾卡鞋材的提花结构研究与产品开发[D]. 无锡: 江南大学, 2022:63-65. |
| SUN Yuanyuan. Research on jacquard structure and product development of warp-knitted sanjiaka shoes material[D]. Wuxi: Jiangnan University, 2022:63-65. | |
| [11] |
ZUO L J, ZHANG Q, TU J N, et al. Study on the moisture permeability of warp-knitted Jacquard shoe upper material based on CFD[J]. Scientific Reports, 2025, 15: 12243.
doi: 10.1038/s41598-025-88619-8 |
| [12] |
DONG Z J, DING Y Q, HAN L Y, et al. Heat and sweat regulating performance of zoning structure weft-knitted sportswear[J]. Textile Research Journal, 2025, 95(5/6): 496-512.
doi: 10.1177/00405175241268521 |
| [13] |
SU T, YU X L, CONG H L. Design and development of ultra-high molecular weight polyethylene seamless sportswear[J]. The Journal of the Textile Institute, 2025, 116(7): 1188-1199.
doi: 10.1080/00405000.2024.2370601 |
| [14] | 王予涛, 丛洪莲, 顾洪阳. 纬编成形护膝工艺原理与高弹护膝产品开发[J]. 针织工业, 2022(4): 5-8. |
| WANG Yutao, CONG Honglian, GU Hongyang. Technological principle of weft knitted integral kneepad and its high elastic products[J]. Knitting Industries, 2022(4): 5-8. | |
| [15] |
LIANG X H, CONG H L, DONG Z J, et al. Size prediction and electrical performance of knitted strain sensors[J]. Polymers, 2022, 14(12): 2354.
doi: 10.3390/polym14122354 |
| [16] | DONG Z J, HOU R H, JIANG H, et al. Hybrid thermoelectric-triboelectric smart knitted fabric for real-time monitoring of vascular crisis and postoperative recovery of severed fingers[J]. Materials & Design, 2025, 251: 113669. |
| [17] |
JIANG Y, AN J, LIANG F, et al. Knitted self-powered sensing textiles for machine learning-assisted sitting posture monitoring and correction[J]. Nano Research, 2022, 15(9): 8389-8397.
doi: 10.1007/s12274-022-4409-0 |
| [18] | SHAO Q Y, ZHANG Y L, LIU J, et al. Investigation of flexible graphene hybrid knitted sensor for joint motion recognition based on convolutional neural network fusion long short-term memory network[J]. Journal of Industrial Textiles, 2024, 54: 15280837231225827. |
| [19] | STOLL. ADF家族[EB/OL], [2025-04-05]. https://www.stoll.com/zh/%E4%BA%A7%E5%93%81%E8%A7%A3%E5%86%B3%E6%96%B9%E6%A1%88/%E6%9C%BA%E5%99%A8/adf-family/. |
| STOLL. ADF Series[EB/OL]. [2025-04-05]. https://www.stoll.com/zh/%E4%BA%A7%E5%93%81%E8%A7%A3%E5%86%B3%E6%96%B9%E6%A1%88/%E6%9C%BA%E5%99%A8/adf-family/. | |
| [20] | 席立锋, 蒋高明, 马丕波, 等. 体外膜肺氧合经编膜织物自适应张力的低损伤制备[J]. 纺织学报, 2024, 45(7): 1-9. |
|
XI Lifeng, JIANG Gaoming, MA Pibo, et al. Low-damage preparation of extracorporeal membrane oxygenation warp knit membrane fabrics with adaptive tension[J]. Journal of Textile Research, 2024, 45(7): 1-9.
doi: 10.1177/004051757504500101 |
|
| [21] | 席立锋, 马丕波, 贾伟, 等. 国内体外膜肺氧合技术研究进展[J]. 纺织学报, 2024, 45(8): 234-240. |
| XI Lifeng, MA Pibo, JIA Wei, et al. Research progress of extracorporeal membrane oxygenation technology in China[J]. Journal of Textile Research, 2024, 45(8): 234-240. | |
| [22] | 杨曈, 马丕波. 工艺参数对聚丙烯单丝经编疝气修补网片三维成型性能的影响[J]. 产业用纺织品, 2018, 36(9): 9-14. |
| YANG Tong, MA Pibo. Influence of process parameters on the 3D shape performance of warp-knitted polypropylene filament hernia repair mesh[J]. Technical Textiles, 2018, 36(9): 9-14. | |
| [23] | 赵帅权, 李倩雯, 缪旭红, 等. 医用经编疝修补网片的设计与生产[J]. 产业用纺织品, 2014, 32(7): 33-38. |
| ZHAO Shuaiquan, LI Qianwen, MIAO Xuhong, et al. Design and development of warp knitting hernia mesh[J]. Technical Textiles, 2014, 32(7): 33-38. | |
| [24] | 姜慧霞, 郭兴峰. 外科疝修补网及其材料[J]. 产业用纺织品, 2008, 26(4): 36-38, 48. |
| JIANG Huixia, GUO Xingfeng. Hernia repairing mesh and its materials[J]. Technical Textiles, 2008, 26(4): 36-38, 48. | |
| [25] | 李娟, 曹晶婷, 刘燕华, 等. 人造血管制备和性能研究的进展[J]. 产业用纺织品, 2024, 42(9): 1-8. |
| LI Juan, CAO Jingting, LIU Yanhua, et al. Progress in the preparation and performance of artificial blood vessels[J]. Technical Textiles, 2024, 42(9): 1-8. | |
| [26] | 马丕波, 梅德轩. 生物医用纺织材料研究应用与进展[J]. 服装学报, 2022, 7(3): 189-195. |
| MA Pibo, MEI Dexuan. Research application and progress of biomedical textile materials[J]. Journal of Clothing Research, 2022, 7(3): 189-195. |
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