科研项目
1. 新疆维吾尔自治区重点研发计划项目,2025B04011-001,基于棉纺的差异化纱线关键技术研究与产品开发,2025.11-2028.10,35万元,在研,主持
2. 2025年度新疆建设兵团科技计划项目,2025AB040,基于纤维间多重互作机制调控的可控原纤化莱赛尔/棉混纺纱开发应用示范,2025.10-2027.12,16万,在研,主持
3. 横向项目,梳理机纤维分梳作用研究,2025.03-2026.11,55万,主持
4. 国家自然科学基金委员会,面上项目,52173032,基于纤维排列的多组分纤维并条混合均匀机制,2022.1-2025.12,58万元,已结题,主持
5. 国家自然科学基金委员会,面上项目,51773034,基于纱条中纤维排列的牵伸过程研究,2018.01~2021.12,61万元,已结题,主持
6. 现代农业技术体系建设项目,CARS-16,麻类体系纤维性能改良,2016.01~2020.12,350万元,已结题,主持
7. 万人计划(领军人才),纺织工程,2015年
8. 国家自然科学基金面上项目,51173023,基于纤维几何特征与成纱性能关系的虚拟纺纱优化,2012.01~2015.12,60万元,已结题,主持
9. 现代农业技术体系建设项目,CARS-19-E25,麻类体系纤维性能改良,2011.01~2015.12,350万元,已结题,主持
10. 国家自然科学基金面上项目,51076026,基于高速旋转气流的纤维/气流耦合动力学模型,2011.01~2013.12,35万元,已结题,主持
11. 上海市曙光学者(跟踪)人才项目,10GG17,基于纤维几何特征的纱线性能统计学模型及分析,2011.01~2012.12,25万元,已结题,主持
12. 上海市领军人才,2009年
13. 上海市科委基础研究重点项目,08JC1400300,柔性纤维在旋转气流场中运动规律的研究,2008.09~2010.11,35万元,已结题,主持
代表论文
[1] Zhou Yuyang, Qian Xixi, Yu Chongwen*, et al. Theoretical expression and Monte Carlo simulation of longitudinal unevenness for batt used in yarn spinning. Textile Research Journal. 2026. Online.
[2] Li Hao ,Qian Lili ,Yu Chongwen*.Numerical simulation and experimental investigation of fiber tension in staple yarn[J].Textile Research Journal,2026,96(15-16):1572-1580.
[3] Li Yong, Zhou Yuyang, Yu Chongwen*, et al. Modeling and experimental analysis of yarn-abrasive contact morphology[J]. Tribology International, 2026, 216111367-111367.
[4] Li Yong, Zhou Yuyang, Yu Chongwen*, et al. Calculation method of contact index between loop yarn and abrasive[J]. Textile Research Journal,2026,96(13-14):1511-1529.
[5] Bi Xuerong, Li Jiawei, Yu Chongwen*, et al. A novel in-situ crosslinking wet spinning method for promoting the strength of CNC/alginate fiber [J]. Polymer, 2025, 325.
[6] Cao Qiaoli, Yu Chongwen*. The effect of flax and PLA fibers distribution in core-spun yarn on the properties of biomass-based composite [J]. Industrial Crops and Products, 2025, 228.
[7] Cao Qiaoli, Zheng Guangming, Yu Chongwen*. Study on the relationship between blending uniformity and yarn performance of blended yarn [J]. Textile Research Journal, 2025, 95(7-8): 893-903.
[8] Li Jiawei, Bi Xuerong, Yu Chongwen*, et al. Nanocellulose-toughened super-stretchable ionic conductive gel fibers for wearable strain sensors [J]. International Journal of Biological Macromolecules, 2025, 299.
[9] Qian Lili, Li Hao, Yu Chongwen*. Roller pressure distribution on twisted strands during drafting [J]. Journal of Industrial Textiles, 2025, 55.
[10] Li Hao, Zheng Guangming, Yu Chongwen*, et al. Computational modeling of the strength of staple yarn based on the random arrangement of fibers [J]. Textile Research Journal, 2024, 94(11-12): 1297-305.
[11] Qian Lili, Zhou Yuyang, Yu Chongwen*. Isometric fiber distribution in the roller drafting zone [J]. Textile Research Journal, 2024, 94(11-12): 1233-44.
[12] Qian Xixi, Zhou Yuyang, Yu Chongwen*, et al. Withdrawal model for fiber motions in the tuft disentanglement [J]. Textile Research Journal, 2024, 94(9-10): 1111-25.
[13] Wu Shifeng, Yu Chongwen*, Zheng Guangming, et al. The model of ring-spun slub yarn based on random fiber arrangement and its application: Part 2 Prediction of morphology parameters for slub yarn and simulation of slub fabric [J]. Textile Research Journal, 2024, 94(9-10): 1069-82.
[14] Bi Xuerong, Guo Jiansheng, Yu Chongwen*, et al. Mechanistic analysis of nanocellulose formation tuned by deep eutectic solvents [J]. Cellulose, 2023, 30(15): 9349-64.
[15] Li Yong, Zheng Guangming, Yu Chongwen*, et al. Calculation of the depth of rope-tightening soft material and analysis of its relationship with the tightening force [J]. Textile Research Journal, 2023, 93(23-24): 5198-210.
[16] Qian Xixi, Zhou Yuyang, Yu Chongwen*, et al. Geometric model of tufts based on the internal fiber configurations [J]. Textile Research Journal, 2023, 93(21-22): 5140-50.
[17] Wu Shifeng, Zhou Hengshu, Yu Chongwen*, et al. The model of ring-spun slub yarn based on random fiber arrangement and its application: Part 1. Study on the relationship between fiber distribution and the length of the transitional segment of slub yarn [J]. Textile Research Journal, 2023, 93(17-18): 4302-14.
[18] Yang Fei, MengChaoran, Yu Chongwen*. Influence of single gummy component removal/retention on the physicochemical properties of fibrilia fiber and the reaction behavior of the other components in the degumming process [J]. Textile Research Journal, 2023, 93(19-20): 4518-34.
[19] Zhou Yuyang, Wang Xubin, Yu Chongwen*, et al. Relationship between the specific work of rupture and the blended ratio for two-component blended yarn[J]. Textile Research Journal, 2023, 93(19-20): 4462-4468.
[20] Li Jiawei, Wang Kun, Yu Chongwen*, et al. Stronger hierarchical filament prepared by orderly assembling of cellulose nanofibrils from wasted jute[J]. Industrial Crops and Products, 2023, 206: 117650.
专著
[1] 郁崇文主编.“十二五”“十四五”普通高等教育本科国家级规划教材 《纺纱学》第四版[M]. 北京:中国纺织出版社,2023
[2] 郁崇文主编.纺纱实验教程 第2版[M].上海:东华大学出版社,2024
[3]《纺纱学》(英文版)[M].上海:东华大学出版社,2022
[4] 郁崇文主编.奇妙的纺织世界[M]. 上海:东华大学出版社,2025
[5] 郁崇文,汪军,王新厚.纺织试验设计及最优化[M]. 上海:东华大学出版社,2019
[6] 郁崇文主编.纺纱工艺学[M].上海:东华大学出版社,2015
[7] 郁崇文主编.纺纱工艺设计与质量控制[M].北京:中国纺织出版社,2011
[8] 张文赓,郁崇文编.梳理的基本理论[M].上海:东华大学出版社,2012
[9] 郁崇文主编.纺纱工艺设计与质量控制[M].北京:中国纺织出版社,2005
[10] 郁崇文主编.纺纱系统与设备[M].北京:中国纺织出版社,2005
[11] 郁崇文等编著.工程参数的最优化设计[M].上海:东华大学出版社,2003
[12] 郁崇文等编著.苎麻纱线生产工艺与质量控制[M].上海:中国纺织大学出版社,1997
专利
[1] 曹巧丽, 蒋嘉豪, 张斌, 郁崇文. 一种苎麻、亚麻短麻和毛纤维的精梳并条联合方法[P]. ZL 2025 1 0208092.0, 授权日:2025.11.11
[2] 李豪,周宇阳,郁崇文.一种由锭子或细纱管传动的低捻度纺纱方法 [P]. ZL 2023 1 0636825.1,授权日:2025.09.19
[3] 钱丽莉,曹巧丽, 郁崇文. 一种用于麻、毛型并条机的自调匀整装置及方法[P], ZL202411900150.8, 授权日:2025.05.30
[4] 周宇阳, 曹巧丽, 郁崇文. 一种用于亚麻、大麻干纺纱的双梳理区梳理工艺[P], ZL202311526972.X, 授权日:2024.01.26
[5] 钱丽莉, 李豪, 郁崇文. 一种有捻纱条的内摩擦力界测试方法[P], ZL 202410498440.8, 授权日:2024.07.12
[6] 李佳蔚, 杨树, 曹巧丽, 郁崇文, 张斌. 一种干纺与湿纺亚麻纱交织的纯亚麻坯布及其制备方法[P] ,ZL 202210859729.9, 授权日:2024.11.22
[7] 杨树, 曹巧丽, 郁崇文, 杨建平, 李召岭. 一种亚麻短纤维干纺给油加湿养生工艺[P], ZL 202210860520.4授权日:2023.08.22
[8] 杨树, 曹巧丽, 毕雪蓉, 李佳蔚, 郁崇文, 李召岭. 一种亚麻选择性氧化与碱煮一浴脱胶方法[P], ZL 202210859735.4, 授权日:2023.10.20
[9] 杨树, 曹巧丽, 郁崇文, 杨建平, 张文波, 张斌. 一种高质量低污染选择性氧化苎麻脱胶的方法[P], ZL 202111481550.6, 授权日:2023.04.04
[10] 杨树, 李佳蔚, 曹巧丽, 杨建平, 张斌, 郁崇文. 一种环保型保温黄麻非织造布包装材料及其制备方法[P], ZL 202011594522.0, 授权日:2022.05.31
[11] 曹巧丽, 李豪, 郁崇文, 等. 计算机模拟条混过程预测纤维在纱条中混合均匀度的方法.[P]ZL 202110557433.7 授权日:2022.11.4
[12] 钱希茜,曹巧丽,郁崇文. 一种兼顾纤维伸直度与纱条均匀度的梳并联生产方法[P]. ZL201910177370.5 授权日:2020.08.14.
[13] 郁崇文,杨建平,钱希茜,王依民,倪建华. 一种含阻燃聚酰胺纤维和聚芳酯纤维的混纺纱的生产方法[P]. ZL201910177178.6, 授权日:2020.08.25.
[14] 王思意,杨建平,郁崇文,张斌. 一种利用铺网—抄造联合法制备环保型麻地膜的装置及其使用方法[P]. ZL201711362107.0, 授权日:2020.05.29.
[15] 杨建平, 王思意, 郁崇文, 张斌. 一种利用铺网—抄造联合法制备环保型麻地膜的方法[P], ZL 201711361976.1, 授权日:2020.01.14
[16] 张圣男, 裴泽光, 杨建平, 张斌, 郁崇文. 一种棉型青贮脱胶苎麻纤维专用刺辊梳理针布[P], ZL 201810030699.4, 授权日:2020.06.30
[17] 曹巧丽, 钱希茜, 郁崇文, 杨建平, 张斌. 一种精梳方法[P], ZL 201910177368.8, 授权日:2020.06.05
[18] 曹巧丽, 钱希茜, 郁崇文, 杨建平, 张斌. 基于纤维排列的精梳模拟的精梳工艺参数确定方法[P], ZL 201910177369.2, 授权日:2020.11.10
[19] 钱希茜, 曹巧丽, 郁崇文, 杨建平, 张斌. 一种带有梳并联工序的精梳纺纱方法, [P], ZL 201910177358.4 授权日:2020.11.10
[20] 张圣男, 裴泽光, 杨建平, 张斌, 郁崇文. 一种棉型青贮脱胶苎麻纤维专用锡林梳理针布[P], ZL 201810030700.3 授权日:2020.08.04
[21] 郁崇文, 杨建平, 钱希茜, 王依民, 倪建华. 一种含阻燃聚酰胺纤维和聚芳酯纤维的混纺纱的生产方法[P], ZL201910177178.6, 授权日:2020.08.25
[22] 郁崇文, 杨建平, 钱希茜, 王依民, 倪建华. 一种含芳纶1313和聚芳酯纤维的混纺纱的生产方法[P], ZL 201910177177.1, 授权日:2020.06.12
[23] 钱希茜, 郁崇文, 杨建平, 王依民, 倪建华. 一种含阻燃聚酯纤维和聚芳酯纤维的混纺纱的生产方法[P], ZL 201910177179.0, 授权日:2020-06-12
[24] 申元颖,郁崇文,杨建平. 一种牵伸过程中纤维变速点位置的测试方法[P]. ZL201910619018.2, 授权日:2019.10.22.
[25] 孙娜,姜展,张弘强,郁崇文,杨建平. 一种基于纤维在纱条中排列的罗拉牵伸模拟方法[P]. ZL201710219490.8, 授权日:2019.03.08.