参考文献/References:
[1] 乌婧, 江振林, 吉鹏, 等. 纺织品前瞻性制备技术及应用研究现状与发展趋势[J]. 纺织学报, 2023, 44(1): 1-10.
WU Jing, JIANG Zhenlin, JI Peng, et al. Research status and development trend of perspective preparation technologies and applications for textiles[J]. Journal of Textile Research, 2023, 44(1): 1-10.(in Chinese)
[2] 邵丽丹. 纺织纤维发展和新型纤维应用[J].商品与质量,2021(1): 280.
SHAO Lidan. Fiber development and application of new fiber[J]. Shangpin Yu Zhiliang,2021(1): 280.(in Chinese)
[3] 董雅琪. 杜钟新奥神: 专注差别化氨纶[J]. 纺织科学研究, 2023, 34(7): 32-33.
DONG Yaqi. DU Zhong’s new Olympic spirit: focusing on differentiated spandex[J]. Textile Science Research, 2023, 34(7): 32-33.(in Chinese)
[4] 郭春花. 开启差别化氨纶新篇章,奥神发布温感形状记忆氨纶和消臭氨纶[J]. 纺织服装周刊,2023(14): 24.
GUO Chunhua. Opening a new chapter in differentiated spandex, aoshen releases warm shape memory spandex and deodorizing spandex[J]. Textile and Apparel Weekly, 2023(14): 24.(in Chinese)
[5] 屠庆华. 己二腈行业现状及发展趋势分析[J]. 化学工业, 2020, 38(1): 44-51.
TU Qinghua. Current situation and development trend of adiponitrile industry[J]. Chemical Industry, 2020, 38(1): 44-51.(in Chinese)
[6] 刘海军. 山东尼龙产业链按下快进键[J]. 中国石油和化工产业观察, 2022(6): 23-24.
LIU Haijun. Shandong nylon industry chain press the fast forward button[J]. China Petrochemical Industry Observer, 2022(6): 23-24.(in Chinese)
[7] 钱忠英, 刘滔, 杨环毓, 等. 脂肪酶降解聚丁二酸丁二醇酯研究进展[J]. 环境科学与技术, 2019, 42(8): 69-75.
QIAN Zhongying, LIU Tao, YANG Huanyu, et al. Research progress of enzymatic degradation of poly(butylene succinate)by lipases[J]. Environmental Science and Technology, 2019, 42(8): 69-75.(in Chinese)
[8] 曹宇恒, 王秀华, 王勇, 等. PBS纤维制备过程中白粉的成因分析[J]. 中国科技论文在线精品论文, 2020, 13(3): 249-255.
CAO Yuheng, WANG Xiuhua, WANG Yong, et al. Causal analysis of white powder during PBS fiber preparation[J]. Highlights of Sciencepaper Online, 2020, 13(3): 249-255.(in Chinese)
[9] 吴永世. 莱赛尔纤维的制备方法及由此制备的莱赛尔纤维及工业丝: CN113718350A[P]. 2021-11-30.
[10] 董奎勇, 杨婷婷, 王学利, 等. 生物基聚酯与聚酰胺纤维的研发进展[J]. 纺织学报, 2020, 41(1): 174-183.
DONG Kuiyong, YANG Tingting, WANG Xueli, et al. Research and development progress of bio-based polyester and polyamide fibers[J]. Journal of Textile Research, 2020, 41(1): 174-183.(in Chinese)
[11] 赫爽. 生物基聚呋喃二甲酸二醇酯的合成及纤维的制备与表征[D]. 上海: 东华大学, 2022.
[12] 佚名.化纤设备[J].中国纺织(英文版), 2021(3): 108-116.
Anon.Man-made fiber equipment[J]. China Textile(English), 2021(3): 108-116.(in Chinese)
[13] 孙俊杰. 新凤鸣: “互联网+” 模式下化纤智能工厂建设之路[J]. 中国工业和信息化, 2021(10): 68-74.
SUN Junjie. Xin fengming: the road to the construction of chemical fiber intelligent factory under the mode of "internet plus" [J]. China Industry and Information Technology, 2021(10): 68-74.(in Chinese)
[14] 武筱婷.中国纺织机械协会产业五部主任刘革:绿色、智能促高质发展[J]. 纺织机械,2019(6):36-37.
WU Xiaoting. Director of industry department 5 of China textile machinery association LIU Ge: green and intelligent promote high-quality development[J]. Textile Machinery, 2019(6):36-37.(in Chinese)
[15] 李玉潮, 刘亚盟, 王亚江, 等. 绿色智能制造在化纤行业的应用[J]. 合成纤维, 2020, 49(8): 20-24.
LI Yuchao, LIU Yameng, WANG Yajiang, et al. Application of green intelligent manufacturing in chemical fiber industry[J]. Synthetic Fiber in China, 2020, 49(8): 20-24.(in Chinese)
[16] 管锦文, 徐旻. 棉纺数字化车间及其智能化特点[J]. 棉纺织技术, 2016, 44(10): 86-90.
GUAN Jinwen, XU Min. Cotton spinning digital workshop and its intelligentization characteristics[J]. Cotton Textile Technology, 2016, 44(10): 86-90.(in Chinese)
[17] 管幼平, 李增润, 李杨, 等. 面向智能制造的数控纺纱技术及数字化纱线产品研发[J]. 纺织导报, 2019(3): 42- 47.
GUAN Youping, LI Zengrun, LI Yang, et al. Intelligent manufacturing oriented CNC spinning technology and digital yarn product development[J]. China Textile Leader, 2019(3): 42- 47.(in Chinese)
[18] 万由顺, 卫江, 桂长明, 等. 全流程智能化纺纱技术创新点及应用效果[J]. 棉纺织技术, 2020, 48(1): 28-33.
WAN Youshun, WEI Jiang, GUI Changming, et al. Innovation point and application effect of whole process intelligent spinning technology[J]. Cotton Textile Technology, 2020, 48(1): 28-33.(in Chinese)
[19] 李新荣, 韩鹏辉, 李瑞芬, 等. 数字孪生在纺纱领域应用的关键技术解析[J]. 纺织学报, 2023, 44(10): 214-222.
LI Xinrong, HAN Penghui, LI Ruifen, et al. Review and analysis on key technology of digital twin in spinning field[J]. Journal of Textile Research, 2023, 44(10): 214-222.(in Chinese)
[20] 张巍峰, 吕思晨, 贾慧莹, 等. 长丝织造装备迈向高速智能化[J]. 纺织科学研究, 2021, 32(7): 25-27.
ZHANG Weifeng, LYU Sichen, JIA Huiying, et al. Filament weaving equipment is moving towards high-speed intelligence[J]. Textile Science Research, 2021, 32(7): 25-27.(in Chinese)
[21] 莫荣明, 莫东海, 杨广权. 针织印染企业未来十年碳达峰的战略基础探讨[J]. 针织工业, 2022(4): 30-33.
MO Rongming, MO Donghai, YANG Guangquan. Strengthen the strategic foundation of carbon peak for knitting printing and dyeing enterprises in the next decade[J]. Knitting Industries, 2022(4): 30-33.(in Chinese)
[22] 龚煜雯. 印染智能化背景下的产业升级[J]. 染整技术, 2023, 45(7): 102-104.
GONG Yuwen. Industrial upgrading under the background of intelligent printing and dyeing[J]. Textile Dyeing and Finishing Journal, 2023, 45(7): 102-104.(in Chinese)
[23] 夏小云. 九一高科:在应变中蜕变[J]. 纺织机械, 2023(2): 54.
XIA Xiaoyun. 91 high school: changing in the strain[J]. Textile Machinery, 2023(2): 54.(in Chinese)
[24] 佚名.非织造布机械“十三五” 重点科技攻关项目[J]. 纺织检测与标准, 2016, 2(2): 49-50.
Anon.Key scientific and technological research projects of nonwoven machinery in the "Thirteenth Five-Year Plan" [J]. Textile Testing and Standard, 2016, 2(2): 49-50.(in Chinese)
[25] 佚名.非织造布机械:智能化、自动化展现装备先进性[J]. 纺织机械, 2019(6): 75-76.
Anon.Nonwovens machinery: intelligent and automatic to show the advanced nature of equipment[J]. Textile Machinery, 2019(6): 75-76.(in Chinese)
[26] 王飞. 基于形态特征的几种非织造用纤维的检测及算法研究[D]. 上海: 东华大学, 2019.
[27] 梁莉萍. 苏州琼派瑞特:致力实现家纺缝制行业智能化[J]. 中国纺织, 2021(S3): 60.
LIANG Liping. Suzhou qiongpairuite: committed to realizing the intelligentization of home textile sewing industry[J]. China Textile, 2021(S3): 60.(in Chinese)
[28] 田志萍. “互联网+” 下山东省制造业智能升级研究[D]. 聊城: 聊城大学, 2018.
[29] 谭志乐, 黄一珺. 试论纺织服装检测中现代仪器检测技术的应用[J]. 鞋类工艺与设计, 2022, 2(1): 18-20.
TAN Zhile, HUANG Yijun. Application of modern instrument testing technology in textile and garment testing[J]. Shoes Technology and Design, 2022, 2(1): 18-20.(in Chinese)
[30] 贺俊杰, 张洁, 张朋, 等. 基于多智能体强化学习的纺织面料染色车间动态调度方法[J]. 计算机集成制造系统, 2023, 29(1): 61-74.
HE Junjie, ZHANG Jie, ZHANG Peng, et al. Multi-agent reinforcement learning based textile dyeing workshop dynamic scheduling method[J]. Computer Integrated Manufacturing System, 2023, 29(1): 61-74.(in Chinese)
[31] The Indian Textile Journal Group. BMSvision’s smart textile manufacturing[J]. The Indian Textile Journal, 2019, 129(9): 100.
[32] SADEGHI B, MARFAVI Y, ALIAKBARI R, et al. Recent studies on recycled PET fibers: production and applications: a review[J]. Materials Circular Economy, 2021, 3(1): 4.
[33] Environmental Audit Committee. Fixing fashion: clothing consumption and sustainability[EB/OL].(2019-02-19)[2023-08-01] https://publications.parliament.uk/pa/cm201719/cmselect/cmenvaud/1952/report-summary.html.
[34] 汪军. 纺纱新技术发展现状及趋势[J]. 棉纺织技术, 2022, 50(8): 1- 6.
WANG Jun. Development status and trend of spinning new technology[J]. Cotton Textile Technology, 2022, 50(8): 1- 6.(in Chinese)
[35] 万殊姝, 沈兰萍, 郭晶. 可持续发展绿色纤维发展现状与应用前景[J]. 针织工业, 2021(1): 30-33.
WAN Shushu, SHEN Lanping, GUO Jing. Development status and prospect of sustainable green fiber[J]. Knitting Industries, 2021(1): 30-33.(in Chinese)
[36] 付少举, 张佩华. 智能绿色纺织新型原料的开发现状及趋势[J]. 针织工业, 2020(7): 10-15.
FU Shaoju, ZHANG Peihua. Development situation and trend of new intelligent green textile materials[J]. Knitting Industries, 2020(7): 10-15.(in Chinese)
[37] 杨华明, 齐泽京, 梅顺齐. 全流程数字化智能化纺纱装备的开发与实践[J]. 纺织科学研究, 2021, 32(6): 38- 40.
YANG Huaming, QI Zejing, MEI Shunqi. Development and practice of digital intelligent spinning equipment with whole process[J]. Textile Science Research, 2021, 32(6): 38- 40.(in Chinese)
[38] 夏治刚, 徐傲, 万由顺, 等. 基于碳中和的人-机-料-法-环五位一体纺纱新技术解析[J]. 纺织学报, 2022, 43(1): 58- 66, 88.
XIA Zhigang, XU Ao, WAN Youshun, et al. Analysis of new five-element-integration spinning technology based on human-machine-material-method-environment for carbon neutralization[J]. Journal of Textile Research, 2022, 43(1): 58- 66, 88.(in Chinese)
[39] 郑环达, 郑来久. 超临界流体染整技术研究进展[J]. 纺织学报, 2015, 36(9): 141-148.
ZHENG Huanda, ZHENG Laijiu. Research development of supercritical fluid dyeing and finishing technology[J]. Journal of Textile Research, 2015, 36(9): 141-148.(in Chinese)
[40] SANTOS P, CAMPILHO R, SILVA F. A new concept of full-automated equipment for the manufacture of shirt collars and cuffs[J]. Robotics and Computer-Integrated Manufacturing, 2021(67): 102023.
[41] 徐琪, 赵婉. 考虑两阶段销售的线上时尚服装零售商优化定价和服务决策[J]. 东华大学学报(自然科学版), 2020, 46(5): 810-818.
XU Qi, ZHAO Wan. Optimal pricing and service decision of fashion apparel for online retailers considering two stage sales[J]. Journal of Donghua University(Natural Science), 2020, 46(5): 810-818.
[42] HWANGBO H, KIM H E, LEE S H, et al. Effects of 3D virtual "try-on" on online sales and customers’ purchasing experiences[J]. IEEE Access, 2020, 8: 189479-189489.
[43] 何金枝,梁丽莎,侯科宇,等. 线下鞋类门店产品关注度数据采集系统的设计及实证研究[J]. 皮革科学与工程, 2020, 30(1): 64- 67.
HE Jinzhi, LIANG Lisha, HOU Keyu,et al.System design for attention data recording and its application in offline shoe stores[J]. Leather Science and Engineering,2020, 30(1): 64- 67.(in Chinese)
[44] HONG J K. LSTM-based Sales Forecasting Model[J].KSII Transactions on Internet and Information Systems(TIIS),2021,15(4): 1232-1245.
[45] 韩非, 郎晨宏, 邱夷平. 废旧纺织品资源化循环利用研究进展[J]. 纺织学报, 2022, 43(1): 96-105.
HAN Fei, LANG Chenhong, QIU Yiping. Research progress in resource recycling based on waste textiles[J]. Journal of Textile Research, 2022, 43(1): 96-105.(in Chinese)
[46] 郭传好, 刘镇宇. 低碳视角下集成式纺织服装闭环供应链运作决策[J]. 供应链管理, 2024(1):54-71.
GUO Chuanhao, LIU Zhenyu. Operational decision of integrated textile and apparel closed-loop supply China from low carbon perspective[J]. Supply Chain Management, 2024(1):54-71.(in Chinese)
[47] 赖美龄, 倪紫歆, 于洋. 基于高校对旧衣回收模式优化的分析——以吉林财经大学为例[J]. 今日财富, 2023(13): 164-166.
LAI Meiling, NI Zixin, YU Yang. Analysis on the optimization of the recycling mode of old clothes in colleges and universities—taking Jilin University of Finance and Economics as an example[J]. Fortune Today, 2023(13): 164-166.(in Chinese)
[48] 彭佳佳.基于线圈结构的全成形毛衫三维仿真[D].无锡:江南大学,2022.
[49] 高会焕. 纤维增强材料风机叶片发展概述[J]. 玻璃钢/复合材料, 2009(4): 104-108, 103.
GAO Huihuan. Overview of the development for fiber reinforce composite wind turbine blade[J]. Fiber Reinforced Plastics/Composites, 2009(4): 104-108, 103.(in Chinese)
[50] 蒋高明, 周濛濛, 郑宝平, 等. 绿色低碳针织技术研究进展[J]. 纺织学报, 2022, 43(1): 67-73.
JIANG Gaoming, ZHOU Mengmeng, ZHENG Baoping, et al. Research progress of green and low-carbon knitting technology[J]. Journal of Textile Research, 2022, 43(1): 67-73.(in Chinese)
[51] 赵颖. 航空航天用纺织材料全球关注[J]. 纺织科学研究, 2021, 32(9): 24-25.
ZHAO Ying. Global attention to textile materials for aerospace[J]. Textile Science Research, 2021, 32(9): 24-25.(in Chinese)
[52] 蒋高明, 高哲. 经编技术在航空航天领域的应用与展望[J]. 纺织导报, 2018, 25(201): 88-91.
JIANG Gaoming, GAO Zhe. Application and prospect of warp knitting technology in the aerospace field[J]. China Textile Leader, 2018, 25(201): 88-91.(in Chinese)
[53] 王霁, 宁新, 陈富星. 汽车用纺织品材料的应用与发展[J]. 纺织导报, 2021,28(8): 28-33.
WANG Ji, NING Xin, CHEN Fuxing. Application and development of automotive textiles[J]. China Textile Leader, 2021,28(8): 28-33.(in Chinese)
[54] 赵永霞. 国内外土工用纺织品的发展现状及前景[J]. 纺织导报, 2014(5): 35- 43.
ZHAO Yongxia. Development status-quo and prospect of global geotextiles industry[J]. China Textile Leader, 2014(5): 35- 43.(in Chinese)
[55] 陈亮亮. 碳纤维复合材料在钢筋混凝土加固中的应用[J]. 居业, 2015, 7(24): 71-72.
CHEN Liangliang. Application of carbon fiber composite material in reinforced concrete reinforcement[J]. Create Living, 2015, 7(24): 71-72.(in Chinese)
[56] HIRAI G. The effect of non-woven fabric floating row covers on the emergence, growth, and bulb yield of direct-seeded onions(Allium cepa L.)in a subarctic area[J]. The Horticulture Journal, 2019, 88(1):67-75.
[57] 王霖, 李永香. CINTE20北京时尚控股有限责任公司展台新品牌新业态亮点纷呈[J]. 时尚北京, 2020(10): 60- 62.
[58] 顾娅, 张蕾, 韩悦, 等. 温室大棚用纺织品发展现状及展望[J]. 印染助剂, 2023, 40(7): 1-5.
GU Ya, ZHANG Lei, HAN Yue, et al. Development status and prospect of textile of textiles for greenhouse[J]. Textile Auxiliaries, 2023, 40(7): 1-5.(in Chinese)
[59] 桂福坤, 祝含接, 冯德军. 海洋养殖网衣水动力特性研究进展[J]. 渔业现代化, 2019, 46(5): 9-14, 21.
GUI Fukun, ZHU Hanjie, FENG Dejun. Research progress on hydrodynamic characteristic of marine aquaculture netting[J]. Fishery Modernization, 2019, 46(5): 9-14, 21.(in Chinese)
[60] 吴皓, 刘强, 范为. 养殖网箱网纲和网衣水动力载荷研究[J]. 渔业现代化, 2023, 50(5): 43-51.
WU Hao, LIU Qiang, FAN Wei. Study on hydrodynamic load of ropes and nets[J]. Fishery Modernization, 2023, 50(5): 43-51.(in Chinese)
[61] 杨新月, 马颜雪, 徐宸, 等. “哑铃”形人工气管支架的设计、制备与性能研究[J]. 产业用纺织品, 2023, 41(5): 25-32.
YANG Xinyue, MA Yanxue, XU Chen, et al. Design, preparation and performance of “dumbbell” shaped artificial tracheal stent[J]. Technical Textiles, 2023, 41(5): 25-32.(in Chinese)
[62] 韩颖, 张升友, 漆小华, 等. 纺熔非织造布在卫生用品行业的应用及趋势[J]. 生活用纸, 2023, 23(11): 59- 62.
HAN Ying,ZHANG Shengyou,QI Xiaohua,et al.Application and trend of spunmelt nonwovens in sanitary products industry[J]. Tissue Paper Disposable Products, 2023, 23(11): 59- 62.
[63] 梁鑫花, 丛洪莲, 黄娴, 等. 针织全成形抗菌防护口罩的开发与性能研究[J]. 丝绸, 2021, 58(7): 117-121.
LIANG Xinhua, CONG Honglian, HUANG Xian, et al. Research on development and performance of knitted full-formed anti-bacterial protective mask[J]. Journal of Silk, 2021, 58(7): 117-121.(in Chinese)
[64] 张祥磊, 杨翠钰, 于维晶. 浅谈可穿戴智能纺织品的发展现状[J]. 棉纺织技术, 2020, 48(9): 80-84.
ZHANG Xianglei, YANG Cuiyu, YU Weijing. Discussion on development status of wearable smart textiles[J]. Cotton Textile Technology, 2020, 48(9): 80-84.(in Chinese)
[65] 冯雨果, 刘宇, 周晋. 可穿戴惯性传感器在全膝关节置换术后步态分析中的应用进展[J]. 皮革科学与工程, 2023, 33(6): 52-58.
FENG Yuguo, LIU Yu, ZHOU Jin. A review of gait analysis after total knee arthroplasty using wearable inertial measurement sensors[J]. Leather Science and Engineering, 2023, 33(6): 52-58.(in Chinese)
[66] 石文奇,程凡,王斌,等. 基于层次分析法和感性工学的智能童鞋款式设计[J]. 皮革科学与工程, 2023, 33(1): 75-79.
SHI Wenqi, CHENG Fan, WANG Bin,et al.Style design of intelligent children’s shoes based on AHP and kansei engineering[J]. Leather Science and Engineering, 2023, 33(1): 75-79.(in Chinese)(责任编辑:卢 杰)