参考文献/References:
[1] 施楣梧.单兵战场防护用纤维制品的发展现状与展望[J].棉纺织技术,2019,47(3): 76-79.
SHI Meiwu. Development status and prospects of fiber products for individual battlefield protection[J]. Cotton Textile Technology, 2019, 47(3): 76-79.(in Chinese)
[2] PIMENTA C, PEREIRA C C, FANGUEIRO R. Textile pattern design in thermal vision—a study on human body camouflage[J]. Materials, 2021, 14(16):4364.
[3] 赵喜求,张乃艳,李泳升,等.自适应伪装材料在军用服饰产品的设计应用研究[J].包装工程,2021,42(10):19-25.
ZHAO Xiqiu, ZHANG Naiyan, LI Yongsheng, et al. Design and application of adaptive camouflage materials in military clothing products[J]. Packaging Engineering, 2021, 42(10)19-25(in Chinese)
[4] 杨丹,高伟洪,杨树,等.可见光与红外隐身光子晶体材料研究进展[J].材料科学与工程学报,2023,41(2):323-329.
YANG Dan, GAO Weihong, YANG Shu, et al. Research progress of visible and infrared stealth materials based on photonic crystals[J]. Journal of Materials Science and Engineering, 2023,41(2): 323-329.(in Chinese)
[5] 吴昱,金青君,崔志峰,等.仿生自主变色伪装材料的研究进展[J].中国表面工程,2020,33(3):1-17.
WU Yu, JIN Qingjun, CUI Zhifeng, et al. Recent progress of bionic adaption camouflage materials[J]. China Surface Engineering, 2020, 33(3): 1-17.(in Chinese)
[6] ZHANG J, HE S S, LIU L M, et al. The continuous fabrication of mechanochromic fibers[J]. Journal of Materials Chemistry, 2016, 4(11): 2127-2133.
[7] WU T H, YIN T H, HU X C, et al. A thermochromic hydrogel for camouflage and soft display[J]. Advanced Optical Materials, 2020, 8(9):2000031.
[8] 杨晔,夏前军,钱坤,等.单兵伪装服及其伪装方法的研究进展[J].纺织导报,2019(8): 57- 60.
YANG Ye, XIA Qianjun, QIAN Kun, et al. Research progress on single soldier camouflage and its camouflage methods[J]. China Textile Leader, 2019(8): 57- 60.(in Chinese)
[9] 高燕.光致变色相变储能材料的制备、性能与应用研究[D].天津:天津工业大学,2022.
[10] 许毅辉,贾凌杰,贾贤补,等.红外隐身防护材料研究进展[J].包装工程,2023,44(9): 137-146.
XU Yihui, JIA Lingjie, JIA Xianbu, et al. Research progress of infrared stealth protection materials[J]. Packaging Engineering, 2023, 44(9): 137-146.(in Chinese)
[11] 王万安,张飞飞,景卓元,等.红外隐身纺织品的研究现状与进展[J].印染,2022,48(12):74-78.
WANG Wan’an, ZHANG Feifei, JING Zhuoyuan, et al. Research status and progress of infrared stealth textiles[J]. China Dyeing and Finishing, 2022, 48(12):74-78.(in Chinese)
[12] 蒋晓军,王华林,凌军,等.超吸水性控温绿色伪装织物的制备与性能研究[J].兵工学报,2017,38(2):345-350.
JIANG Xiaojun, WANG Hualin, LING Jun, et al. Preparation and performance research of super absorbent and temperature control green camouflage fabric[J]. Acta Armamentarii, 2017, 38(2)345-350.(in Chinese)
[13] CUI Y, GONG H X, WANG Y J, et al. A thermally insulating textile inspired by polar bear hair[J]. Advanced Materials(Deerfield Beach, Fla), 2018, 30(14): e1706807.
[14] LIN L, LI Z Y, MAO H Y, et al. Optically active polyurethane/silica aerogel coated cotton fabrics for thermal protection[J]. Frontiers in Materials, 2021, 8: 681678.
[15] XU R, XIA X M, WANG W, et al. Infrared camouflage fabric prepared by paraffin phase change microcapsule with good thermal insulting properties[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2020, 591: 124519.
[16] PENG L H, JIANG S X, GUO R H, et al. IR protection property and color performance of TiO2/Cu/TiO2 coated polyester fabrics[J]. Journal of Materials Science: Materials in Electronics, 2018, 29(19): 16188-16198.
[17] XU R, WANG W, YU D. Preparation of silver-plated hollow glass microspheres and its application in infrared stealth coating fabrics[J]. Progress in Organic Coatings, 2019, 131: 1-10.
[18] ERGOKTAS M S, BAKAN G, STEINER P, et al. Graphene-enabled adaptive infrared textiles[J]. Nano Letters, 2020, 20(7): 5346-5352.
[19]卜铁伟,吴玉茵,王真.可见光红外一体化伪装隐身涂层织物的制备[J].电镀与涂饰,2020,39(16): 1137-1142.
BU Tiewei, WU Yuyin, WANG Zhen. Preparation of coated fabrics for visible light and infrared integrated camouflage/stealth application[J]. Electroplating and Finishing, 2020, 39(16): 1137-1142.(in Chinese)
[20] ZHU Y N, WANG W J, ZHOU Y W, et al. Colored woven cloth-based textile for passive radiative heating[J]. Laser and Photonics Reviews, 2023, 17(11): 2300293.
[21] 张典典, 李敏, 关玉, 等. 仿植被可见光-近红外反射光谱特征的分散染料印花织物制备及其性能[J]. 纺织学报, 2023, 44(1):142-148.
ZHANG Diandian, LI Min, GUAN Yu, et al. Preparation and performance of disperse dye printed fabrics with characteristics of vegetation-like vis-NIR reflectance spectrum[J]. Journal of Textile Research, 2023, 44(1):142-148.(in Chinese)
[22] HOSSAIN M A. UV-visible-NIR camouflage textiles with natural plant based natural dyes on natural fibre against woodland combat background for defence protection[J]. Scientific Reports, 2023, 13(1): 1-17.
[23] LIU H D, WANG C Y, CHEN G R, et al. Moisture assisted photo-engineered textiles for visible and self-adaptive infrared dual camouflage[J]. Nano Energy, 2022(93): 106855.
[24] 廖雨田,王晨逸,毛铭冉,等.可见红外双波段智能伪装织物[J].工程热物理学报,2023,44(5):1304-1308.
LIAO Yutian, WANG Chenyi, MAO Mingran, et al. Visible and infrared dual-band smart camouflage textiles[J]. Journal of Engineering Thermophysics, 2023, 44(5): 1304-1308.(in Chinese)
[25] BARTKOWIAK G, GRESZTA A. Determination of a comfort class for protective clothing based on ergonomic tests[J]. Fibres and Textiles in Eastern Europe, 2019, 27(5): 100-109.
[26] 蔺凤君.迷彩图形在服装上的变化设计研究[D].杭州:浙江理工大学,2017.
[27] 佟玫, 张雅丽, 唐世君. 边防部队电加热服的研制与功能评价[J]. 服装学报, 2021, 6(5):457-462, 470.
TONG Mei, ZHANG Yali, TANG Shijun. Development and function evaluation of electric heating suit for frontier troops[J]. Journal of Clothing Research, 2021, 6(5):457-462, 470.(in Chinese)
[28] 任龙,王彦宏,罗品辉,等.双区电热智能保暖迷彩夹克的研究与开发项目[Z].嘉兴市云龙服饰科技有限公司,2017.
[29] YIN X, CHEN Q, PAN N. A more comprehensive transport model for multilayer-cloth for perspiration based infrared camouflage[J]. Applied Thermal Engineering, 2014, 68(1/2): 10-19.
[30] 中国人民解放军总装备部.伪装网通用要求 GJB 7927—2012[S].北京:总装备部军标出版发行部,2013.
[31] TEYEME Y, MALENGIER B, TESFAYE T, et al. A review of contemporary techniques for measuring ergonomic wear comfort of protective and sport clothing[J]. Autex Research Journal, 2021, 21(1): 32- 44.
[32] 何佳臻,李俊.防护服工效性能评价方法研究进展[J].纺织学报,2014,35(1):158-164.
HE Jiazhen, LI Jun. Advances in research of ergonomic evaluation for protective clothing[J]. Journal of Textile Research, 2014, 35(1): 158-164.(in Chinese)
[33] Standard practices for qualitatively evaluating the comfort, fit, function, and durability of protective ensembles and ensemble components:ASTM F1154—11[S/OL].[2023-09-14]. https://www.antpedia.com/standard/6230072.html.
[34] 谢丹, 潘姝雯, 戴宏钦, 等. 热生理模型在防护服热舒适性评价中的应用[J]. 毛纺科技, 2023, 51(3):95-102.
XIE Dan, PAN Shuwen, DAI Hongqin, et al. Application of thermophysiological model in thermal comfort evaluation of protective clothing[J]. Wool Textile Journal, 2023, 51(3):95-102.(in Chinese)
(责任编辑:卢 杰)