Journal of Textile Research ›› 2015, Vol. 36 ›› Issue (08): 165-172.

Previous Articles    

Inkjet technology and its application in textile printing

  

  • Received:2014-07-07 Revised:2015-05-26 Online:2015-08-15 Published:2015-08-07

Abstract:

Inkjet technology integrates computers, materials and precision machinery technologies and attracts more and more attentions of researchers. The present study firstly summarized the new achievements in basic research of inkjet technology. Trajectory method and numerical simulation were used to analyze fluid jetting process. Additives, temperature and other factors influencing properties of inkjet fluids were concluded. On this basis, the new progress in the area of fabric pretreatment and ink development for textile inkjet printing were mainly described and the main problems and new solutions in the research procession were analyzed at the same time. Finally, it reveals that the basic research of inkjet technology play great significance in the industrial development of inkjet printing.

Key words: inkjet, printing, pretreatment, ink, fabric

参考文献
[1] H. Wijshoff. The dynamics of the piezo inkjet printhead operation[J]. Physics Reports, 2010 , 491(4-5): 77-177.
[2] 李虎.陶瓷行业新宠—喷墨技术[J].今日印刷,2011,11:60-61. LI Hu. New technology in ceramic industry- inkjet technology[J]. Print Today, 2011, 11: 60-61.
[3] CHEN, P., CHEN, H.; QIU, J., et al. Inkjet printing of single-walled carbon nanotube/RuO2 nanowire supercapacitors on cloth fabrics and flexible substrates[J]. Nano Res. 2010, 3(8) :594-603.
[4] 房宽峻.数字喷墨印花技术[M].北京:中国纺织出版社,2008:296-297. FANG Kuanjun. Digital inkjet printing[M]. Beijing: China Txtile&Apparel Press, 2008: 296-297.
[5] 房宽竣等.数字喷墨印花技术及其进展[J].印染,2004(24):48-51. FANG Kuanjun, et al. Development of digital ink jet pri nting[J]. Dyeing and Finishing Journal, 2004(24): 48-51.
[6] G.D. Martin, S.D. Hoath, I.M. Hutchings. Inkjet printing-the physics of manipulating liquid jets and drops[J]. Journal of Physics: Conference Series, 2008, 105(01): 1-14.
[7] ChunYing, LEE,ChaoYuan TSENG. The droplet ejection of an inkjet mechanism controlled by electrorheological fluid[J].Materials&Design, 2002, 08: 727-739.
[8] D. Jang, D. Kim, J. Moon. Influence of fluid physical properties on ink-jet printability[J]. Langmuir : the ACS journal of surfaces and colloids, 2009 , 25(5): 2629-2635.
[9] S.D. Hoath, D.C. Vadillo, O.G. Harlen, C. McIlroy, et al. Inkjet printing of weakly elastic polymer solutions[J]. Journal of Non-Newtonian Fluid Mechanics, 2014 , 205: 1-10.
[10] P. Shin, S. Lee, J. Sung, J.H. Kim. Operability diagram of drop formation and its response to temperature variation in a piezoelectric inkjet nozzle[J]. Microelectronics Reliability, 2011 , 51(2): 437-444.
[11] S.D. Hoath, S. Jung, W.-K. Hsiao, et al. How PEDOT:PSS solutions produce satellite-free inkjets[J]. Organic Electronics, 2012 (13): 3259-3262.
[12] 刘尊东,房宽峻.超细颜料水性分散体系喷射性能探讨[J].染料与染色,2009,46(1):21-24. LIU Zundong, FANG Kuanjun. A study on ink-jetting properties of water-based ultra-f'ine pigment dispersions[J]. Dyestuffs and coloration, 2009, 46(1):21-24.
[13] C. McIlroy, O.G. Harlen, N.F. Morrison. Modelling the jetting of dilute polymer solutions in drop-on-demand inkjet printing[J]. Journal of Non-Newtonian Fluid Mechanics, 2013, 201: 17-28.
[14] S.D. Hoath, O.G. Harlen, I.M. Hutchings. Jetting behavior of polymer solutions in drop-on-demand inkjet printing. Journal of Rheology, 2012, 56(5): 1109-1127.
[15] 刘春格,唐正宁,邵文.基于喷墨墨滴沉积铺展的数值模拟与分析[J]. 中国印刷与包装研究,2011,3,(3):39-42. LIU Chunge, TANG Zhengning, SHAO Wen. Numerical simulation and analysis of deposition spreading of inkjet droplets[J]. China printing and packaging study, 2011, 3(3):39-42.
[16] K. Woo, D. Jang, Y. Kim, J. Moon. Relationship between printability and rheological behavior of ink-jet conductive inks[J]. Ceramics International, 2013, 39(6): 7015-7021.
[17] J.-Y. Park, Y. Hirata, K. Hamada. Relationship between the dye/additive interaction and inkjet ink droplet formation[J]. Dyes and Pigments, 2012, 95(3): 502-511.
[18] 北京大学化学系.化学工程基础[M].北京:北京人民教育出版社,1979:15-18. Department of Chemistry in Peking University. Chemical Engineering Fundamentals[M]. Beijing: People’s education press of Beijing, 1979: 15-18.
[19] 李福星,王昌军.杂质浓度变化对液体表面张力系数影响的实验研究[J].数理医药学杂志,2010,23(1):98-99. LI Fuxing, WANG Changjun. The experiment that impurity density change influences to liquid surface tension coefficient is studied[J]. Journal of mathematical medicine. 2010, 23(1):98-99.
[20] 金雪,甘厚磊等.纺织品数码喷墨印花墨水的研究进展[J].纺织科技进展,2010(1):1-4. JIN Xue, GAN Houlei, et al. The progress of study on textile digital ink-jet printing ink[J]. Progress in Textile Science & Technology, 2010(1): 1-4.
[21] Sanjay Gupta. Inkjet pringing-A revolutionary ecofriendly technique for textile printing[J]. Indian Journal of Fibre&Textile Research, 200, 26: 156-161.
[22] Traci May-Plumlee, JiHyun Bae. Behavior of Prepared-For-Print Fabrics in Digital Printing[J]. Textile and Apparel,Technology and Management, 2005, 4(3): 1-13.
[23] A.W. Kaimouz, R.H. Wardman, R.M. Christie. The inkjet printing process for Lyocell and cotton fibres. Part 1: The significance of pre-treatment chemicals and their relationship with colour strength, absorbed dye fixation and ink penetration[J]. Dyes and Pigments, 2010, 84(1): 79-87.
[24] S. Phattanarudee, K. Chakvattanatham, S. Kiatkamjornwong. Pretreatment of silk fabric surface with amino compounds for ink jet printing[J]. Progress in Organic Coatings, 2009, 64(4): 405-418.
[25] S. Noppakundilograt, P. Buranagul, W. Graisuwan, C. Koopipat, S. Kiatkamjornwong. Modified chitosan pretreatment of polyester fabric for printing by ink jet ink[J]. Carbohydrate Polymers, 2010 (82): 1124-1135.
[26] G. Bu, C. Wang, S. Fu, A. Tian. Water-soluble cationic chitosan derivative to improve pigment-based inkjet printing and antibacterial properties for cellulose substrates[J]. Journal of Applied Polymer Science, 2012, 125(3): 1674-1680.
[27] L. Chen, C. Wang, A. Tian, M. Wu. An attempt of improving polyester inkjet printing performance by surface modification using β-cyclodextrin[J]. Surface and Interface Analysis, 2012, 44(10): 1324-1330.
[28] M. Rekaby, J.I. Abd-El Thalouth, H. Abd El-Salam Sh. Improving reactive ink jet printing via cationization of cellulosic linen fabric[J]. Carbohydr Polym, 2013, 98(2): 1371-1376.
[29] C. Zhang, K. Fang. Surface modification of polyester fabrics for inkjet printing with atmospheric-pressure air/Ar plasma[J]. Surface and Coatings Technology, 2009, 203(14): 2058-2063.
[30] C.M. Zhang, K.J. Fang. Influence of penetration depth of atmospheric pressure plasma processing into multiple layers of polyester fabrics on inkjet printing[J].Surface Engineering, 2011, 27(2):139-144.
[31] K. Fang, C. Zhang. Surface physical-morphological and chemical changes leading to performance enhancement of atmospheric pressure plasma treated polyester fabrics for inkjet printing[J]. Applied Surface Science, 2009, 255(17): 7561-7567.
[32] C.M. Zhang, K.J. Fang. Aging of surface properties of polyester fabrics treated with atmospheric pressure plasma for inkjet printing[J]. Surface Engineering, 2012, 28(4): 306-310.
[33] K. Fang, S. Wang, C. Wang, A. Tian. Inkjet printing effects of pigment inks on silk fabrics surface-modified with O2 plasma[J]. Journal of Applied Polymer Science, 2008(107): 2949-2955.
[34] E.K. Karanikas, N.F. Nikolaidis, E.G. Tsatsaroni. Preparation of novel ink-jet inks with antimicrobial and bacteriostatic properties to be used for digital printing of polyester and polyamide fibers[J]. Progress in Organic Coatings, 2013 (7-8): 1112-1118.
[35] Y. Yang, V. Naarani. Improvement of the lightfastness of reactive inkjet printed cotton[J]. Dyes and Pigments, 2007, 74(1): 154-160.
[36] C.T. Kosolia, E.M. Varka. E.G. Tsatsaroni, Effect of Surfactants as Dispersing Agents on the Properties of Microemulsified Inkjet Inks for Polyester Fibers[J]. Journal of Surfactants and Detergents, 2010, 14(1): 3-7.
[37] J.-Y. Park, Y. Hirata, K. Hamada. Dye aggregation and interaction of dyes with a water-soluble polymer in ink-jet ink for textiles[J]. Coloration Technology, 2012, 128(3): 184-191.
[38] 杨栋梁.织物数码喷墨印花技术的动向[J].印染,2003(29):25-31. YANG Dongliang. Trends in digital inkjet printing of fabric[J]. Dyeing and Finishing, 2003, 29(Z5): 25-31.
[39] S. Leelajariyakul, H. Noguchi, S. Kiatkamjornwong. Surface-modified and micro-encapsulated pigmented inks for ink jet printing on textile fabrics[J]. Progress in Organic Coatings, 2008, 62(2): 145-161.
[40] O.A. Hakeim, A.A. Arafa, M.K. Zahran, L.A.W. Abdou. UV-curable encapsulation of surface—Modified organic pigments for inkjet printing of textiles[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2014, 447: 172-182.
[41] S.Fu, K. Zhang, M. Zhhang, L. Tian. Encapsulated phthalocyanine blue pigment with polymerisable dispersant for inkjet printing inks[J]. Pigment & Resin Technology, 2012, 41(1): 3-8.
[42] M.M. El-Molla. Synthesis of polyurethane acrylate oligomers as aqueous UV-curable binder for inks of ink jet in textile printing and pigment dyeing[J]. Dyes and Pigments, 2007, 74(2): 371-379.
[43] J. Zhang, X. Li, X. Shi, M. Hua, X. Zhou, X. Wang, Synthesis of core-shell acrylic-polyurethane hybrid latex as binder of aqueous pigment inks for digital inkjet printing, Progress in Natural Science: Materials International, 2012, 22(1): 71-78.
[44] C.-H. Xue, M.-M. Shi, H.-Z. Chen, G. Wu, M. Wang. Preparation and application of nanoscale microemulsion as binder for fabric inkjet printing[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2006, 287(1-3): 147-152.
[1] . Wool biological enzyme combined anti-felting finish [J]. Journal of Textile Research, 2018, 39(11): 85-90.
[2] . Influence of interpenetrating polymer networks thermo sensitive gel on liquid moisture trans-fer of cotton fabric [J]. Journal of Textile Research, 2018, 39(11): 79-84.
[3] . Study on stab-resistant performance of shear thickening fluids impregnated ultra-high-molecular-weight polyethylene fabric [J]. Journal of Textile Research, 2018, 39(10): 58-62.
[4] . Preparation and application of antimicrobial mug wort oil-chitosan microcapsules [J]. Journal of Textile Research, 2018, 39(10): 99-103.
[5] . Dyeing properties of difluorenylidene quinoidal thiophene dye on cotton fabric [J]. Journal of Textile Research, 2018, 39(10): 81-85.
[6] . Preparation and property of waterproof breathable nano silicon dioxide microspheres / poly-ether block amide coating fabric [J]. Journal of Textile Research, 2018, 39(10): 104-109.
[7] . Prediction and digital design of high-pile knitted fabric [J]. Journal of Textile Research, 2018, 39(10): 63-67.
[8] . Influence of full-color weave on color mixing law of compound fabric structure with triple-weft [J]. Journal of Textile Research, 2018, 39(10): 44-49.
[9] . Prediction on creep predictions of polyvinyl chloride coated membrane [J]. Journal of Textile Research, 2018, 39(10): 68-73.
[10] .  Coloration characteristics and influence factors of colored spun fabric based on primary-color fibers blending [J]. Journal of Textile Research, 2018, 39(10): 38-43.
[11] . Preparation of flexible all-braiding triboelectric nanogenerator [J]. Journal of Textile Research, 2018, 39(09): 34-38.
[12] . Fabric defect inspection based on modified discriminant complete local binary pattern and lattice segmentation [J]. Journal of Textile Research, 2018, 39(09): 57-64.
[13] . Tensile mechanical properties simulation of viscose woven fabrics based on ABAQUS [J]. Journal of Textile Research, 2018, 39(09): 39-43.
[14] . Selection of plaid fabric pattern based on interactive evaluation [J]. Journal of Textile Research, 2018, 39(09): 50-56.
[15] . Synthesis and application of waterborne polyurethane anti-pilling agent modified by linear polyether-blocked amino silicone [J]. Journal of Textile Research, 2018, 39(09): 84-89.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] WANG Qiang;ZHANG Qin;FAN Xue-rong. Crease-proof finishing of cotton fabrics with phosphino polycarboxylic acids[J]. JOURNAL OF TEXTILE RESEARCH, 2005, 26(5): 68 -71 .
[2] . [J]. JOURNAL OF TEXTILE RESEARCH, 2001, 22(02): 62 .
[3] . [J]. JOURNAL OF TEXTILE RESEARCH, 2004, 25(06): 76 -78 .
[4] . [J]. JOURNAL OF TEXTILE RESEARCH, 2004, 25(06): 81 -84 .
[5] . [J]. JOURNAL OF TEXTILE RESEARCH, 2004, 25(06): 87 -89 .
[6] . [J]. JOURNAL OF TEXTILE RESEARCH, 1981, 2(05): 22 .
[7] . [J]. JOURNAL OF TEXTILE RESEARCH, 1987, 8(04): 23 -28 .
[8] . [J]. JOURNAL OF TEXTILE RESEARCH, 2004, 25(04): 60 -61 .
[9] . [J]. JOURNAL OF TEXTILE RESEARCH, 1990, 11(03): 30 -33 .
[10] . [J]. JOURNAL OF TEXTILE RESEARCH, 1989, 10(07): 15 -18 .