Skip to main content
Erschienen in: Cellulose 2/2018

30.12.2017 | Original Paper

Reactive dyeing of ramie yarn washed by liquid ammonia

verfasst von: Yingjie Cai, Siwei Su, Rahul Navik, Kankan Lou, Xiongyi Peng, Qiang Wang, Ping Zhang, Lina Lin

Erschienen in: Cellulose | Ausgabe 2/2018

Einloggen

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

The washing efficiency of water, nonionic soap solution, reflux solution, pure liquid ammonia (99.99%), and solvated liquid ammonia was studied on dyed ramie yarns. The ramie yarn samples were dyed with a 2% on weight of fiber (o.w.f) shade with five types of reactive dye by the classical exhaustion method. The washing performances of these solvents were quantified by the dye removal rate, the color uniformity, and the color fastness properties (washing, rubbing, and lightness). Furthermore, the influence of these wash methods on the physical properties of the final yarn samples including shrinkage, tensile strength, and elongation was schematically examined. The results of these measurements revealed that the dye removal rates during the washing in pure liquid ammonia and solvated liquid ammonia were lower than the yarn washed in water, soap solutions, or reflux solutions. The color uniformity (expressed as the standard deviation of K/S values for all dyed ramie yarns) was within the acceptable limits with the satisfactory color fastness levels. The shrinkage values of yarns that were washed in the pure liquid ammonia and the solvated liquid ammonia were both similar (9.0%) and considerably higher than the samples washed in water (1.8%), soap solution (2.4%), or reflux solution (2.6%). The tensile strength and the elongation of the resultant yarns improved significantly when the samples washed in pure liquid ammonia. The yarns that were washed in the solvated liquid ammonia solutions had decreased tensile strength and elongation. The cause of the decrease was determined by the XRD measurements, which confirmed that the crystallinity, and the orientation of these fibers decreased dramatically after being washed in the ammonia system solutions. The samples that were washed in the liquid ammonia had a smoother surface morphology than the other washing processes.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Literatur
Zurück zum Zitat Ahmed NSE, El-Shishtawy RM (2010) The use of new technologies in coloration of textile fibers. J Mater Sci 45(5):1143–1153CrossRef Ahmed NSE, El-Shishtawy RM (2010) The use of new technologies in coloration of textile fibers. J Mater Sci 45(5):1143–1153CrossRef
Zurück zum Zitat Amin MN, Blackburn RS (2015) Sustainable chemistry method to improve the wash-off process of reactive dyes on cotton. ACS Sustain Chem Eng 3(4):725–732CrossRef Amin MN, Blackburn RS (2015) Sustainable chemistry method to improve the wash-off process of reactive dyes on cotton. ACS Sustain Chem Eng 3(4):725–732CrossRef
Zurück zum Zitat Beiokurova OA, Kirillova MN, Shcheglova TL, Mel’nikov BN (1996) Use of liquid ammonia to increase the quality of textiles made of hydrated cellulose fibres. Fibre Chem 28(4):259–263CrossRef Beiokurova OA, Kirillova MN, Shcheglova TL, Mel’nikov BN (1996) Use of liquid ammonia to increase the quality of textiles made of hydrated cellulose fibres. Fibre Chem 28(4):259–263CrossRef
Zurück zum Zitat Bellesia G, Shishir PSC, Paul L, Bruce ED, Gnanakaran S (2011) Probing the early events associated with liquid ammonia pretreatment of native crystalline cellulose. J Phys Chem B 115(32):9782–9788CrossRef Bellesia G, Shishir PSC, Paul L, Bruce ED, Gnanakaran S (2011) Probing the early events associated with liquid ammonia pretreatment of native crystalline cellulose. J Phys Chem B 115(32):9782–9788CrossRef
Zurück zum Zitat Burkinshaw SM, Kabambe O (2009) Attempts to reduce water and chemical usage in the removal of reactive dyes: part 1bis (aminochlorotriazine) dyes. Dyes Pigm 83(3):363–374CrossRef Burkinshaw SM, Kabambe O (2009) Attempts to reduce water and chemical usage in the removal of reactive dyes: part 1bis (aminochlorotriazine) dyes. Dyes Pigm 83(3):363–374CrossRef
Zurück zum Zitat Burkinshaw SM, Katsarelias D (1997) The wash-off of reactive dyes on cellulosic fibres. Part 4: the use of different alkalis with monochlorotriazinyl dyes on cotton. Dyes Pigments 35(3):249–259CrossRef Burkinshaw SM, Katsarelias D (1997) The wash-off of reactive dyes on cellulosic fibres. Part 4: the use of different alkalis with monochlorotriazinyl dyes on cotton. Dyes Pigments 35(3):249–259CrossRef
Zurück zum Zitat Burkinshaw SM, Salihu G (2013) The wash-off of dyeings using interstitial water. Part 4: disperse and reactive dyes on polyester/cotton fabric. Dyes Pigments 99(3):548–560CrossRef Burkinshaw SM, Salihu G (2013) The wash-off of dyeings using interstitial water. Part 4: disperse and reactive dyes on polyester/cotton fabric. Dyes Pigments 99(3):548–560CrossRef
Zurück zum Zitat Cai Y, Huang Y, Liu F, He L, Lin L, Zeng Q (2014) Liquid ammonia dyeing of cationic ramie yarn with triazinyl reactive dyes. Cellulose 21(5):3841–3849CrossRef Cai Y, Huang Y, Liu F, He L, Lin L, Zeng Q (2014) Liquid ammonia dyeing of cationic ramie yarn with triazinyl reactive dyes. Cellulose 21(5):3841–3849CrossRef
Zurück zum Zitat Chakraborty JN (2010) Dyeing with reactive dye. Fundamentals and practices in coloration of textiles. Woodhead Publishing India, New Delhi, pp 57–75CrossRef Chakraborty JN (2010) Dyeing with reactive dye. Fundamentals and practices in coloration of textiles. Woodhead Publishing India, New Delhi, pp 57–75CrossRef
Zurück zum Zitat Dornyi B, Csiszár E, Somlai C, Sajó I (2006) Effect of liquid ammonia on the fine structure of linen fabrics. Text Res J 76(8):629–636CrossRef Dornyi B, Csiszár E, Somlai C, Sajó I (2006) Effect of liquid ammonia on the fine structure of linen fabrics. Text Res J 76(8):629–636CrossRef
Zurück zum Zitat French AD (2014) Idealized powder diffraction patterns for cellulose polymorphs. Cellulose 21(2):885–896CrossRef French AD (2014) Idealized powder diffraction patterns for cellulose polymorphs. Cellulose 21(2):885–896CrossRef
Zurück zum Zitat French AD, Cintrón MS (2013) Cellulose polymorphy, crystallite size, and the segal crystallinity index. Cellulose 20(1):583–588CrossRef French AD, Cintrón MS (2013) Cellulose polymorphy, crystallite size, and the segal crystallinity index. Cellulose 20(1):583–588CrossRef
Zurück zum Zitat Fujisawa S, Togawa E, Hayashi N (2016) Orientation control of cellulose nanofibrils in all-cellulose composites and mechanical properties of the films. J Wood Sci 62(2):174–180CrossRef Fujisawa S, Togawa E, Hayashi N (2016) Orientation control of cellulose nanofibrils in all-cellulose composites and mechanical properties of the films. J Wood Sci 62(2):174–180CrossRef
Zurück zum Zitat Gindl W, Keckes J (2006) Drawing of self-reinforced cellulose films. J Appl Polym Sci 103(4):2703–2708CrossRef Gindl W, Keckes J (2006) Drawing of self-reinforced cellulose films. J Appl Polym Sci 103(4):2703–2708CrossRef
Zurück zum Zitat Grant LM, Ducker WA (1997) Effect of substrate hydrophobicity on surface-aggregate geometry: zwitterionic and nonionic surfactants. J Phys Chem B 101(27):5337–5345CrossRef Grant LM, Ducker WA (1997) Effect of substrate hydrophobicity on surface-aggregate geometry: zwitterionic and nonionic surfactants. J Phys Chem B 101(27):5337–5345CrossRef
Zurück zum Zitat Hall M, Bansal P, Lee JH, Realff MJ, Bommarius AS (2010) Cellulose crystallinity—a key predictor of the enzymatic hydrolysis rate. FEBS J 277(6):1571–1582CrossRef Hall M, Bansal P, Lee JH, Realff MJ, Bommarius AS (2010) Cellulose crystallinity—a key predictor of the enzymatic hydrolysis rate. FEBS J 277(6):1571–1582CrossRef
Zurück zum Zitat Higgins L, Anand S, Holmes D, Hall M, Underly K (2003) Effects of various home laundering practices on the dimensional stability wrinkling, and other properties of plain woven cotton fabrics. Part I: experimental overview, reproducibility of results, and effect of detergent. Text Res J 73(4):357–366CrossRef Higgins L, Anand S, Holmes D, Hall M, Underly K (2003) Effects of various home laundering practices on the dimensional stability wrinkling, and other properties of plain woven cotton fabrics. Part I: experimental overview, reproducibility of results, and effect of detergent. Text Res J 73(4):357–366CrossRef
Zurück zum Zitat Klenkova NI (1967) Interaction of cellulose with arnines as a promising method for activating cellulose and increasing its reactivity in formation of various derivatives. J Appl Chem USSR 40:2113–2126 Klenkova NI (1967) Interaction of cellulose with arnines as a promising method for activating cellulose and increasing its reactivity in formation of various derivatives. J Appl Chem USSR 40:2113–2126
Zurück zum Zitat Kozlowski R, Wladyka-Przybylak M (2004) Uses of natural fiber reinforced plastics. In: Wallenberger FT, Weston N (eds) Natural fibers, plastics and composites. Kluwer Academic, Dordrecht, pp 249–274CrossRef Kozlowski R, Wladyka-Przybylak M (2004) Uses of natural fiber reinforced plastics. In: Wallenberger FT, Weston N (eds) Natural fibers, plastics and composites. Kluwer Academic, Dordrecht, pp 249–274CrossRef
Zurück zum Zitat Lewis DM (2011) The chemistry of reactive dyes and their application processes. In: Clark M (ed) Handbook of textile and industrial dyeing, vol 1. Woodhead Publishing, Cambridge, pp 303–364CrossRef Lewis DM (2011) The chemistry of reactive dyes and their application processes. In: Clark M (ed) Handbook of textile and industrial dyeing, vol 1. Woodhead Publishing, Cambridge, pp 303–364CrossRef
Zurück zum Zitat Lin L, Rahman M, Wen S, Navik R, Zhang P, Cai Y (2016) Improvement of colour fastness for deep blue shade of cotton fabric. In: Proceedings of the 2016 4th International Conference on Machinery, Materials and Computing Technology, Atlantis Press Lin L, Rahman M, Wen S, Navik R, Zhang P, Cai Y (2016) Improvement of colour fastness for deep blue shade of cotton fabric. In: Proceedings of the 2016 4th International Conference on Machinery, Materials and Computing Technology, Atlantis Press
Zurück zum Zitat Liu X, Chen J, Sun P, Liu Z, Liu Z (2010) Grafting modification of ramie fibers with poly(2,2,2-trifluoroethyl methacrylate) via reversible addition–fragmentation chain transfer (RAFT) polymerization in supercritical carbon dioxide. React Funct Polym 70(12):972–979CrossRef Liu X, Chen J, Sun P, Liu Z, Liu Z (2010) Grafting modification of ramie fibers with poly(2,2,2-trifluoroethyl methacrylate) via reversible addition–fragmentation chain transfer (RAFT) polymerization in supercritical carbon dioxide. React Funct Polym 70(12):972–979CrossRef
Zurück zum Zitat Mayerhöfer TG, Mutschke H, Popp J (2016) Employing theories far beyond their limits—the case of the (Boguer-) Beer–Lambert Law. ChemPhysChem 17(13):1948–1955CrossRef Mayerhöfer TG, Mutschke H, Popp J (2016) Employing theories far beyond their limits—the case of the (Boguer-) Beer–Lambert Law. ChemPhysChem 17(13):1948–1955CrossRef
Zurück zum Zitat Min SH, Dong SJ (2012) The effects of yarn number and liquid ammonia treatment on the physical properties of hemp woven fabrics. Fibers Polym 13(10):1335–1340CrossRef Min SH, Dong SJ (2012) The effects of yarn number and liquid ammonia treatment on the physical properties of hemp woven fabrics. Fibers Polym 13(10):1335–1340CrossRef
Zurück zum Zitat Mittal A, Katahira R, Himmel ME, Johnson DK (2011) Effects of alkaline or liquid-ammonia treatment on crystalline cellulose: changes in crystalline structure and effects on enzymatic digestibility. Biotechnol Biofuels 4(1):41–56CrossRef Mittal A, Katahira R, Himmel ME, Johnson DK (2011) Effects of alkaline or liquid-ammonia treatment on crystalline cellulose: changes in crystalline structure and effects on enzymatic digestibility. Biotechnol Biofuels 4(1):41–56CrossRef
Zurück zum Zitat Nam S, Netravali AN (2006) Green composites I. Physical properties of ramie fibers for environment-friendly green composites. Fibers Polym 7(4):372–379CrossRef Nam S, Netravali AN (2006) Green composites I. Physical properties of ramie fibers for environment-friendly green composites. Fibers Polym 7(4):372–379CrossRef
Zurück zum Zitat Nam S, French AD, Condon BD, Concha M (2016) Segal crystallinity index revisited by the simulation of X-ray diffraction patterns of cotton cellulose Iβ and cellulose II. Carbohydr polym 135:1–9CrossRef Nam S, French AD, Condon BD, Concha M (2016) Segal crystallinity index revisited by the simulation of X-ray diffraction patterns of cotton cellulose Iβ and cellulose II. Carbohydr polym 135:1–9CrossRef
Zurück zum Zitat Nelson ML, Hassenboehler JCB, Andrews JFR, Markezich JAR (1976) Mechanical properties of cotton yarns mercerized in liquid ammonia and sodium hydroxide. Text Res J 46(12):872–879CrossRef Nelson ML, Hassenboehler JCB, Andrews JFR, Markezich JAR (1976) Mechanical properties of cotton yarns mercerized in liquid ammonia and sodium hydroxide. Text Res J 46(12):872–879CrossRef
Zurück zum Zitat Nicholls D (1979) Inorganic chemistry in liquid ammonia. Elsevier Science & Technology, Amsterdam Nicholls D (1979) Inorganic chemistry in liquid ammonia. Elsevier Science & Technology, Amsterdam
Zurück zum Zitat Pegiadou-Koemtzopoulou S, Eleftheriadis I, Kehayoglou A (1998) Surface tension study of the interaction between two nonionic surfactants and two direct dyes. J Surfactants Deterg 1(1):59–64CrossRef Pegiadou-Koemtzopoulou S, Eleftheriadis I, Kehayoglou A (1998) Surface tension study of the interaction between two nonionic surfactants and two direct dyes. J Surfactants Deterg 1(1):59–64CrossRef
Zurück zum Zitat Peng X, Cai Y, Zeng Q, Hu Q, Yi C, Chen Y (2014) Adsorption behavior of reactive orange 5 and reactive red 2 on ramie fabric and their quantum chemical calculations. Fibers Polym 15(10):2146–2153CrossRef Peng X, Cai Y, Zeng Q, Hu Q, Yi C, Chen Y (2014) Adsorption behavior of reactive orange 5 and reactive red 2 on ramie fabric and their quantum chemical calculations. Fibers Polym 15(10):2146–2153CrossRef
Zurück zum Zitat Peng X, Lou K, Zhang Y, Ming L, Wen S, Cai Y (2017) Ammonified modification and dyeing of ramie fabric in liquid ammonia. Dyes Pigm 138:154–161CrossRef Peng X, Lou K, Zhang Y, Ming L, Wen S, Cai Y (2017) Ammonified modification and dyeing of ramie fabric in liquid ammonia. Dyes Pigm 138:154–161CrossRef
Zurück zum Zitat Rousselle MA, Nelson ML, Hassenboehler JCB, Legendre JDC (1976) Liquid ammonia and caustic mercerization of cotton fibers: changes in fine structure and mechanical properties. Text Res J 46(4):304–310CrossRef Rousselle MA, Nelson ML, Hassenboehler JCB, Legendre JDC (1976) Liquid ammonia and caustic mercerization of cotton fibers: changes in fine structure and mechanical properties. Text Res J 46(4):304–310CrossRef
Zurück zum Zitat Sehaqui H, Ezekiel Mushi N, Morimune S, Salajkova M, Nishino T, Berglund LA (2012) Cellulose nanofiber orientation in nanopaper and nanocomposites by cold drawing. ACS Appl Mater Interfaces 4(2):1043–1049CrossRef Sehaqui H, Ezekiel Mushi N, Morimune S, Salajkova M, Nishino T, Berglund LA (2012) Cellulose nanofiber orientation in nanopaper and nanocomposites by cold drawing. ACS Appl Mater Interfaces 4(2):1043–1049CrossRef
Zurück zum Zitat Shaikh IA, Munir S, Suhail E, Jamil N, Qadir A (2015) Removal of hydrolyzed reactive dyes from cotton fabric using spent H2O2: a green approach Asian. J Chem 27(6):2129–2132 Shaikh IA, Munir S, Suhail E, Jamil N, Qadir A (2015) Removal of hydrolyzed reactive dyes from cotton fabric using spent H2O2: a green approach Asian. J Chem 27(6):2129–2132
Zurück zum Zitat Stevenson DM, Duff DG, Kirkwood DJ (1981) The behaviour of dyes in aqueous solutions part II- anionic dye-nonionic surfactant interactions. J Soc Dyers Colour 97(1):13–17CrossRef Stevenson DM, Duff DG, Kirkwood DJ (1981) The behaviour of dyes in aqueous solutions part II- anionic dye-nonionic surfactant interactions. J Soc Dyers Colour 97(1):13–17CrossRef
Zurück zum Zitat Sun L, Chen JY, Jiang W, Lynch V (2015) Crystalline characteristics of cellulose fiber and film regenerated from ionic liquid solution. Carbohydr Polym 118:150–155CrossRef Sun L, Chen JY, Jiang W, Lynch V (2015) Crystalline characteristics of cellulose fiber and film regenerated from ionic liquid solution. Carbohydr Polym 118:150–155CrossRef
Zurück zum Zitat Thao Ho TT, Zimmermann T, Caseri WR, Smith P (2013) Liquid ammonia treatment of (cationic) nanofibrillated cellulose/vermiculite composites. J Polym Sci Part B Polym Phys 51(8):638–648CrossRef Thao Ho TT, Zimmermann T, Caseri WR, Smith P (2013) Liquid ammonia treatment of (cationic) nanofibrillated cellulose/vermiculite composites. J Polym Sci Part B Polym Phys 51(8):638–648CrossRef
Zurück zum Zitat Tratnyek JP (1972) Method of dyeing shaped organic materials from liquid ammonia dye baths. United States Patent 3666398, 30 May Tratnyek JP (1972) Method of dyeing shaped organic materials from liquid ammonia dye baths. United States Patent 3666398, 30 May
Zurück zum Zitat Wada M, Nishiyama Y, Bellesia G, Forsyth T, Gnanakaran S, Langan P (2011) Neutron crystallographic and molecular dynamics studies of the structure of ammonia-cellulose I: rearrangement of hydrogen bonding during the treatment of cellulose with ammonia. Cellulose 18(2):191–206CrossRef Wada M, Nishiyama Y, Bellesia G, Forsyth T, Gnanakaran S, Langan P (2011) Neutron crystallographic and molecular dynamics studies of the structure of ammonia-cellulose I: rearrangement of hydrogen bonding during the treatment of cellulose with ammonia. Cellulose 18(2):191–206CrossRef
Zurück zum Zitat Wang G, Zhuang L, Sun J, Zheng C (2014) Salt-free dyeing of ramie fabric with an amino-terminated hyperbranched polymer. Cellulose 21(5):3725–3736CrossRef Wang G, Zhuang L, Sun J, Zheng C (2014) Salt-free dyeing of ramie fabric with an amino-terminated hyperbranched polymer. Cellulose 21(5):3725–3736CrossRef
Zurück zum Zitat Wang G, Chen B, Zhuang L, Yun K, Guo J, Wang Y, Xu B (2015) Dyeing performances of ramie fabrics modified with an amino-terminated aliphatic hyperbranched polymer. Cellulose 22(2):1401–1414CrossRef Wang G, Chen B, Zhuang L, Yun K, Guo J, Wang Y, Xu B (2015) Dyeing performances of ramie fabrics modified with an amino-terminated aliphatic hyperbranched polymer. Cellulose 22(2):1401–1414CrossRef
Zurück zum Zitat Was-Gubala J, Machnowski W (2014) Application of Raman spectroscopy for differentiation among cotton and viscose fibers dyed with several dye classes. Spectrosc Lett 47(7):527–535CrossRef Was-Gubala J, Machnowski W (2014) Application of Raman spectroscopy for differentiation among cotton and viscose fibers dyed with several dye classes. Spectrosc Lett 47(7):527–535CrossRef
Zurück zum Zitat Zhang F, Chen Y, Lin H, Lu Y (2007) Synthesis of amino-terminated hyperbranched polymer and its application in reactive dyeing on cotton as a salt-free dyeing auxiliary. Color Technol 123(6):351–357CrossRef Zhang F, Chen Y, Lin H, Lu Y (2007) Synthesis of amino-terminated hyperbranched polymer and its application in reactive dyeing on cotton as a salt-free dyeing auxiliary. Color Technol 123(6):351–357CrossRef
Zurück zum Zitat Zhuang L, Zheng C, Sun J, Yuan A, Wang G (2014) Performances of ramie fiber pretreated with dicationic imidazolium ionic liquid. Fibers Polym 15(2):226–233CrossRef Zhuang L, Zheng C, Sun J, Yuan A, Wang G (2014) Performances of ramie fiber pretreated with dicationic imidazolium ionic liquid. Fibers Polym 15(2):226–233CrossRef
Metadaten
Titel
Reactive dyeing of ramie yarn washed by liquid ammonia
verfasst von
Yingjie Cai
Siwei Su
Rahul Navik
Kankan Lou
Xiongyi Peng
Qiang Wang
Ping Zhang
Lina Lin
Publikationsdatum
30.12.2017
Verlag
Springer Netherlands
Erschienen in
Cellulose / Ausgabe 2/2018
Print ISSN: 0969-0239
Elektronische ISSN: 1572-882X
DOI
https://doi.org/10.1007/s10570-017-1645-7

Weitere Artikel der Ausgabe 2/2018

Cellulose 2/2018 Zur Ausgabe