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Simulation of the Stiffness of HTPE Fabric according to the Application of Reactive Pigment DTP Process and Dyeability

반응성 안료의 DTP공정 적용에 따른 HTPE원단의 태 시뮬레이션 및 염색성 연구

  • Sim, Jee-hyun (Department of Textile System Engineering, Kyungpook National University) ;
  • Lee, Jong-hyuk (DYETEC, Computer Aided Engineering(CAE) Center) ;
  • Yu, Seong-Hun (DYETEC, Computer Aided Engineering(CAE) Center) ;
  • Gwon, Gi-Hwan (DYETEC, Computer Aided Engineering(CAE) Center) ;
  • Bae, Jin-Seok (Department of Textile System Engineering, Kyungpook National University)
  • 심지현 (경북대학교 섬유시스템공학과) ;
  • 이종혁 (다이텍연구원 섬유가상공학연구센터) ;
  • 유성훈 (다이텍연구원 섬유가상공학연구센터) ;
  • 권기환 (다이텍연구원 섬유가상공학연구센터) ;
  • 배진석 (경북대학교 섬유시스템공학과)
  • Received : 2021.11.05
  • Accepted : 2021.11.30
  • Published : 2021.12.27

Abstract

It was intended to conduct basic research to reduce development lead time and cost consumed in DTP process technology development. For the simulation of HTPE fabric, virtual engineering software was used to generate fiber model, yarn model, fabric model, and finite element model of HTPE fiber. The purpose of this study is to analyze the correlation and error rate between the stiffness numerical analysis results according to the direct DTP process parameters using reactive dyes in the generated finite element model and the stiffness measurements of the actual sample ac- cording to ASTM D1388. And, after dyeing the HTPE plain fabric according to the direct DTP process parameters, we want to analyze the dyeability of the HTPE fabric fabrics according to the direct DTP process parameters through the color fastness analysis. When looking at the results of the analysis of the finite element model, a higher value was shown when the distance between the nozzle and the fabric was 3mm than when the distance was 10mm. When the distance between the nozzle and the fabric was 10mm and 7mm, the reactive dye did not penetrate sufficiently, resulting in poor clarity when viewed with the naked eye.

Keywords

References

  1. C. Wang, A. Roy, Z. Chen, and V. V. Silberschmidt, Braided Textile Composites for Sports Protection: Energy Absorption and Delamination in Impact Modelling, Materials and Design, 136, 258(2017). https://doi.org/10.1016/j.matdes.2017.10.006
  2. A. Chorny, I. Cherunova, and N. Kornevc, Thermophysical Interaction in the Shoe-foot System during Sport Activity, International Journal of Heat and Mass Transfer, 176, 324(2021).
  3. Q. Li, Y. Wang, S. Jiang, T. Li, X. Ding, X. Tao, and X. Wang, Investigation into Tensile Hysteresis of Polyurethane-containing Textile Substrates for Coated Strain Sensors, Materials and Design, 188, 108(2020).
  4. Y. Peng and Y. Cui, Advanced Textiles for Personal Thermal Management and Energy, Joule, 4, 724(2020). https://doi.org/10.1016/j.joule.2020.02.011
  5. B. P. Revol, M. Vauthier, M. Thomassey, M. Bouquey, F. Ruch, and M. Nardin, Design of Experience to Evaluate the Interfacial Compatibility on High Tenacity Viscose Fibers Reinforced Polyamide-6 Composites, Composites Science and Technology, 203, 615(2021).
  6. F. B. P. Costa, D. P. Righi, A. G. Graeff, and L. C. P. S. Filho, Experimental Study of Some Durability Properties of ECC with a More Environmentally Sustainable Rice Husk Ash and High Tenacity Polypropylene Fibers, Construction and Building Materials, 213, 505(2019). https://doi.org/10.1016/j.conbuildmat.2019.04.092
  7. G. Lee, J. Chae, S. O. Lee, S. S. Kim, and J. Lee, Supercritical CO2 Dyeing and Finishing Technology- A Review, Textile Coloration and Finishing, 31, 48(2019). https://doi.org/10.5764/TCF.2019.31.1.48
  8. T. Kim, J. Park, J. Lee, and T. Kim, Dyeing of High Strength and High Molecular Weight Polyethylene Fiber Using Super Hydrophobic Fluorescence Dye, Textile Coloration and Finishing, 29, 223(2017). https://doi.org/10.5764/TCF.2017.29.4.223
  9. S. Choi, K. H. Cho, J. W. Namgoong, J. Y. Kim, E. S. Yoo, W. S. Lee, J. W. Jung, and J. Choi, The Synthesis and Characterisation of the Perylene Acid Dye Inks for Digital Textile Printing, Dyes and Pigments, 163, 381(2019). https://doi.org/10.1016/j.dyepig.2018.12.002
  10. I. S. Chang, S. S. Lee, and E. K. Choe, Digital Textile Printing(DTP) Wastewater Treatment using Ozone and Membrane Filtration, Desalination, 235, 110(2009). https://doi.org/10.1016/j.desal.2008.01.014
  11. H. J. Kim, H. J. Seo, D. S. Kwak, J. P. Hong, S. H. Yoon, and K. Shin, Preparation and Evaluation of Low Viscosity Acrylic Polymer Based Pretreatment Solution for DTP Reactive Ink, Textile Coloration and Finishing, 29, 122(2017). https://doi.org/10.5764/TCF.2017.29.3.122
  12. J. H. Lee, B. Y. Lee, S. Lee, K. Y. Choi, J. W. Ko, J. S. Kim, T. Kim, and S. G. Lee, Dyeing Characteristics and Mechanical Properties of High Tenacity Polyethylene(HTPE) Filament using Solvent Dyes, Textile Coloration and Finishing, 29, 105(2017). https://doi.org/10.5764/TCF.2017.29.3.105
  13. S. Park, M. Han, and E. Jeong, Effect of Particle Sizes of Polymer Binders for Pigment Inks on Touch of Fabric, Textile Coloration and Finishing, 32, 226(2020). https://doi.org/10.5764/TCF.2020.32.4.226
  14. Y. Zhang, T. Ji, S. Hou, L. Zhang, Y. Shi, J. Zhao, and X. Xu, All-printed Solid-state Substrate-versatile and High-performance Micro-supercapacitors for in situ Fabricated Transferable and Wearable Energy Storage via Multi-material 3D Printing, Journal of Power Sources, 403, 109(2018). https://doi.org/10.1016/j.jpowsour.2018.09.096
  15. A. Derossi, M. Paolillo, P. Verboven, B. Nicolai, and C. Severini, Extending 3D Food Printing Application: Apple Tissue Microstructure as a Digital Model to Create Innovative Cereal-based Snacks, Journal of Food Engineering, 316, 452(2021).
  16. S. H. Yu, J. H. Lee, and J. H. Sim, Characterization of PETG Thermoplastic Composites Enhanced TiO2, Carbon Black, and POE, Textile Coloration and Finishing, 31, 354(2019). https://doi.org/10.5764/TCF.2019.31.4.354
  17. Y. Yeo and Y. Shin, The Dyeing Properties and Functionality of Water Lily(Nymphaea tetragona) Leaves Extract as a New Natural Dye Resource(2): Dyeing of Silk and Wool Fibers, Textile Coloration and Finishing, 29, 171(2017). https://doi.org/10.5764/TCF.2017.29.3.171
  18. D. S. Jeong, S. W. Park, I. Kweon, and T. I. Chun, Development of Retro-reflective Fiber(I) - Making of Slit Yarn and Manufacturing of Fabric using in the Warp Threads, Textile Coloration and Finishing, 29, 139(2017). https://doi.org/10.5764/TCF.2017.29.3.139
  19. S. R. Shin, K. L. An, S. Lee, S. E. Lee, E. Ko, C. Kim, and K. Jun, Synthesis of Azo based Disperse Dyes for Dyeing Polyester Fiber in Supercritical Carbon Dioxide, Textile Coloration and Finishing, 31, 135(2019). https://doi.org/10.5764/TCF.2019.31.3.135
  20. J. H. Park, Simulation Technology of 3D Fabrics, Textile Coloration and Finishing, 31, 214(2019). https://doi.org/10.5764/TCF.2019.31.3.214
  21. H. J. Kim, J. P. Hong, D. S. Kwak, H. J. Seo, and H. J. Kim, Color and Fastness Properties of Nylon Transfer Digital Textile Printing(DTP) using Acrylic-based Polymer as Pre-treatment Agent, Textile Coloration and Finishing, 31, 88(2019). https://doi.org/10.5764/TCF.2019.31.2.88
  22. T. Kim and H. Ma, Dyeing of Ultra High Molecular Weight Polyethylene Fiber Using Anthraquinoid Super-hydrophobic Navy Dyes, Textile Coloration and Finishing, 31, 98(2019). https://doi.org/10.5764/TCF.2019.31.2.98
  23. J. Zhao, Q. Li, F. Jin, and N. He, Digital Light Processing 3D Printing Kevlar Composites based on Dual Curing Resin, Additive Manufacturing, 20, 41(2021).
  24. J. Sim, S. Yu, J. Lee, G. Kim, J. Chon, and S. Park, Study on Thermal and Mechanical Properties of Epoxy Resin Nanocomposites with the Graphene Oxide, Textile Coloration and Finishing, 30, 98(2018). https://doi.org/10.5764/TCF.2018.30.2.98
  25. N. H. Men, T. H. Jeong, S. Y. Kim, K. B. Kim, T. H. Ha, S. J. Ahn, and Y. H. Kim, Porous Structures Prepared by a Novel Route: Combination of Digital Light Processing 3D Printing and Leaching Method, Journal of Manufacturing Processes, 67, 46(2021). https://doi.org/10.1016/j.jmapro.2021.04.049