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Treatment and Characterization of Polyethylene Terephthalate Fibers with Silicone Rubber Adhesive for Heat-Resistant Adhesion

실리콘 고무와 내열접착 향상을 위한 Polyethylene Terephthalate 섬유 접착층의 제조 및 특성

  • Kim, Jihyo (Department of Fiber System Engineering, Yeungnam University) ;
  • Lee, Sangoh (Department of Clothing and Fashion, Yeungnam University) ;
  • Lee, Jaewoong (Department of Fiber System Engineering, Yeungnam University)
  • 김지효 (영남대학교 파이버시스템공학과) ;
  • 이상오 (영남대학교 의류패션학과) ;
  • 이재웅 (영남대학교 파이버시스템공학과)
  • Received : 2019.05.31
  • Accepted : 2019.06.19
  • Published : 2019.06.27

Abstract

In case of pure rubber materials, the initial quality of the rubber materials would be excellent, however, the durability against external impact might be poor. In order to overcome the relatively low durability, textile cord could be employed with silicone rubber. We have studied the improvement of heat-resistant adhesion properties of silicone adhesives between silicone rubber and PET fibers by applying various conditions including dip solution recipe. The silicone rubber used was a platinum catalyst curing type and platinum catalyst type silicone adhesive was used as an adhesive to obtain an optimum adhesive force. Furthermore, the bonding mechanism between silicone and PET fiber was established.

Keywords

References

  1. K. Stockelhuber, A. Svistkov, A. Pelevin, and G. Heinrich, Impact of Filler Surface Modification on Large Scale Mechanics of Styrene Butadiene/silica Rubber Composites, Macromolecules, 44(11), 4366(2011). https://doi.org/10.1021/ma1026077
  2. S. Park and M. Seo, Interfacial Characteristics of Polymeric Composite Materials, Polymer(Korea), 29(3), 221 (2015).
  3. N. Mahyar, M. H. Sayyed, S. Mohammad, and A. Azam, Pull-out Analysis of Laser Modified Polyamide Tire Cords through Rubber Matrix, Engineering Failure Analysis, 80, 431(2017). https://doi.org/10.1016/j.engfailanal.2017.07.013
  4. R. Mahmoud and J. Masoud, Adhesion of Nitrile Rubber(NBR) to Polyethylene Terephthalate(PET) Fabric, Part 1: PET Surface Modification by Methylenediphenyldi-isocyanate(MDI), Engineering Failure Analysis, 360(1), 429(2016).
  5. S. Park and M. Kang, A Study on Mechanical Interfacial Behaviors of Carbon Black-filled Elastomeric Materials via Adhesion Improvement, Rubber Technology, 18(1), 13(2017).
  6. S. Ata, T. Mizuno, A. Nishizawa, C. Subramaniam, D. N. Futaba, and K. Hata, Influence of Matching Solubility Parameter of Polymer Matrix and CNT on Electrical Conductivity of CNT/rubber Composite, Sci. Rep-UK, 4, 7232(2014).
  7. I. M. Ulfah, R. Fidyaningsih, S. Rahayu, D. A. Fitriani, D. A. Saputra, D. A. Winarto, and L. A. Wisojodharmo, Influence of Carbon Black and Silica Filler on the Rheological and Mechanical Properties of Natural Rubber Compound, Procedia Chem, 16, 258(2015). https://doi.org/10.1016/j.proche.2015.12.053
  8. S. Kim, Y. Kim, and J. Choi, Silicones for Coating, Present and Future, Prospectives of Industrial Chemistry, 3(6), 14(2000).
  9. A. L. Bloomfield, Primer System for Bonding Conventional Adhesives and Coatings to Silicone Rubber, International J. of Adhesion and Adhesives, 68, 239(2016). https://doi.org/10.1016/j.ijadhadh.2016.04.001
  10. T. Kim, H. Kim, S. Lee, and M. Park, Single-walled Carbon Nanotube/silicone Rubber Composites for Compliant Electrodes, Carbon, 50(2), 444(2012). https://doi.org/10.1016/j.carbon.2011.08.070
  11. J. Lee, T. Lee, K. Shim, J. Park, H. Kim, and Y. Kim, Adhesion Performance and Recovery of Platinum Catalyzed Silicone PSAs under Various Temperature Conditions for Flexible Display Applications, Materials Letters, 208(1), 86(2017). https://doi.org/10.1016/j.matlet.2017.05.042
  12. D. Satas, "Handbook of Pressure Sensitive Adhesive Technology", 3rd Ed., Van Nostrand Reinhold, New York, 1999.
  13. S. Vecchiato, J. Ahrens, A. Pellis, D. Scaini, B. Mueller, E. H. Acero, andM. G. Guebitz, Enzymatic Functionalization of HMLS-Polyethylene Terephthalate Fabrics Improves the Adhesion to Rubber, ACS Sustainable Chem. Eng., 5(8), 6456(2017). https://doi.org/10.1021/acssuschemeng.7b00475
  14. J. Won, D. Jin, H. Son, Y. Hong, and S. Lee, Interfacial Adhesion and Fatigue Resistance of Polyketone Fiber/Natural Rubber Composites with Primer Treatment, Textile Science and Engineering, 51(2), 63(2014). https://doi.org/10.12772/TSE.2014.51.063
  15. W. B. Datta, R. N. Noordermeer, and J. W. M. Elkink, Fibers Adhesion to Rubber Compound, Rubber Chem. Technol, 81(3), 523(2008). https://doi.org/10.5254/1.3548218
  16. F. Colbrie, G. Heumann, S. Liebminger, S. Almansa, E. C. Paulo, A. Guebitz, and G. M. Wennekes, New Enzymeswith Potential for PET SurfaceModification, Biocatal. Biotransform, 22(5-6), 341(2004). https://doi.org/10.1080/10242420400024565
  17. R. A. Meyers, "Encyclopedia of Physical Science and Technology Polymer", Academic Press, Cambridge, 2001.
  18. W. Ma, C. Zhao, S. Okubayashi, I. Tabata, K. Hisada, and T. Hori, A Novel Method of Modifying Poly(ethylene terephthalate) Fabric Using Supercritical Carbon Dioxide, J. of Applied Polymer Science, 117(4), 1897 (2010). https://doi.org/10.1002/app.32030
  19. E. Alyamac, H. Gu, and M. D. Soucek, Alkoxysilane Oligomer Modified Epoxide Primers, Progress in Organic Coatings, 74(1), 67(2012). https://doi.org/10.1016/j.porgcoat.2011.11.012
  20. B. X. Qiana, L. Songa, Y. Hua, B. K. Richard, and K. Yuen, Thermal Degradation and Flammability of Novel Organic/inorganic Epoxy Hybrids Containing Organophosphorus-modified Oligosiloxane, Thermochim Acta, 552 (20), 87(2013). https://doi.org/10.1016/j.tca.2012.11.010
  21. R. Pilawka, K. Goracy, and K. Wilpiszewska, High-performance Isocyanate-epoxy Materials, Pigment and Resin Technology, 43(6), 332(2007). https://doi.org/10.1108/PRT-11-2013-0110
  22. M. Flores, X. F. Francos, J. M. Morancho, A. Serra, and X. Ramis, Ytterbium Triflate as a New Catalyst on the Curing of Epoxy-isocyanate based Thermosets, Thermochimica Acta, 543(10), 188(2012). https://doi.org/10.1016/j.tca.2012.05.012
  23. W. Chen, X. Zeng, X. Lai, H. Li, W. Fang, and F. Hou, Suppression Effect and Mechanism of Platinum and Nitrogen Containing Silane on the Tracking and Erosion of Silicone Rubber for High-Voltage Insulation, ACS Appl. Mater. Interfaces, 8(32), 21039(2016). https://doi.org/10.1021/acsami.6b05580
  24. K. Indulekhaa, S. Monishab, D. Thomasc, R. S. Rajeeva, D. Mathewa, K. N. Ninand, and C. Gouri, Polycyclic Siloxanes: Base Resins for NovelHigh Temperature Resistant Platinum Curing Transparent Silicone Adhesives, International J. of Adhesion and Adhesives, 82, 254 (2018). https://doi.org/10.1016/j.ijadhadh.2018.02.001
  25. M. Gonzalez, J. Cabanelas, and J. Baselga, Applications of FTIR on Epoxy Resins -Identification, Monitoring the Curing Process, Phase Separation and Water Uptake, Infrared Spectroscopy- Materials Science, Engineering and Technology, 13, 261(2012).
  26. E. Park, Mechanical Properties and Anti bacterial Activity of Peroxide-Cured Silicone Rubber Foams, J. of Applied Polymer Science, 110(3), 1723(2008). https://doi.org/10.1002/app.28750
  27. T. Chatterjee, S. Wiessner, K. Naskar, and G. Heinrich, Exploring a Novel Cyclic Mono Functional Peroxide for Curing of Silicone Rubber at Elevated Temperature, Polymer Engineering and Science, 57(10), 1073(2017). https://doi.org/10.1002/pen.24481