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Technical Notes

Study on structure and property of PP/TPU melt-blown nonwovens

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Pages 468-475 | Received 15 Dec 2017, Accepted 01 Jun 2018, Published online: 12 Jun 2018

References

  • Cheng, B., Jiao, X. N., & Kang, W. M. (2006). Studies on grafting of acrylic acid onto polypropylene melt-blown nonwovens induced by electron-beam preirradiation. Journal of Applied Polymer Science, 102(5), 4971–4977.10.1002/(ISSN)1097-4628
  • Chu, K. H., Park, M., Kim, H. Y., Jin, F. L., & Park, S. J. (2014). Preparation and characterization of polypropylene non-woven fabrics prepared by melt-blown spinning for filtration membranes. Bulletin of the Korean Chemical Society, 35(6), 1901–1903.10.5012/bkcs.2014.35.6.1901
  • Ellison, C. J., Phatak, A., Giles, D. W., Macosko, C. W., & Bates, F. S. (2007). Melt blown nanofibers: Fiber diameter distributions and onset of fiber breakup. Polymer, 48(11), 3306–3316.10.1016/j.polymer.2007.04.005
  • Feng, J. Y. (2017). Preparation and properties of poly(lactic acid) fiber melt blown non-woven disordered mats. Materials Letters, 189, 180–183.10.1016/j.matlet.2016.12.013
  • Frick, A., & Rochman, A. (2004). Characterization of TPU-elastomers by thermal analysis (DSC). Polymer Testing, 23(4), 413–417.10.1016/j.polymertesting.2003.09.013
  • Guo, M. L., Liang, H. X., Luo, Z. W., Chen, Q. G., & Wei, W. J. (2016). Study on melt-blown processing, web structure of polypropylene nonwovens and its BTX adsorption. Fibers and Polymers, 17(2), 257–265.10.1007/s12221-016-5592-y
  • Guo, M. L., Zhang, C., Xu, J. J., Luo, Z. W., & Wei, W. J. (2016). An efficient, simple and facile strategy to synthesize polypropylene-g-(acrylic acid-co-acrylamide) nonwovens by suspension grafting polymerization and melt-blown technique. Fibers and Polymers, 17(8), 1123–1130.10.1007/s12221-016-6414-y
  • Gupta, A. K., & Purwat, S. N. (1984). Melt rheological properties of polypropylene/SEBS (styrene-ethylene-butylene-styrene block copolymer) blends. Journal of Applied Polymer Science, 29(4), 1079–1093.10.1002/app.1984.070290406
  • Han, W. L., & Wang, X. H. (2016). Modeling melt blowing fiber with different polymer constitutive equations. Fibers and Polymers, 17(1), 74–79.10.1007/s12221-016-5721-7
  • Henry, J. J., Goldbach, J., Stabler, S., Devisme, S., & Chauveau, J. (2016). Advancements in the production of meltblown fibres. Filtration + Separation, 53(3), 36–40.10.1016/S0015-1882(16)30123-9
  • Hui, S., Bin, Y., Jan, H., Kong, J. J., Meng, L. R., & Zhu, F. C. (2014). Microstructure, thermal properties and rheological behavior of PLA/PCL blends for melt-blown nonwovens. Polymer Korea, 38(4), 477–483.
  • Kandagor, V., Prather, D., Fogle, J., Bhave, R., & Bhat, G. (2017). Processing, structure and properties of melt blown polyetherimide. Journal of Textile Science & Engineering, 7(2), 1–6.
  • Kin, O. (1996). Stretchable melt-blown nonwovens. Nonwoven Industry, 9, 26–31.
  • Lambertz, A., Hil, L. V., Schöb, D. S., Binnebösel, M., Kroh, A., Klinge, U., … Klink, C. D. (2016). Analysis of adhesion formation of a new elastic thermoplastic polyurethane (TPU) mesh in comparison to polypropylene (PP) meshes in IPOM position. Journal of the Mechanical Behavior of Biomedical Materials, 53, 366–372.10.1016/j.jmbbm.2015.08.036
  • Liang, J. Z., Tang, C. Y., & Man, H. C. (1997). Flow and mechanical properties of polypropylene/low density polyethylene blends. Journal of Materials Processing Technology, 66(1–3), 158–164.10.1016/S0924-0136(96)02511-3
  • Lysak, I. A., Lysak, G. V., Malinovskaya, T. D., & Sachkov, V. (2014). Microwave-assisted synthesis of tin dioxide nanocrystals on the surface of polypropylene melt-blown nonwovens. Advanced Materials Research, 880, 195–198.10.4028/www.scientific.net/AMR.880
  • Minnesota Mining and Manufacturing Co., Ltd. (1990). U.S. Patent No. 495, 7795. Washington, DC: U.S. Patent and Trademark Office.
  • Miyazaki, K., Hisada, K., Hori, T., & Watanabe, N. (1999). Modification of polypropylene fabric for giving water repellent and hygroscopic properties simultaneously. Society of Fiber Science and Technology, 55(9), 408–415.
  • Rasal, R. M., Janorkar, A. V., & Hirt, D. E. (2010). Poly(lactic acid) modifications. Progress in Polymer Science, 35(3), 338–356.10.1016/j.progpolymsci.2009.12.003
  • Ryushi, T., Kita, I., Sakurai, T., Yasumatsu, M., Isokawa, M., Aihara, Y., & Hama, K. (1998). The effect of exposure to negative air ions on the recovery of physiological responses after moderate endurance exercises. Biometeorology, 41(3), 132–136.10.1007/s004840050066
  • Safranski, D. L., Boothby, J. M., Kelly, C. N., Beatty, K., Lakhera, N., Frick, C., … Griffis, J. C. (2016). Thermo-mechanical behavior and structure of melt blown shape-memory polyurethane nonwovens. Journal of the Mechanical Behavior of Biomedical Materials, 62, 545–555.10.1016/j.jmbbm.2016.05.038
  • Sinha-Ray, S., Yarin, A. L., & Pourdeyhimi, B. (2014). Meltblown fiber mats and their tensile strength. Polymer, 55(16), 4241–4247.10.1016/j.polymer.2014.05.025
  • Wang, Z. F., Liu, X. T., Macosko, C. W., & Bates, F. S. (2016). Nanofibers from water-extractable melt-blown immiscible polymer blends. Polymer, 101(28), 269–273.10.1016/j.polymer.2016.08.058
  • Wright, R. D. (1991). U.S. Patent No. 538, 5775. Washington, DC: U.S. Patent and Trademark Office.
  • Xu, J., Li, R. K. Y., Meng, Y. Z., & Mai, Y. W. (2006). Biodegradable poly(propylene carbonate)/montmorillonite nanocomposites prepared by direct melt intercalation. Materials Research Bulletin, 41(2), 244–252.10.1016/j.materresbull.2005.08.019
  • Yesil, Y., & Bhat, G. S. (2016). Structure and mechanical properties of polyethylene melt blown nonwovens. International Journal of Clothing Science and Technology, 28(6), 780–793.10.1108/IJCST-09-2015-0099
  • Yesil, Y., & Bhat, G. S. (2017). Porosity and barrier properties of polyethylene meltblown nonwovens. The Journal of the Textile Institute, 108(6), 1035–1040.10.1080/00405000.2016.1218109
  • Zhao, R., Wadsworth, L. C., Sun, C., & Zhang, D. (2003). Properties of PP/PET bicomponent melt blown microfiber nonwovens after heat-treatment. Polymer International, 52(1), 133–137.10.1002/(ISSN)1097-0126

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