THERMAL SCIENCE

International Scientific Journal

EFFECT OF SOLUTION CONCENTRATIONS ON THE STRUCTURE AND PROPERTIES OF NANOFIBROUS YARNS BY BLOWN BUBBLE-SPINNING

ABSTRACT
Solution properties play a critical role in manufacturing of nanofibrous materials. In this paper, solution concentrations were explored for the effective fabrication of nanofibrous yarns by the blown bubble-spinning. The surface tension and rheological property of spun solutions were investigated, and the product’s thermal and mechanical properties were characterized.
KEYWORDS
PAPER SUBMITTED: 2020-03-01
PAPER REVISED: 2020-07-13
PAPER ACCEPTED: 2020-07-13
PUBLISHED ONLINE: 2021-03-27
DOI REFERENCE: https://doi.org/10.2298/TSCI200301101D
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2021, VOLUME 25, ISSUE Issue 3, PAGES [2155 - 2160]
REFERENCES
  1. Liao, X., et al., High Strength in Combination with High Toughness in Robust and Sustainable Polymeric Materials, Science, 366 (2019), 6471, pp. 1376-1379
  2. Li, X., et al., Conjugate Electrospinning of Continuous Nanofiber Yarn of Poly (L‐Lactide)/Nanotricalcium Phosphate Nanocomposite, Journal of Applied Polymer Science, 107 (2008), 6, pp. 3756-3764
  3. Wang, X., et al., Continuous Polymer Nanofiber Yarns Prepared by Self-Bundling Electrospinning Method, Polymer, 49 (2008), 11, pp. 2755-2761
  4. Yousefzadeh, M., et al., Producing Continuous Twisted Yarn from Well-Aligned Nanofibers by Water Vortex, Polymer Engineering & Science, 51 (2011), 2, pp. 323-329
  5. Baniasadi, M., et al., High-Performance Coils and Yarns of Polymeric Piezoelectric Nanofibers, ACS Applied Materials & Interfaces, 7 (2015), 9, pp. 5358-5366
  6. Yang, E., et al., Influence of Electric Field Interference on Double Nozzles Electrospinning, Journal of Applied Polymer Science, 116 (2010), 6, pp. 3688-3692
  7. Walmsley, H. L., Electrostatic Ignition Hazards with Plastic Pipes at Petrol Stations, Journal of Loss Prevention in the Process Industries, 25 (2012), 2, pp. 263-273
  8. Li, X. X., et al., Bubble Electrospinning with an Auxiliary Electrode and an Auxiliary Air Flow, Recent Patents on Nanotechnology, 14 (2020), 1, pp. 42-45
  9. Yin, J., et al. Numerical Approach to High-Throughput of Nanofibers by a Modified Bubble Electrospinning, Thermal Science, 24 (2020), 4, pp. 2367-2375
  10. He, J.-H., Liu, Y. P., Bubble Electrospinning: Patents, Promises and Challenges, Recent Patents on Nanotechnology, 14 (2020), 1, pp. 3-4
  11. He, J.-H., Advances in Bubble Electrospinning, Recent Patents on Nanotechnology, 13 (2019), 3, pp. 162-163
  12. He, J.-H., et al., Review on Fiber Morphology Obtained by Bubble Electrospinning and Blown Bubble Spinning, Thermal science, 16 (2012), 5, pp. 1263-1279
  13. Dou, H., et al., Blown Bubble-Spinning for Fabrication of Superfine Fibers, Thermal Science, 16 (2012), 5, pp. 1465-1466
  14. Liu, H. Y., et al., A Novel Method for Fabrication of Fascinated Nanofiber Yarns, Thermal Science, 19 (2015), 4, pp. 1331-1335
  15. Chen, T., et al., Numerical Computation of the Fiber Diameter of Melt Blown Nonwovens Produced by the Inset Die, Journal of applied polymer science, 111 (2009), 4, pp. 1775-1779
  16. Borkar, S., et al., Polytetrafluoroethylene Nano/Microfibers by Jet Blowing, Polymer, 47 (2006), 25, pp. 8337-8343
  17. He, J.-H., Effect on Temperature on Surface Tension of a Bubble and Hierarchical Ruptured Bubbles for Nanofiber Fabrication, Thermal Science, 16 (2012), 1, pp. 327-330
  18. Dou, H., et al., Effect of MWCNT on the Structure and Property of Nanofibrous Bundles by The Blown Bubble Spinning,Recent Patents on Current Nanotechnology, 13 (2019), 3, pp. 171-180
  19. Dou, H., et al., Effect of Air-Flow Parameters on the Morphology of Nanofibrous Yarns by Blown Bubble Spinning, Thermal Science, 24 (2020), 4, pp. 2637-2643
  20. Liu, H. Y., Fascinated Nanofiber Yarns: From Experiment to Industrialization, Recent Patents on Cur-rent Nanotechnology, 14 (2020), 1, pp. 74-71
  21. He, J.-H., On the Height of Taylor Cone in Electrospinning, Results in Physics, 17 (2020), June, ID 103096

© 2024 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International licence