THERMAL SCIENCE

International Scientific Journal

ENERGY ABSORPTION IN FRICTION-BASED STAB-PROOF FABRICS AND THE PUNCTURE RESISTANCE OF NANOFIBER MEMBRANE

ABSTRACT
Stab performance is one of the most important mechanical characters for textile structure, especially for geo-textiles. This paper gives an energy approach to studying the effect of friction on the stab property of woven fabrics. Both the results show that the stab performance enhances when the friction between warp and weft yarns increases. This paper concludes that nanofiber membrane is the best candidate for stab-proof application.
KEYWORDS
PAPER SUBMITTED: 2016-05-12
PAPER REVISED: 2016-07-30
PAPER ACCEPTED: 2016-08-23
PUBLISHED ONLINE: 2017-06-04
DOI REFERENCE: https://doi.org/10.2298/TSCI160512147W
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2018, VOLUME 22, ISSUE Issue 1, PAGES [39 - 41]
REFERENCES
  1. Decker, M. J., et al., Stab resistance of shear thickening fluid (STF)-treated fabrics. Composites Science and Technology, 67 (2007), 3-4, pp. 565-578
  2. Egres, R. G., et al., Stab performance of shear thickening fluid (STF)-fabric composites for body armor applications. International SAMPE Symposium and Exhibition (Proceedings), 50 (2005), pp. 2369-2380
  3. Egres, R. G., et al., Stab resistance of shear thickening fluid (STF)-Kevlar composites for body armor applications. Transformational Science and Technology for the Current and Future Force, 42 (2006), pp. 264-576
  4. Koerner, R. M., et al., Ten year creep puncture study of HDPE geomembranes protected by needle-punched nonwoven geotextiles. Geotextiles and Geomembranes, 28 (2010), 6, pp. 503-513
  5. Koerner, G. R., Koerner, R. M., Puncture resistance of polyester (PET) and polypropylene (PP) needle-punched nonwoven geotextiles, Geotextiles and Geomembranes, 29 (2011), 3, pp. 360-362
  6. Li, T. T., et al., Static and dynamic puncture behaviors of compound fabrics with recycled high-performance Kevlar fibers. Composite Part B: Engineering, 59 (2014), pp. 60-66
  7. Li, T. T., et al., Static and dynamic puncture failure behaviors of 3D needle-punched compound fabric based on Weibull distribution, Textile Research Journal, 84 (2014), 18, pp. 1903-1914
  8. Li, T. T., Numerical simulation of dynamic puncture behaviors of woven fabrics based on the Finite Element Method, Textile Research Journal, DOI: 10.1177/0040517516652343
  9. Wang, P., et al., Application of an ancient Chinese algorithm to stab performance of woven fabrics, Thermal Science 20 (2016), 3, pp. 819-822
  10. Sun, B. Z., et al., Investigations of puncture behaviors of woven fabrics from finite element analyses and experimental tests. Textile Research Journal, 81 (2011), 10, pp. 992-1007
  11. Wang, P., Sun, B. Z., Gu, B. H., Comparison of stab behaviors of uncoated and coated woven fabrics from experimental and finite element analyses. Textile Research Journal, 82 (2012), 13, pp. 1337-1354
  12. Wu, L. Y., et al., The tearing properties of textiles with Steiner tree structure. Thermal Science, 20, (2016), 3, pp. 823-826
  13. Zhang, Y., Wang, P., Guo, C. B., Energy absorption behaviors of 3d braided composites under impact loadings with frequency domain analysis. Polymer Composites, 37 (2016), 5, pp. 1620-1627

© 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