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Modeling and optimization of dynamic puncture behaviors for flexible inter-/intra- reinforced compound fabrics
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  • 作者:Ting-Ting Li ; Rui Wang ; Ching-Wen Lou ; Jan-Yi Lin ; Mei-Chen Lin…
  • 关键词:Puncture ; Model ; Optimization ; Fabric ; Needling ; Thermal
  • 刊名:Fibers and Polymers
  • 出版年:2016
  • 出版时间:March 2016
  • 年:2016
  • 卷:17
  • 期:3
  • 页码:469-476
  • 全文大小:1,341 KB
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  • 作者单位:Ting-Ting Li (1) (2)
    Rui Wang (1)
    Ching-Wen Lou (3)
    Jan-Yi Lin (4)
    Mei-Chen Lin (4)
    Jia-Horng Lin (4) (5) (6)

    1. School of Textiles, Tianjin Polytechnic University, Tianjin, 300387, China
    2. Tianjin and Education Ministry Key Laboratory of Advanced Textile Composite Materials, Tianjin Polytechnic University, Tianjin, 300387, China
    3. Institute of Biomedical Engineering and Material Science, Central Taiwan University of Science and Technology, Taichung, 40601, Taiwan
    4. Laboratory of Fiber Application and Manufacturing, Department of Fiber and Composite Materials, Feng Chia University, Taichung, 40724, Taiwan
    5. School of Chinese Medicine, China Medical University, Taichung, 40402, Taiwan
    6. Department of Fashion Design, Asia University, Taichung, 41354, Taiwan
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Polymer Sciences
  • 出版者:The Korean Fiber Society
  • ISSN:1875-0052
文摘
In this article, the new model of dynamic puncture behaviors of intra-/inter- reinforced compound fabrics which are fabricated by nonwovens and reinforced fabrics using needle-punching and thermal bonding technique is constructed by the maximum deformation and stress-wave transmission theory. Moreover, the number of layers for E1 puncture protection is optimized based on numerical analysis of penetration depth. Dynamic puncture model shows that the dynamic puncture resistance depends on elastic modulus of reinforced fabrics, deformation radius and thickness of compound fabrics. The maximum puncture resistance and penetration depth both have parabola relations to number of layers. This study provides the accurate prediction model of puncture force and safety layers for designing puncture-resisting body armor in the future.

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