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Yarn dynamic tensile behavior and meso-scale numerical simulation method for STF-Kevlar fabrics

机译:STF-Kevlar织物的纱线动态拉伸行为和中学尺度数值模拟方法

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摘要

Shear thickening fluids (STFs) were found to be effective at enhancing the energy absorption capacity of Kevlar fabrics, which is promising in the area of soft-wall containment casings. In the current study, an improved mesoscale numerical simulation method for the yarn level was developed to predict the properties of STF-Kevlar fabrics with various STF concentrations. In addition, quasi-static and dynamic tensile tests as well as yarn pull-out tests were performed. Based on the dynamic tensile behavior and friction between yarns, a mesoscale numerical simulation method was proposed for STF-Kevlar fabrics. Combined with a ballistic impact test, the numerical simulation method based on the yarn tests was verified. It was found that the STF generates a strainrate strengthening effect due to its shear thickening behavior during quasi-static tensile tests conducted at 0.0001 and 0.001 s(-1). The initial elastic modulus, tensile strength, and failure strain of the yarn were obtained from dynamic tensile tests using a split-Hopkinson tension bar (SHTB) apparatus. The yarn pulling process includes the yarn straightening stage and yarn translation stage. The pull-out force decreased with the pull-out rate for the STF-treated yarn. The pull-out force of the STF-treated fabric increased by up to 213.2% compared with the neat fabric at the same pull-out rate. Based on the yarn pull-out testing results, the friction coefficient between the weft and warp yarns was estimated. Mesoscale numerical simulations were performed based on the dynamic tension behavior and friction behavior of the yarn, which were verified through ballistic impact test. Although the friction characteristics of the three STF fabrics were not significantly different, the energy absorption of the STF-treated fabrics differed considerably. As the tensile strength increased, the energy absorption characteristics of the fabric improved considerably.
机译:发现剪切增稠液(STF)有效地提高了Kevlar织物的能量吸收能力,这在软壁壳体壳体面积上具有很大。在目前的研究中,开发了一种改进的纱线级的数值数值模拟方法,以预测具有各种STF浓度的STF-Kevlar织物的性能。此外,进行准静态和动态拉伸试验以及纱线拉出试验。基于纱线之间的动态拉伸行为和摩擦,提出了STF-Kevlar织物的Messcale数值模拟方法。结合弹道冲击试验,验证了基于纱线测试的数值模拟方法。发现STF由于其在0.0001和0.001s(-1)的准静态拉伸试验期间,STF由于其剪切增厚行为而产生耐菌酸盐强化效果。纱线的初始弹性模量,抗拉强度和纱线的损失应变从使用分流霍普金森张力杆(SHTB)装置的动态拉伸试验获得。纱线拉伸过程包括纱线矫直阶段和纱线翻译阶段。拉出力随着STF处理的纱线的拉出速率而降低。与相同拉出速率相同的织物相比,STF处理织物的拉出力增加了高达213.2%。基于纱线拉出测试结果,估计纬纱和经纱之间的摩擦系数。基于纱线的动态张力行为和摩擦行为进行Messcale数值模拟,通过弹道撞击试验验证。尽管三种STF织物的摩擦特性没有显着差异,但STF处理的织物的能量吸收很大。随着拉伸强度的增加,织物的能量吸收特性显着提高。

著录项

  • 来源
    《Thin-Walled Structures》 |2021年第2期|107319.1-107319.16|共16页
  • 作者单位

    Nanjing Univ Aeronaut & Astronaut Aeroengine Thermal Environm & Struct Key Lab Minist Ind & Informat Technol Coll Energy & Power Engn Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut & Astronaut Aeroengine Thermal Environm & Struct Key Lab Minist Ind & Informat Technol Coll Energy & Power Engn Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut & Astronaut Aeroengine Thermal Environm & Struct Key Lab Minist Ind & Informat Technol Coll Energy & Power Engn Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut & Astronaut Aeroengine Thermal Environm & Struct Key Lab Minist Ind & Informat Technol Coll Energy & Power Engn Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut & Astronaut Aeroengine Thermal Environm & Struct Key Lab Minist Ind & Informat Technol Coll Energy & Power Engn Nanjing 210016 Peoples R China;

    Nanjing Univ Aeronaut & Astronaut Aeroengine Thermal Environm & Struct Key Lab Minist Ind & Informat Technol Coll Energy & Power Engn Nanjing 210016 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Shear thickening fluid; Kevlar fabric; Dynamic tension; Yarn pull-out; Mesoscale numerical simulation; Ballistic impact;

    机译:剪切增稠液;Kevlar织物;动态张力;纱线拉出;Mescale数值模拟;弹道撞击;

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