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Engineering Design of Composite Military Helmet Shells Reinforced by Continuous 3D Woven Fabrics

机译:连续3D机织织物增强复合军用头盔壳的工程设计。

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摘要

The present research aims at engineering design of military helmet shells with continuous 3D woven fabric reinforcements for improved protection at a lighter weight and a reduced cost. The research was carried out using both the experimental and numerical methods. The results proved that the designed 3D woven wadded through-the-thickness angle interlock (TTAI) fabrics can be successfully moulded as continuous reinforcements for the doubly curved military helmet shells; therefore, costs in pattern cutting in the current composite helmet making process are eliminated. An improved ballistic performance was also demonstrated in the continuously reinforced composite structures. The wadding yarns added into the conventional TTAI fabrics enhanced the mechanical properties along the warp direction significantly. Improved composite in-plane isotropy was achieved by using the wadded TTAI fabrics as reinforcements. The locking angle method was modified based on the deformation behaviour of TTAI fabrics and was used to predict and evaluate the mouldability of both conventional and wadded TTAI structures. Mouldability factor, defined from the locking angle, assists the design and selection of continuous reinforcements that are of the appropriate mouldability. The mouldability limit of a PASGT (Personnel Armour System for Ground Troops) helmet shell was determined as 25.54. Thus, TTAI fabrics with mouldability factor no larger than this value are capable of continuously reinforcing the doubly curved shape.Ballistic tests and post-mortem examinations through ultrasonic C-scan and X-ray computed tomography (CT) demonstrated the advantages of the continuously reinforced composite in energy absorption. Up to 19.3% more of the kinetic energy was absorbed by the continuously reinforced panel through generating a delamination volume that was twice as large as that of the discontinuously reinforced one, and the delamination damages were distributed over a wider area. Under the same level of fabric mouldability and composite areal density, the panels reinforced with fewer plies of heavier fabrics performed better. The wadded TTAI reinforced composite panel demonstrated the optimal ballistic resistance by showing a 25.5% thickness increase and 55.3% penetration through the thickness. The 3D wadded fabric and 2D plain weave fabric continuously reinforced flat panels presented an equivalent ballistic performance. Meanwhile, further numerical analyses were conducted based on the digitally obtained geometry of a PASGT helmet. Although the ballistic limits varied from location to location, an equivalent ballistic limit of the helmet shell was noticed for the PASGT shell when compared to its flat counterparts.The military helmet shells reinforced by 3D wadded TTAI fabrics continuously offer improved ballistic performance. This is attributed to the preserved reinforcement continuity and the enhanced through-the-thickness properties. The research provides a novel reinforcing strategy for the construction of future composite military helmet shells.
机译:本研究旨在对具有连续3D机织织物增强材料的军用头盔壳进行工程设计,从而以更轻的重量和更低的成本改善防护性能。使用实验和数值方法进行了研究。结果证明,所设计的3D机织全厚度角互锁(TTAI)织物可以成功地成型为双弯军用头盔壳的连续补强材料。因此,消除了当前复合头盔制造过程中的图案切割成本。在连续增强的复合结构中还显示出改进的弹道性能。添加到常规TTAI织物中的填料纱线显着提高了沿经向的机械性能。通过使用TTAI填充织物作为增强材料,可以改善复合材料的面内各向同性。锁定角方法根据TTAI织物的变形行为进行了修改,并用于预测和评估常规TTAI和填充TTAI结构的可模塑性。从锁定角度定义的可模制系数有助于设计和选择具有适当可模制性的连续钢筋。确定PASGT(地面部队人员装甲系统)头盔壳的可模制极限为25.54。因此,TTAI织物的可塑系数不大于该值能够连续增强双弯曲形状。通过超声波C扫描和X射线计算机断层扫描(CT)进行的弹道测试和验尸检查证明了连续增强的优势复合材料的能量吸收。通过产生比不连续加固板大两倍的分层量,连续加固板可吸收多达19.3%的动能,并且分层损伤分布在更宽的区域。在相同水平的织物成型性和复合面密度的情况下,用较少层的较重织物加固的面板性能更好。填充的TTAI增强复合板显示出25.5%的厚度增加和55.3%的穿透厚度,显示出最佳的防弹性能。 3D棉织物和2D平纹织物连续增强的平板具有同等的弹道性能。同时,根据数字获得的PASGT头盔的几何形状进行了进一步的数值分析。尽管弹道限制因位置而异,但PASGT外壳与扁平头盔相比,头盔壳具有相同的弹道限制.3D填充TTAI织物增强的军用头盔壳不断提供改进的弹道性能。这归因于保留的钢筋连续性和增强的贯穿厚度特性。该研究为未来复合材料军事头盔壳的构造提供了一种新颖的加固策略。

著录项

  • 作者

    Min, Shengnan.;

  • 作者单位

    The University of Manchester (United Kingdom).;

  • 授予单位 The University of Manchester (United Kingdom).;
  • 学科 Textile research.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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