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Development of bonding methods and energy absorption of sandwich panels for thermoplastic advanced composites.

机译:开发用于热塑性高级复合材料的夹芯板的粘结方法和能量吸收。

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摘要

Given their high strength-to-weight and stiffness-to-weight ratios, sandwich composites continue to be considered for automotive applications. Thermoplastic materials, while difficult to bond, have an increased ease of manufacture and may be reprocessed, making them an attractive alternate to thermoset composites. This investigation focused on the evaluation of adhesives and surface treatments for both nylon and polypropylene thermoplastic composite adherends made from TowflexRTM pre-impregnated composite fabric. A manufacturing method was established for thermoplastic plates, which produced an acceptable surface finish without contaminating the bonding surface. Adhesives and surface treatments were evaluated using lap shear (ASTM D 3163) and cleavage (ASTM D 3433) test methods. The most promising adhesive/surface treatment combinations were selected for bonding of sandwich composites with two different core materials: balsa wood and polyurethane foam. Initial sandwich configuration testing consisted of flatwise tensile (ASTM C 297) and core shear (ASTM C 273) test methods. These tests provided insights into the sandwich properties and revealed any incompatibilities between the adhesive and the core. Follow on sandwich configuration evaluation consisted of edgewise compression testing, both statically (ASTM C 364) and dynamically. These tests determined the strength and ability of these sandwiches to absorb energy under two different types of loading.
机译:鉴于其高的强度重量比和刚度重量比,三明治复合材料继续被用于汽车应用。热塑性材料虽然难于粘合,但制造起来更加容易,可以进行再加工,使其成为热固性复合材料的诱人替代品。这项研究的重点是评估由TowflexRTM预浸复合织物制成的尼龙和聚丙烯热塑性复合被粘物的粘合剂和表面处理。建立了一种用于热塑性板的制造方法,该方法可产生可接受的表面光洁度而不会污染粘合表面。使用搭接剪切(ASTM D 3163)和解理(ASTM D 3433)测试方法评估了粘合剂和表面处理。选择了最有前途的粘合剂/表面处理组合,以将夹心复合材料与两种不同的芯材(轻木和聚氨酯泡沫)粘合在一起。最初的三明治结构测试包括水平拉伸(ASTM C 297)和岩心剪切(ASTM C 273)测试方法。这些测试提供了对夹心性能的深入了解,并揭示了胶粘剂和芯之间的任何不相容性。继续进行三明治配置评估,包括静态(ASTM C 364)和动态的边压缩测试。这些测试确定了这些三明治在两种不同类型的载荷下吸收能量的强度和能力。

著录项

  • 作者

    Haslam, Erik Bravant.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Engineering Mechanical.
  • 学位 M.S.
  • 年度 2012
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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