首页> 外文期刊>Journal of Advanced Mechanical Design, Systems, and Manufacturing >Effect of interfacial nanostructure on mode mixity in directly bonded carbon fiber reinforced thermoplastic laminates and aluminum alloy considering thermal residual stress
【24h】

Effect of interfacial nanostructure on mode mixity in directly bonded carbon fiber reinforced thermoplastic laminates and aluminum alloy considering thermal residual stress

机译:界面纳米结构对考虑热残余应力的直接粘结碳纤维增强热塑性层压板和铝合金的影响

获取原文
           

摘要

In recent years, for the aim of weight reduction of transportation equipment, carbon fiber reinforced thermoplastics (CFRTPs), which have high recyclability and formability, are becoming suitable for mass production. Additionally, with the development of multi-material structures, excellent technologies are required for joining metals and CFRTPs. Presently, adhesive bonding and mechanical joining methods are employed for joining dissimilar materials, however, these methods still have some problems. Therefore, an alternative bonding method that does not use adhesives or employ mechanical joining is required for joining CFRTPs and metals. This study focuses on direct bonding between the CFRTP laminate and an aluminum alloy by fabricating a nanostructure on the aluminum alloy surface. The nanostructure penetrates the CFRTP matrix, causing an anchoring effect that improves the bonding strength significantly. The influence of the nanostructure on the energy release rate of the directly bonded CFRTP and aluminum was evaluated by static double cantilever beam testing. Because of the difference in thermal expansion coefficients of the CFRTP laminate and the aluminum alloy, significant residual stresses are generated. The effect of the thermal residual stresses on the energy release rate along with the resulting mode mixity (mode I and II) was determined. Results reveal that the critical energy release rate is improved by the nanostructure and mode I contribution of the energy release rate is increased for the nanostructure case.
机译:近年来,为了减轻运输设备的重量,碳纤维增强热塑性塑料(CFRTPS)具有高可回收性和可成型性,均可适合批量生产。另外,随着多材料结构的发展,加入金属和CFRTP需要出色的技术。目前,采用粘合剂粘合和机械连接方法来加入异种材料,然而,这些方法仍然存在一些问题。因此,需要一种不使用粘合剂或使用机械连接的替代粘合方法来加入CFRTP和金属。该研究专注于CFRTP层压板与铝合金在铝合金表面上的纳米结构之间的直接键合。纳米结构穿透CFRTP矩阵,导致锚固效果显着提高粘合强度。通过静电双悬臂梁测试评估纳米结构对直接键合CFRTP和铝的能量释放速率的影响。由于CFRTP层压板的热膨胀系数和铝合金的差异,产生了显着的残余应力。测定热残余应力对能量释放速率以及所得模式混合(模式I和II)的影响。结果表明,通过纳米结构和模式提高了临界能量释放率,对于纳米结构壳体的贡献增加了能量释放率的贡献。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号