...
首页> 外文期刊>Engineering Fracture Mechanics >Dynamic mixed-mode I/II delamination fracture and energy release rate of unidirectional graphite/epoxy composites
【24h】

Dynamic mixed-mode I/II delamination fracture and energy release rate of unidirectional graphite/epoxy composites

机译:单向石墨/环氧树脂复合材料的动态混合模式I / II分层断裂和能量释放速率

获取原文
获取原文并翻译 | 示例
           

摘要

Mixed-mode open-notch flexure (MONF), anti-symmetric loaded end-notched flexure (MENF) and center-notched flexure (MCNF) specimens were used to investigate dynamic mixed I/II mode delamination fracture using a fracturing split Hopkinson pressure bar (F-SHPB). An expression for dynamic energy release rate Gd is formulated and evaluated. The experimental results show that dynamic delamination increases linearly with mode mixing. At low input energy Ei 4.0 J, the dynamic (Gd) and total (GT) energy rates are independent of mixed-mode ratio. At higher impact energy of 4.0 Ei 9.3 J, Gd decreases slowly with mixed I/II mode ratio while Gt is observed to increase more rapidly. In general, Gd increases more rapidly with increasing delamination than with increasing energy absorbed. The results show that for the impact energy of 9.3 J before fragmentation of the plate, the effect of kinetic energy is not significant and should be neglected. For the same energy-absorption level, the delamination is greatest at low mixed-mode ratios corresponding to highest Mode II contribution. The results of energy release rates from MONF were compared with mixed-mode bending (MMB) formulation and show some agreement in Mode II but differences in prediction for Mode I. Hackle (Mode II) features on SEM photographs decrease as the impact energy is increased but increase as the Mode I/II ratio decreases. For the same loading conditions, more pure Mode II features are generated on the MCNF specimen fractured surfaces than the MENF and MONF specimens.
机译:混合模式开槽挠曲(MONF),反对称加载的端部切口挠曲(MENF)和中心切口挠曲(MCNF)标本被用于研究使用裂隙分裂Hopkinson压力棒进行的动态I / II模式混合分​​层断裂(F-SHPB)。制定并评估动态能量释放速率Gd的表达式。实验结果表明,动态分层随模式混合而线性增加。在低输入能量Ei 4.0 J时,动态(Gd)和总(GT)能量速率与混合模式比率无关。在4.0 Ei 9.3 J的较高冲击能量下,Gd随I / II混合模式比率的降低而缓慢下降,而观察到的Gt则增长更快。通常,随着分层的增加,Gd的增加要快于吸收能量的增加。结果表明,对于破碎前的9.3 J冲击能量,动能的影响不显着,应忽略不计。对于相同的能量吸收水平,在对应最高模式II贡献的低混合模式比率下,分层最大。将MONF的能量释放速率结果与混合模式弯曲(MMB)公式进行了比较,并在模式II中显示出一定的一致性,但对模式I的预测存在差异。随着冲击能量的增加,在SEM照片上的哈克(模式II)特征降低但随着模式I / II比的降低而增加。对于相同的加载条件,在MCNF试样断裂表面上产生的纯II型特征要比MENF和MONF试样更纯净。

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