Failure Mode Transition in Transverse Tensile of UD-CFRP Under Various Temperatures and Strain rates

Mio Sato, Sakie Shirai, J. Koyanagi, Y. Ishida
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Abstract

In the present study, strain-rate dependence and temperature dependence of failure mode are numerically simulated by finite element analyses. In the analyses, interface failure and matrix failure are expressed by cohesive zone modeling and continuum damage mechanics, respectively. It is assumed that the damage initiates dependently of strain rate and temperature, and cohesive zone modeling is assumed to be temperature- and time-independent. In the continuum damage mechanics, Christensen’s failure criterion of multi-axial stress states for each strain rate are applied into the resin properties. Interfacial strength which is obtained by microbond test is introduced into cohesive zone modeling. When temperature is high and/or strain rate is low, matrix crack occurs very often and the failure mode is matrix-failuredominant mode. On the other hand, when temperature is low and/or strain rate is high, interface crack significant, i.e. failure mode becomes interface-crack-dominant mode.
不同温度和应变速率下UD-CFRP横向拉伸失效模式转变
在本研究中,采用有限元方法数值模拟了破坏模式的应变速率依赖关系和温度依赖关系。在分析中,界面破坏和基体破坏分别用黏聚区模型和连续损伤力学来表示。假设损伤的发生与应变速率和温度有关,并假设黏结区建模与温度和时间无关。在连续损伤力学中,将Christensen的各应变速率下多轴应力状态的破坏准则应用到树脂的性能中。将微粘结试验得到的界面强度引入黏结区建模。当温度较高或应变率较低时,基体裂纹频繁发生,破坏模式为基体-破坏为主模式。另一方面,当温度较低和/或应变速率较高时,界面裂纹显著,即失效模式变为界面裂纹为主模式。
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