首页> 外文会议>Symposium on Composite Structures: Theory and Practice, May 17-18, 1999, Seattle, Washington >Effect of Friction on the Perceived Mode Ⅱ Delamination Toughness from Three- and Four-Point Bend End-Notched Flexure Tests
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Effect of Friction on the Perceived Mode Ⅱ Delamination Toughness from Three- and Four-Point Bend End-Notched Flexure Tests

机译:摩擦对三点和四点弯曲末端切口挠曲测试中感知到的Ⅱ型分层韧度的影响

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Results are presented from a study on the effect of friction on the Mode Ⅱ delamination toughness as obtained by three- and four-point bend end-notched flexure tests. Finite-element analyses are used to assess the effect of friction on the compliance and energy release rate of the two types of test specimens. Energy release rates are first obtained by a virtual crack closure technique, which can be used to separate the energy lost by the system into that dissipated by friction and that used for crack advance. Energy release rates are then obtained by a simulated compliance calibration procedure. By modeling this commonly used method of data reduction and comparing results with those obtained by crack closure, the ratio of the material's intrinsic toughness to the toughness perceived by users of the tests can be assessed. For both tests, this assessment is made for physically realistic coefficients of friction and, for the four-point end-notched flexure test, as a function of the ratio of inner to outer span length. It is shown that frictional effects on the perceived toughness are considerably larger in the four-point than in the three-point bend end-notched flexure geometry, but that an appropriate choice of the four-point test geometry can make the influence of friction quite small.
机译:通过摩擦对三点和四点弯曲末端切口挠曲测试获得的Ⅱ型分层韧度的影响,给出了结果。有限元分析用于评估摩擦对两种类型试样的顺应性和能量释放率的影响。能量释放率首先通过虚拟的裂纹闭合技术获得,该技术可以将系统损失的能量分为摩擦耗散的能量和用于裂纹扩展的能量。然后通过模拟的顺应性校准程序获得能量释放率。通过对这种常用的数据缩减方法进行建模并将结果与​​通过裂缝闭合获得的结果进行比较,可以评估材料的固有韧性与测试用户所感知到的韧性之比。对于这两种测试,均根据物理上实际的摩擦系数进行评估,对于四点式端部弯曲挠性测试,则根据内跨距与外跨距之比进行评估。结果表明,摩擦对感知韧性的影响在四点上要比在三点弯曲端部开槽的挠曲几何形状大得多,但是适当选择四点测试几何形状可以使摩擦的影响相当大。小。

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