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A method for measuring mode I crack tip constraint under static and dynamic loading conditions

机译:一种在静态和动态载荷条件下裂纹尖端约束的测量方法

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摘要

A novel experimental technique for measuring crack tipT-stress, and hence in-plane crack tip constraint, in elastic materials has been developed. The method exploits optimal positioning of stacked strain gage rosette near a mode I crack tip such that the influence of dominant singular strains is negated in order to determineT-stress accurately. The method is demonstrated for quasi-static and low-velocity impact loading conditions and two values of crack length to plate width ratios (a/W). By coupling this new method with the Dally-Sanford single strain gage method for measuring the mode I stress intensity factorK I , the crack tip biaxiality parameter $beta = Tsqrt {{{pi a} mathord{left/ {vphantom {{pi a} K}} right. kern-0em} K}} $ is also measured experimentally. Complementary small strain, static and dynamic finite element simulations are carried out under plane stress conditions. Time histories ofK I andT-stress are computed by regression analysis of the displacement and stress fields, respectively. The experimental results are in good agreement with those obtained from numerical simulations. Preliminary data for critical values ofK I and β for dynamic experiments involving epoxy specimens are reported. Dynamic crack initiation toughness shows an increasing trend as β becomes more negative at higher impact velocities.
机译:已经开发了一种新的实验技术,用于测量弹性材料中的裂纹尖端T应力,从而测量面内裂纹尖端约束。该方法在I型裂纹尖端附近采用了堆叠应变计花环的最佳定位,从而消除了主要奇异应变的影响,以便准确确定T应力。该方法针对准静态和低速冲击载荷条件以及裂纹长度与板宽之比的两个值(a / W)进行了证明。通过将该新方法与Dally-Sanford单应变仪方法相结合以测量模式I应力强度因子K I ,裂纹尖端双轴性参数$ beta = Tsqrt {{{pi a} mathord {left / {vphantom { {pi a} K}}对。 kern-0em} K}} $也可以通过实验进行测量。在平面应力条件下进行互补的小应变,静态和动态有限元模拟。分别通过位移场和应力场的回归分析,计算出K I 和T应力的时间历程。实验结果与数值模拟结果吻合良好。报告了涉及环氧树脂样品的动态实验的K I 和β临界值的初步数据。动态裂纹萌生韧性显示出增加的趋势,因为在更高的冲击速度下β变得越来越负。

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