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Effect of Biaxial Static Loads on Fatigue Crack Propagation Behavior under Cyclic Tensile and Torsional Loading

机译:双轴静态载荷对环状拉伸扭转负荷下疲劳裂纹繁殖行为的影响

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Fatigue crack propagation behavior under cyclic tensile or torsional loading with biaxial static loads has been investigated. Two different biaxial loading systems, i.e. cyclic tensile loading with static torsional load and cyclic torsional loading with static tensile load, were employed to thin-walled tubular specimens. The crack propagation was measured by two crack gages mounted near the notch and crack opening level was measured by unloading compliance method. The directions of the fatigue crack propagated under respective biaxial loading conditions were examined and the growth rates were evaluated by using several cyclic parameters, including equivalent stress intensity factor range, DELTA K_(eff), crack tip opening displacement range, ACTD, minimum strain energy density factor range, DELTA S_(min). Furthermore, the growth rates were evaluated by effective cyclic parameters considering crack closure. It was found that the biaxial static stress superimposed on the cyclic tensile or torsional loading tests has no influence on the propagation directions of the cracks. Furthermore, it was shown that the fatigue crack growth rates under biaixial faigue loading were well expressed by using the cyclic fatigue parameters, DELTA K_(eq, eff) DELTA CTD_(eff), DELTA S_(min,eff) considering crack closure effect.
机译:研究了循环拉伸或扭转载荷下的疲劳裂纹传播行为,具有双轴静态载荷。两种不同的双轴装载系统,即具有静态扭转载荷和具有静态拉伸载荷的环状扭转载荷的循环拉伸载荷,用于薄壁管状标本。通过安装在凹口附近的两个裂缝测量值测量裂缝传播,通过卸载顺应性方法测量裂缝开口水平。检查在各自的双轴负载稳定条件下繁殖的疲劳裂纹的方向,并通过使用几个环状参数来评估生长速率,包括等效应力强度因子范围,ΔK_(eff),裂纹尖端打开位移范围,致动,最小应变能量密度因子范围,delta s_(min)。此外,考虑裂缝闭合的有效循环参数评估生长速率。发现叠加在环状拉伸或扭转负载测试上的双轴静态应力对裂缝的传播方向没有影响。此外,表明考虑到裂纹闭合效应,通过使用循环疲劳参数,δ(eff),Delta S_(Min,Eff),通过使用循环疲劳参数,ΔK_(ex,eff)迅速表达疲劳裂纹生长速率。

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