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Influence of Pre-Stress Magnitude on Fatigue Crack Growth Behavior of Al-Alloy

机译:预应力大小对铝合金疲劳裂纹扩展行为的影响

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摘要

From tensile overload to shot peening, there have been many attempts to extend the fatigue properties of metals. A key challenge with the cold work processes is that it is hard to avoid generation of harmful effects (e.g., the increase of surface roughness caused by shot peening). Pre-stress has a positive effect on improving the fatigue property of metals, and it is expected to strength Al-alloy without introducing adverse factors. Four pre-stresses ranged from 120 to 183 MPa were incorporated in four cracked extended-compact tension specimens by application of different load based on the measured stress–strain curve. Fatigue crack growth behavior and fractured characteristic of the pre-stressed specimens were investigated systematically and were compared with those of an as-received specimen. The results show that the pre-stress ranged from 120 to 183 MPa significantly improved the fatigue resistance of Al-alloy by comparison with that of the as-received specimen. With increasing pre-stress, the fatigue life first increases, then decrease, and the specimen with pre-stress of 158 MPa has the longest fatigue life. For the manner of pre-stress, no adverse factor was observed for increasing fatigue property, and the induced pre-stress reduced gradually till to disappear during subsequent fatigue cycling.
机译:从拉伸过载到喷丸处理,已经进行了许多尝试来扩展金属的疲劳性能。冷加工过程的主要挑战是难以避免产生有害影响(例如,喷丸处理导致表面粗糙度增加)。预应力对改善金属的疲劳性能具有积极作用,并且有望在不引入不利因素的情况下增强铝合金的强度。根据测得的应力-应变曲线,通过施加不同的载荷,将四个范围从120到183 MPa的预应力并入四个破裂的紧凑型拉伸试样中。对预应力试样的疲劳裂纹扩展行为和断裂特性进行了系统的研究,并与已接受的试样进行了比较。结果表明,与原样相比,预​​应力范围为120至183 MPa显着提高了铝合金的疲劳强度。随着预应力的增加,疲劳寿命先增加,然后减小,预应力为158 MPa的试样的疲劳寿命最长。对于预应力方式,没有观察到增加疲劳性能的不利因素,并且诱导的预应力逐渐减小,直到在随后的疲劳循环中消失。

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