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Gradient microstructure and vibration fatigue properties of 2024-T351 aluminium alloy treated by laser shock peening

机译:激光震动治疗2024-T351铝合金2024-T351铝合金梯度微观结构及振动疲劳性能

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摘要

To investigate the improvement in vibration fatigue and the strengthening mechanism of laser shock peening, a nanosecond laser was used to strengthen the 2024-T351 aluminium alloy. Accordingly, the microstructure, residual stress, nanohardness and surface roughness of the treated alloy were measured. Subsequently, the vibration fatigue damage and fatigue life were evaluated, and the vibration fracture morphology was observed. The results showed that the grains in the peened surface were refined. A residual stress of - 141 MPa and a nanohardness of 3.1 GPa were obtained by laser shock peening. Based on the relationship between the peened microstructure and fracture morphology, it was deduced that an increase in the grain boundaries led to a lower crack initiation rate and a higher crack initiation life. The compressive residual stress decreased the crack growth rate and increased the crack growth life. Therefore, laser shock peening increases the total vibration fatigue life by about 63.5%.
机译:为了探讨振动疲劳和激光冲击的强化机理的提高,使用纳秒激光来加强2024-T351铝合金。因此,测量了处理合金的微观结构,残余应力,纳米性和表面粗糙度。随后,评估振动疲劳损伤和疲劳寿命,观察到振动骨折形态。结果表明,灌木表面中的晶粒被精制。通过激光休克喷丸获得-141MPa的残余应力 - 141MPa和3.1GPa的纳米型。基于喷灌微观结构与断裂形态之间的关系,推导出晶界的增加导致较低的裂纹引发率和更高的裂纹引发寿命。压缩残余应力降低了裂纹生长速率并增加了裂纹生长寿命。因此,激光冲击喷丸将总振动疲劳寿命增加约63.5%。

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