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Laser shock peening without absorbent coating (LSPwC) effect on 3D surface topography and mechanical properties of 6082-T651 Al alloy

机译:无吸收剂涂层(LSPwC)的激光冲击喷丸对6082-T651铝合金的3D表面形貌和力学性能的影响

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摘要

The influence of nanosecond laser pulses applied by laser shock peening without absorbent coating (LSPwC) with a Q-switched Nd:YAG laser operating at a wavelength of λ = 1064 nm on 6082-T651 Al alloy has been investigated. The first portion of the present study assesses laser shock peening effect at two pulse densities on three-dimensional (3D) surface topography characteristics. In the second part of the study, the peening effect on surface texture orientation and micro-structure modification, i.e. the effect of surface craters due to plasma and shock waves, were investigated in both longitudinal (L) and transverse (T) directions of the laser-beam movement. In the final portion of the study, the changes of mechanical properties were evaluated with a residual stress profile and Vickers micro-hardness through depth variation in the near surface layer, whereas factorial design with a response surface methodology (RSM) was applied. The surface topographic and micro-structural effect of laser shock peening were characterised with optical microscopy, InfiniteFocus® microscopy and scanning electron microscopy (SEM). Residual stress evaluation based on a hole-drilling integral method confirmed higher compression at the near surface layer (33 μm) in the transverse direction (σmin) of laser-beam movement, i.e. − 407 ± 81 MPa and − 346 ± 124 MPa, after 900 and 2500 pulses/cm2, respectively. Moreover, RSM analysis of micro-hardness through depth distribution confirmed an increase at both pulse densities, whereas LSPwC-generated shock waves showed the impact effect of up to 800 μm below the surface. Furthermore, ANOVA results confirmed the insignificant influence of LSPwC treatment direction on micro-hardness distribution indicating essentially homogeneous conditions, in both L and T directions.
机译:研究了用波长为λ= 1064 nm的Q开关Nd:YAG激光器在没有吸收涂层(LSPwC)的情况下通过激光冲击强化施加的纳秒激光脉冲对6082-T651铝合金的影响。本研究的第一部分评估了二维(3D)表面形貌特征在两个脉冲密度下的激光冲击强化效果。在研究的第二部分中,研究了沿纵向(L)和横向(T)方向对表面纹理取向和微结构改性的喷丸效应,即等离子体和冲击波引起的表面凹坑的影响。激光束运动。在研究的最后部分,通过残余应力分布和近表面层深度变化的维氏显微硬度评估了机械性能的变化,而采用了响应表面方法(RSM)进行析因设计。通过光学显微镜,InfiniteFocus®显微镜和扫描电子显微镜(SEM)表征了激光冲击喷丸的表面形貌和微观结构效应。通过打孔积分法进行的残余应力评估确认,在激光束移动的横向方向(σmin)上,近表层(33μm)处的压缩较高,即-407±81 MPa和-346±124 MPa。 900和2500脉冲/ cm2。此外,通过深度分布进行的显微硬度的RSM分析证实了两种脉冲密度的增加,而LSPwC产生的冲击波显示了在表面以下最多800μm的冲击效果。此外,方差分析结果证实了LSPwC处理方向对显微硬度分布的影响不显着,表明在L和T方向上基本均质。

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