Experimentally-guided finite element modeling on global tensile responses of AA6061-T6 aluminum alloy joints by laser welding

IF 3.8 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jie Sheng , Fanrong Kong , Wei Tong
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Abstract

There are still some technical issues involved in laser welding of aluminum alloys, such as porosity, cracking, deformation, and so forth. In this study, AA6061-T6 sheets of 2.54 mm in thickness were welded by a disk laser in the bead-on-plate with two different welding parameter sets. Full penetration depths were achieved with decent surface appearances for both cases. The digital image correlation method was successfully applied in experiments to identify material model parameters of tensile welded specimens from various weldment regions. The identified parameters were utilized to numerically simulate the uniaxial tensile tests of laser-welded specimens. The effect of welded joint geometry on global tensile responses was investigated in experimentally-guided finite element modeling. With the help of X-ray computed microtomography, internal defects of the welded bead were detected and used as an input variable in the simulations. Strain development was observed through experimental and numerical data. The results showed that axial deformation was initiated at the top surface of welded metals. The considerable axial deformation occurred at the bottom surface (weld root) of the welded joint just before failure. The numerical results indicated that the geometry of welded joints greatly affected tensile responses. The results also concluded that the diameter of a single void significantly influenced tensile responses compared to its distributed location and the total volume of multiple voids with smaller sizes. Compared between the two sets of welding parameter sets used in this study, the welded joints of this particular AA6061-T6 material with the first parameter set of 2.40 kW laser power and 1.27 m/min traveling speed employed could give better tensile properties and be verified by both experimental and numerical results.

激光焊接 AA6061-T6 铝合金接头全局拉伸响应的实验指导有限元建模
铝合金激光焊接仍存在一些技术问题,如气孔、裂纹、变形等。在这项研究中,采用两种不同的焊接参数设置,用盘式激光对厚度为 2.54 毫米的 AA6061-T6 板材进行了珠焊。两种情况都达到了全熔深,且表面外观良好。在实验中成功应用了数字图像相关方法,以确定不同焊接区域拉伸焊接试样的材料模型参数。利用确定的参数对激光焊接试样的单轴拉伸试验进行了数值模拟。在实验指导的有限元建模中,研究了焊接接头几何形状对整体拉伸响应的影响。在 X 射线计算机显微层析技术的帮助下,检测出了焊接珠的内部缺陷,并将其作为模拟的输入变量。通过实验和数值数据观察了应变的发展。结果表明,轴向变形始于焊接金属的顶面。相当大的轴向变形发生在焊接接头的下表面(焊缝根部),就在失效之前。数值结果表明,焊接接头的几何形状对拉伸响应有很大影响。结果还得出结论,与空隙的分布位置和尺寸较小的多个空隙的总体积相比,单个空隙的直径对拉伸响应的影响更大。与本研究中使用的两组焊接参数相比,采用第一组参数(2.40 kW 激光功率和 1.27 m/min 移动速度)的 AA6061-T6 材料焊接接头的拉伸性能更好,实验和数值结果都验证了这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.10
自引率
9.80%
发文量
58
审稿时长
44 days
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