实验和数值研究:三层板材 AL 6061-T6 与中间层 Ti-6Al-4V 的摩擦搅拌焊接

IF 1.6 4区 材料科学 Q2 Materials Science Transactions of The Indian Institute of Metals Pub Date : 2024-08-13 DOI:10.1007/s12666-024-03417-6
Esmaeil Mirmahdi, Davood Afshari, Zuheir Barsoum, Mohammad Karimi Ivanaki, Alireza Ghasemi
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引用次数: 0

摘要

研究人员使用搅拌摩擦焊(FSW)对带有 Ti-6Al-4V 钛合金夹层的 6061-T6 铝板进行了研究,以实现牢固的粘接。通过改变最佳焊接条件--旋转速度和横移速度,评估了焊接参数对焊接质量和强度的影响。制备了横截面为 28 毫米、表面光滑度极佳的焊接样品,并利用 X 射线衍射 (XRD) 技术分析测量了残余应力。这项研究调查了工具几何形状和类型对焊接试样中残余应力的影响,并强调了选择适当的工具几何形状和类型以最大限度地减少残余应力的重要性。此外,还使用热建模方法对 FSW 过程进行了有限元模拟,以计算产生的热量,并使用 ABAQUS 软件预测残余应力。将数值模拟获得的残余应力值与实验测量值进行比较,证明该模型能够充分预测 FSW 中的残余应力。实验和数值结果表明,由于热梯度的增加,转速和工具进给量的增加导致焊接区域的应力增大。对微观结构的研究表明,在焊接过程中,焊缝截面变得比母材更小。在最佳条件下获得的极限抗拉强度和显微硬度分别为 245 兆帕和 108.2 HV。拉伸试验的断裂面显示为软断裂类型,其特征是三层板材上存在孔洞和凹陷。
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Experimental and Numerical Study: Friction Stir Welding on Three-layer Sheets AL 6061-T6 with the Middle Layer Ti–6Al–4V

Aluminum 6061-T6 sheets with a Ti–6Al–4V titanium alloy interlayer were investigated using friction stir welding (FSW) to achieve strong bonding. The influence of welding parameters on welding quality and strength was assessed by varying rotational speeds and traverse speeds, the optimal welding conditions. Welded samples with a cross section of 28 mm and excellent surface smoothness were prepared and analyzed to measure the residual stress using X-ray diffraction (XRD) techniques. This study investigated the effect of tool geometry and type on residual stresses in welded specimens and highlighted the importance of choosing the appropriate tool geometry and type to minimize residual stresses. Furthermore, finite element simulation of the FSW process was conducted using a thermal modeling approach to calculate the heat generated and predict residual stresses using ABAQUS software. Comparison of the residual stress values obtained from numerical simulations with experimental measurements demonstrated the model’s ability to predict residual stresses in FSW adequately. The experimental and numerical results revealed that an increase in rotational speed and tool feeding led to higher stresses in the welded region due to an increased thermal gradient. Examination of the microstructure shows that during the welding process, the weld cross-section has become smaller than the base metal. The ultimate tensile strength and microhardness obtained in optimal conditions were 245 MPa and 108.2 HV, respectively. Examining the fracture surfaces from the tensile tests showed the soft fracture type, which is characterized by the presence of holes and depressions in the three-layer sheet.

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来源期刊
Transactions of The Indian Institute of Metals
Transactions of The Indian Institute of Metals Materials Science-Metals and Alloys
CiteScore
2.60
自引率
6.20%
发文量
3
期刊介绍: Transactions of the Indian Institute of Metals publishes original research articles and reviews on ferrous and non-ferrous process metallurgy, structural and functional materials development, physical, chemical and mechanical metallurgy, welding science and technology, metal forming, particulate technologies, surface engineering, characterization of materials, thermodynamics and kinetics, materials modelling and other allied branches of Metallurgy and Materials Engineering. Transactions of the Indian Institute of Metals also serves as a forum for rapid publication of recent advances in all the branches of Metallurgy and Materials Engineering. The technical content of the journal is scrutinized by the Editorial Board composed of experts from various disciplines of Metallurgy and Materials Engineering. Editorial Advisory Board provides valuable advice on technical matters related to the publication of Transactions.
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