Enhanced inertia friction welding of aluminum alloy and high-strength steel using CrCoNi interlayer: Microstructural and mechanical characterization

IF 1.4 4区 物理与天体物理 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY AIP Advances Pub Date : 2024-09-11 DOI:10.1063/5.0221957
Qiming Jiang, Wei Wu, Hongrui Yang, Kunhang Li, Guangchuan Zhang, Hong Huang
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Abstract

The significant disparities in physical and chemical properties between aluminum alloy and high-strength steel pose substantial challenges for conventional friction joining techniques. To address this issue, this study proposes a novel approach utilizing inertial friction welding with an interlayer to join these dissimilar materials. A CrCoNi medium entropy alloy sheet was selected as the interlayer due to its intermediate melting point, thermal conductivity, strength, and surface hardness between 6061-T6 aluminum alloy and 42CrMo steel, as well as its high element mixing entropy. These properties were deemed crucial for balancing interface heat generation and regulation the formation of intermetallic compounds. The experimental procedure involved embedding the CrCoNi sheet into the end face of the 6061-T6 aluminum alloy, followed by the application of IFW to join the aluminum alloy with 42CrMo high-strength steel. This investigation focuses on examining the effects of three distinct friction speeds (3800, 4000, and 4200 rpm) on the microstructural characteristics and mechanical properties of the regulating joints with the CrCoNi interlayer. Results demonstrate that the CrCoNi enhances the temperature at the steel-side interface through friction with 42CrMo steel and 6061-T6 aluminum, combined with adjustments in the friction sequence and duration, promoting plastic deformation. The axial transfer of heat creates a temperature gradient at the joint, enabling low-temperature welding on the aluminum side and forming a mechanical interlocking structure at the interface. The diffusion of Cr, Co, and Ni elements regulates the type and thickness of interfacial intermetallic compounds, ultimately enhancing the joint's strength. The thickness of the intermetallic compounds AlNi3, FeAl3, AlCo, and Fe2Al5 formed at the interface is less than 2 µm. A phase transformation occurred at the 42CrMo high-strength steel interface, leading to the formation of numerous needle-like martensites, which increased the Vickers hardness in the welding seam to 763.9 HV. The joint's tensile strength initially increased and then decreased with increasing friction speed, reaching a maximum of 168.7 MPa at 4000 rpm, which is more than 60% of the aluminum alloy base material's tensile strength.
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使用铬钴镍中间膜增强铝合金和高强度钢的惯性摩擦焊接:微观结构和机械特性分析
铝合金和高强度钢在物理和化学性质上的巨大差异给传统的摩擦连接技术带来了巨大挑战。为解决这一问题,本研究提出了一种利用带中间膜的惯性摩擦焊来连接这些异种材料的新方法。由于铬钴镍中熵合金板的熔点、导热性、强度和表面硬度介于 6061-T6 铝合金和 42CrMo 钢之间,而且元素混合熵较高,因此被选为中间膜。这些特性对于平衡界面发热和调节金属间化合物的形成至关重要。实验过程包括将铬钴镍板嵌入 6061-T6 铝合金的端面,然后应用工频焊将铝合金与 42CrMo 高强度钢连接起来。本研究重点考察了三种不同摩擦速度(3800、4000 和 4200 rpm)对带有铬钴镍中间膜的调节接头的微观结构特征和机械性能的影响。结果表明,铬钴镍通过与 42CrMo 钢和 6061-T6 铝的摩擦,结合摩擦顺序和持续时间的调整,提高了钢侧界面的温度,促进了塑性变形。热量的轴向传递在接头处形成了温度梯度,从而实现了铝侧的低温焊接,并在接口处形成了机械互锁结构。铬、钴和镍元素的扩散调节了界面金属间化合物的类型和厚度,最终增强了接头的强度。在界面上形成的金属间化合物 AlNi3、FeAl3、AlCo 和 Fe2Al5 的厚度小于 2 微米。42CrMo 高强度钢界面发生相变,形成大量针状马氏体,使焊缝的维氏硬度提高到 763.9 HV。接头的抗拉强度最初随摩擦速度的增加而增加,然后随摩擦速度的增加而降低,在 4000 rpm 时达到最大值 168.7 MPa,超过铝合金母材抗拉强度的 60%。
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来源期刊
AIP Advances
AIP Advances NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
2.80
自引率
6.20%
发文量
1233
审稿时长
2-4 weeks
期刊介绍: AIP Advances is an open access journal publishing in all areas of physical sciences—applied, theoretical, and experimental. All published articles are freely available to read, download, and share. The journal prides itself on the belief that all good science is important and relevant. Our inclusive scope and publication standards make it an essential outlet for scientists in the physical sciences. AIP Advances is a community-based journal, with a fast production cycle. The quick publication process and open-access model allows us to quickly distribute new scientific concepts. Our Editors, assisted by peer review, determine whether a manuscript is technically correct and original. After publication, the readership evaluates whether a manuscript is timely, relevant, or significant.
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