Achieving high-strength joining with superior metallurgical bonding in tungsten/steel via in-situ element-selective directional diffusion

IF 7.5 2区 材料科学 Q1 ENGINEERING, INDUSTRIAL
Huaqi Xu , Wenjing Zhang , Xiaonan Qi , Wanjing Wang , Ji-Chao Wang , Ye Jiao , Kailun Li , Shubo Zhang , Mingshen Li , Yuping Xu , Haishan Zhou , Ming-Hsien Lee , Wei Liu , Guangnan Luo
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Abstract

To address the weak metallurgical bonding at interfaces in traditional tungsten (W)/steel joints with copper (Cu) interlayers, this study proposes a strategy of in-situ element-selective directional diffusion, achieving high-strength metallurgical transition bonding at both W/Cu and Cu/steel interfaces. Specifically, by introducing a Cu-Ge interlayer at the W/steel interface, multi-physics-driven forces (gravity and temperature fields) were utilized to enable the selective directional diffusion of Fe and Cr from the steel across the Cu-based interlayer. These elements migrated through the Cu interlayer, forming an Fe-rich deposition layer at the W/Cu interface, realizing a metallurgically bonded W/Fe/Cu transition. Furthermore, compared to the brittle Fe₂W phase typically formed at conventional W/Fe interfaces, this study achieved in-situ toughening of the Fe₂W phase through lattice distortion and stacking faults engineering. Simultaneously, the entire distribution of Cu along steel grain boundaries formed a discontinuous reticulate Cu/steel heterostructure, effectively addressing the low bonding strength of conventional Cu/steel interfaces. Ultimately, an unprecedented shear strength of 380 MPa was attained. This work elucidates the mechanisms of interfacial metallurgical bonding, strengthening, and in-situ modification of brittle phases in dissimilar metal joints with significant thermophysical property differences. It provides a novel pathway for high-strength metallurgical joining of dissimilar metals in harsh service environments and offers new insights into the modification and toughening of brittle phases at welded interfaces.
通过原位元素选择性定向扩散实现钨/钢的高强度连接和优异的冶金结合
针对传统钨(W)/钢(Cu)界面界面冶金结合薄弱的问题,本研究提出了原位元素选择性定向扩散策略,在W/Cu和Cu/钢界面上实现高强度的冶金过渡结合。具体来说,通过在W/钢界面上引入Cu-Ge夹层,利用多物理场驱动的力(重力和温度场)使Fe和Cr从钢中选择性地定向扩散到cu基夹层上。这些元素通过Cu层迁移,在W/Cu界面处形成富铁沉积层,实现了金属结合的W/Fe/Cu过渡。此外,与传统W/Fe界面形成的脆性Fe₂W相相比,本研究通过晶格畸变和层错工程实现了Fe₂W相的原位增韧。同时,Cu沿晶界的整体分布形成不连续的网状Cu/钢异质结构,有效地解决了传统Cu/钢界面结合强度低的问题。最终达到了前所未有的380 MPa的抗剪强度。本工作阐明了不同金属接头中具有显著热物理性质差异的界面冶金结合、强化和脆性相原位改性的机制。它为异种金属在恶劣使用环境下的高强度冶金连接提供了一条新途径,并为焊接界面脆性相的改性和增韧提供了新的见解。
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来源期刊
Journal of Materials Processing Technology
Journal of Materials Processing Technology 工程技术-材料科学:综合
CiteScore
12.60
自引率
4.80%
发文量
403
审稿时长
29 days
期刊介绍: The Journal of Materials Processing Technology covers the processing techniques used in manufacturing components from metals and other materials. The journal aims to publish full research papers of original, significant and rigorous work and so to contribute to increased production efficiency and improved component performance. Areas of interest to the journal include: • Casting, forming and machining • Additive processing and joining technologies • The evolution of material properties under the specific conditions met in manufacturing processes • Surface engineering when it relates specifically to a manufacturing process • Design and behavior of equipment and tools.
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