首页> 外文期刊>International Journal of Machine Tools & Manufacture: Design, research and application >In-situ synthesised interlayer enhances bonding strength in additively manufactured multi-material hybrid tooling
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In-situ synthesised interlayer enhances bonding strength in additively manufactured multi-material hybrid tooling

机译:原位合成的中间层增强了橡皮筋强度的粘接强度,包括多材料混合工具

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摘要

Interfacial bonding reliability is a critical issue of metallic multi-material components due to the tendency to delaminate arising from the difference in physical and chemical properties between materials. Here we propose a novel approach to enhance the interfacial bonding through the in-situ synthesis of an interlayer in additively manufactured multi-material hybrid tooling via laser powder bed fusion (LPBF). The effects of laser parameters on tuning the interlayer formation and resulting bonding strength are investigated. The interfacial microstructure evolution, the in-situ formation mechanism of the interlayer, and the interface bond mechanisms are investigated. Intense Marangoni convection and inter-diffusion between two materials in interfacial melt pools, along with Cr redistribution segregation, facilitate the in-situ formation of a Cr-rich interlayer during LPBF process. The in-situ phase transformation behaviour in the interlayer is explained through the Schaeffler-Delong diagram. Mechanical tests, including flexural, tensile and nano-hardness tests, reveal that a strengthened/hardened interface (stronger than parent material) is obtained. The underlying interfacial bonding mechanism of the multimaterials is discussed in terms of the in-situ formed interlayer, Cr segregation and elemental diffusion, in-situ austenite formation together with intrinsic characteristics of the LPBF process. It is found that the in-situ formed interlayer serves to alleviate the interfacial mismatch with Cr-segregation leading to strengthening in the interface, while in-situ austenite formation counteracts residual tensile stress in the melt pool. Hybrid tooling developed in this way integrates complex geometry, improved productivity and high bonding strength.
机译:界面粘合可靠性是金属多材料成分的临界问题,由于材料之间的物理和化学性质差异产生分层而导致的趋势。在这里,我们提出了一种新颖的方法来增强通过原位合成通过激光粉床融合(LPBF)的含有含有加瘾的多材料混合工具的中间层的夹层的界面键合。研究了激光参数在调节中间层和所得到的粘合强度的影响。研究了界面微观结构的演化,中间层的原位形成机理和界面粘合机构。在界面熔体池中的两种材料之间的强烈玛龙龙对流和扩散,以及Cr再分配分离,促进LPBF过程中富含Cr的中间层的原位形成。中间层中的原位相变行为通过Schaeffler-Delong图解释。机械测试,包括弯曲,拉伸和纳米硬度试验,揭示了加强/硬化界面(比母体材料强)。在原位形成的中间层,Cr偏析和元素扩散,原位奥氏体形成与LPBF过程的内在特征一起讨论多国内的底层界面键合机理。发现原位形成的中间层用于缓解具有Cr偏析的界面失配,导致界面中的加强,而原位奥氏体形成抵消了熔体库中的残余拉伸应力。以这种方式开发的混合动力车工具集成了复杂的几何形状,提高了生产率和高粘合强度。

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