Interfacial characterization and bonding performance of additively manufactured GH4169/cast iron bimetal

IF 10.3 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
Yixuan Fu, Jinxiang Liu, Weiqing Huang, Yungui Liu
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引用次数: 0

Abstract

Bimetal has excellent potential for high-power density cylinder heads due to its design flexibility, functionality, and economy. Interfacial characterization and bonding performance affect the reliability of the bimetal in service. In this paper, the GH4169/cast iron bimetal has been manufactured by the Laser Powder Bed Fusion (L-PBF). The morphology, microstructure, and phases of the GH4169/cast iron bimetallic bonding interface were characterized, and the element distribution was analyzed qualitatively and quantitatively. The nano-hardness and nano-elastic modulus of the GH4169/cast iron bimetallic bonding interface were tested. Shear tests were used to characterize the bonding strength of the GH4169/cast iron bimetallic bonding interface. The results show that the bonding interface of the GH4169/cast iron bimetal is wavy and shows excellent metallurgical bonding. Traces of cyclic flow formed at the bonding interface due to the low energy density and the rapid solidification rate of the molten pool, which prevent the elements from mixing and diffusing sufficiently. As the energy density increases, the traces of cyclic flow at the bonding interface gradually decrease, and the width of the bimetallic diffusion zone (DZ) grows. The bonding of the GH4169/cast iron bimetal is mainly accompanied by the melting and diffusion of Ni, Fe, and C elements to form Ni–Fe compounds, carbides, etc. Spearman correlation analysis reveals that the shear strength shows an apparent positive correlation with the nano-hardness of the DZ, and higher nano-hardness of the DZ improves the bonding strength of the bimetallic bonding interface. The morphology, element distribution, and properties of the bonding interface are all factors that affect the bonding performance. This study can provide data support and a theoretical basis for applying the GH4169/cast iron bimetal from the material to the structural level.
添加式制造的 GH4169/铸铁双金属的界面特性和粘接性能
双金属因其设计灵活性、功能性和经济性,在高功率密度气缸盖方面具有巨大潜力。界面表征和粘接性能会影响双金属在使用中的可靠性。本文采用激光粉末床融合(L-PBF)技术制造了 GH4169/铸铁双金属。对 GH4169/铸铁双金属结合界面的形态、微观结构和相进行了表征,并对元素分布进行了定性和定量分析。测试了 GH4169/铸铁双金属结合界面的纳米硬度和纳米弹性模量。剪切试验用于表征 GH4169/铸铁双金属结合界面的结合强度。结果表明,GH4169/铸铁双金属的结合界面呈波浪形,显示出良好的冶金结合。由于熔池能量密度低,凝固速度快,元素无法充分混合和扩散,因此在结合界面形成了循环流动的痕迹。随着能量密度的增加,结合界面上的循环流动痕迹逐渐减少,双金属扩散区(DZ)的宽度逐渐增大。GH4169/ 铸铁双金属的结合主要伴随着 Ni、Fe 和 C 元素的熔化和扩散,形成 Ni-Fe 化合物、碳化物等。斯皮尔曼相关分析表明,剪切强度与 DZ 的纳米硬度呈明显的正相关,DZ 的纳米硬度越高,双金属结合界面的结合强度越高。结合界面的形态、元素分布和性质都是影响结合性能的因素。这项研究可为 GH4169/铸铁双金属从材料到结构层面的应用提供数据支持和理论依据。
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
Additive manufacturing
Additive manufacturing Materials Science-General Materials Science
CiteScore
19.80
自引率
12.70%
发文量
648
审稿时长
35 days
期刊介绍: Additive Manufacturing stands as a peer-reviewed journal dedicated to delivering high-quality research papers and reviews in the field of additive manufacturing, serving both academia and industry leaders. The journal's objective is to recognize the innovative essence of additive manufacturing and its diverse applications, providing a comprehensive overview of current developments and future prospects. The transformative potential of additive manufacturing technologies in product design and manufacturing is poised to disrupt traditional approaches. In response to this paradigm shift, a distinctive and comprehensive publication outlet was essential. Additive Manufacturing fulfills this need, offering a platform for engineers, materials scientists, and practitioners across academia and various industries to document and share innovations in these evolving technologies.
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