功能级碳钢 - 不锈钢 316L - Inconel 625 的线弧增材制造:微结构表征和机械性能

IF 3.8 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Advanced Joining Processes Pub Date : 2024-01-23 DOI:10.1016/j.jajp.2024.100194
Vahid Amiri, Homam Naffakh-Moosavy
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引用次数: 0

摘要

这项研究利用线弧快速成型技术,采用梯度法将普通碳钢连接到不锈钢 316 L,然后再连接到 Inconel 625。研究调查了功能分级材料(FGM)结构的质量、连续性、缺陷形成、微观结构以及梯度区域的机械性能。调查显示,普通碳钢和不锈钢 316 L 以及不锈钢 316 L 和 Inconel 625 之间的冶金结合牢固且无缺陷。不锈钢 316 L 的微观结构是铁素体-奥氏体(FA)固态转变的结果,奥氏体基体中存在大量三角铁素体。在 Inconel 625 中,由于铌和钼等合金元素在凝固过程中发生微偏析,在树枝状臂之间不连续地形成了 Laves 金属间相。Inconel 625、不锈钢 316 L 和普通碳钢的硬度值分别为 194-257 HV、171-178 HV 和 159-170 HV。极限拉伸强度、屈服强度和伸长率分别为 487 ± 10 兆帕、300 ± 6 兆帕和 40 % ± 0.15。拉伸测试样品在普通碳钢一侧失效,表明界面处的拉伸强度较高,两种合金之间的结合良好。断裂面上均匀的小凹痕证实了韧性断裂模式。这项研究证明了线弧快速成型技术(WAAM)可用于制造具有所需性能的梯度材料。
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Wire arc additive manufacturing of functionally graded carbon steel - stainless steel 316L - Inconel 625: Microstructural characterization and mechanical behavior

This work utilized a gradient method of joining plain carbon steel to stainless steel 316 L and then to Inconel 625 using wire arc additive manufacturing. The research investigated the quality of Functionally Graded Materials (FGM) structure, continuity, defect formation, microstructure, and mechanical properties of gradient regions. The investigation showed a strong, defect-free metallurgical bond between plain carbon steel and stainless steel 316 L and stainless steel 316 L and Inconel 625. The microstructure of stainless steel 316 L resulted from the solid-state transformation of ferrite-austenite (FA), with a significant presence of delta ferrite in the austenite matrix. In Inconel 625, the Laves intermetallic phase formed discontinuously between dendritic arms due to the microsegregation of alloy elements like niobium and molybdenum during solidification. The hardness values of Inconel 625, stainless steel 316 L, and plain carbon steel were 194–257 HV, 171–178 HV, and 159–170 HV, respectively. The ultimate tensile strength, yield strength, and elongation were achieved at 487 ± 10 MPa, 300 ± 6 MPa, and 40 % ± 0.15, respectively. The tensile test samples failed on the plain carbon steel side, indicating higher tensile strength at the interface and a well-bonded joint between the two alloys. Small, homogeneous dimples on the fracture surface confirmed the ductile fracture mode. The research demonstrates the use of wire-arc additive manufacturing (WAAM) to fabricate gradient materials with the required properties.

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来源期刊
CiteScore
7.10
自引率
9.80%
发文量
58
审稿时长
44 days
期刊最新文献
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