电子束熔融增材制造法连接CP钒和Ti–6Al–4V

IF 3.9 Q2 ENGINEERING, INDUSTRIAL Advances in Industrial and Manufacturing Engineering Pub Date : 2022-11-01 DOI:10.1016/j.aime.2022.100102
Affaan Uthman Moosa , Everth Hernández-Nava , Mohanad Kadhim Mejbel , Iain Todd
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引用次数: 2

摘要

利用增材制造粉末床系统ARCAM S12,研究了电子束焊接在工业纯钒与Ti-6Al-4V异种焊接中的应用。首先对Ti-6Al-4V焊头进行了研究,以确定最小能量输入为37 mA、导线速度为7 mm/s的全熔透焊缝的工艺参数。钒焊头在钢板焊缝上产生了约75%的熔透,这足以进行DW实验。生产出无缺陷的全熔透焊缝。DW焊区显微组织为由粗大的βTi晶粒和细小的α'板条组成的细长枝晶组织。热成像(TI)显示熔池前面的辐射温度增加,表明在钥匙孔焊接之前存在最小能量,证实了数学计算。机械特性发现在贱金属(BM),热影响区(HAZ)和熔合区(FZ)的硬度范围相当大。拉伸试验曲线中没有屈服平台,材料在力学性能较低的一侧即钒侧失效,为Ti6Al4V与钒合金异种焊接提供了合理的工艺窗口。
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The joining of CP-vanadium and Ti–6Al–4V using the Electron Beam Melting Additive Manufacturing method

The use of electron beam welding for dissimilar welding (DW) of commercially pure (CP) vanadium to Ti–6Al–4V has been investigated via ARCAM S12, an additive manufacturing powder-bed system. Investigations of bead-on-plate welds for Ti–6Al–4V were first conducted to identify the process parameters for full penetration welds with a minimum energy input of 37 mA at a traverse speed of 7 mm/s. Vanadium bead on plate welds produced a penetration of approximately 75%, which was enough to proceed onto DW experiments. Defect-free full penetration welds were produced. The DW weld zone microstructure revealed an elongated dendritic structure comprised of bulky βTi grains and a fine substructure of α' laths. Thermal imaging (TI) showed an increment in radiance temperature ahead of the melt pool, indicating that there is a minimum energy required before keyhole welding is present, confirming mathematical calculations. Mechanical characterisation finds a fair range of hardness across both base metals (BM), heat affected zones (HAZ) and fusion zones (FZ). With no yield plateau in tensile test curves, the material is confirmed to fail on the side with lower mechanical properties, i.e., vanadium, which draws a fair process window for dissimilar welding between Ti6Al4V and vanadium alloys.

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来源期刊
Advances in Industrial and Manufacturing Engineering
Advances in Industrial and Manufacturing Engineering Engineering-Engineering (miscellaneous)
CiteScore
6.60
自引率
0.00%
发文量
31
审稿时长
18 days
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