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Development of a New High Strength Alloy from Low Alloy Steel Wire by Innovative Additional Cold Wire Feeding Used in Wire Arc Additive Manufacturing.通过用于电弧增材制造的创新型附加冷丝送料从低合金钢线材开发新型高强度合金
3D Print Addit Manuf. 2025 Jun 16;12(3):283-287. doi: 10.1089/3dp.2023.0207. eCollection 2025 Jun.
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本文引用的文献

1
Defects in Metal Additive Manufacturing: Formation, Process Parameters, Postprocessing, Challenges, Economic Aspects, and Future Research Directions.金属增材制造中的缺陷:形成、工艺参数、后处理、挑战、经济方面及未来研究方向
3D Print Addit Manuf. 2024 Aug 20;11(4):e1629-e1655. doi: 10.1089/3dp.2022.0344. eCollection 2024 Aug.
2
Mechanical Properties, Microstructure, and Actuation Behavior of Wire Arc Additive Manufactured Nitinol: Titanium Bimetallic Structures.电弧增材制造镍钛诺:钛双金属结构的力学性能、微观结构及驱动行为
3D Print Addit Manuf. 2024 Feb 1;11(1):143-151. doi: 10.1089/3dp.2021.0324. Epub 2024 Feb 15.

通过用于电弧增材制造的创新型附加冷丝送料从低合金钢线材开发新型高强度合金

Development of a New High Strength Alloy from Low Alloy Steel Wire by Innovative Additional Cold Wire Feeding Used in Wire Arc Additive Manufacturing.

作者信息

Sarıbıyık Ziya, Ayan Yusuf, Kahraman Nizamettin

机构信息

Manufacturing Engineering, Karabuk University, Karabük, Türkiye.

Mechatronics Engineering, Karabuk University, Karabük, Türkiye.

出版信息

3D Print Addit Manuf. 2025 Jun 16;12(3):283-287. doi: 10.1089/3dp.2023.0207. eCollection 2025 Jun.

DOI:10.1089/3dp.2023.0207
PMID:40538573
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12174826/
Abstract

One of the most important features of the wire arc additive manufacturing (WAAM) is the ability to produce new structures from different materials. Thanks to the ease of application of the WAAM, more than one same or different material can be involved in the production process. Thus, WAAM has the potential to produce new material structures from raw wire metals with different chemical contents. In this study, it was aimed to produce a new alloy structure using WAAM. A novel cold wire feeding technique with an external system and gas metal arc welding (GMAW) process was implemented for the fabricating of a new alloy part. In the fabrication process, two different grades and ratios of ER70S-6 (90%) and 316LSi (10%) steel wires were used and melted simultaneously. The new alloy structure was successfully fabricated, and significant changes were found in the microstructure and tensile strength because of Cr and Ni elements transferred from the secondary wire (316LSi). In the microstructure of the new alloy, structures such as acicular ferrite, martensite, and bainite were observed. As a result of the different fabrication approach applied, a significant increase in tensile strength was found. The tensile strength of the new alloy structure exceeded 1000 MPa and almost 100% increase in strength was observed compared to single-material structures. In addition, the ductility of the produced structure was found to be sufficient. The study showed that new alloys with improved mechanical properties can be produced with the cold wire feeding + GMAW approach.

摘要

电弧增材制造(WAAM)最重要的特点之一是能够用不同材料制造出新结构。由于WAAM易于应用,在生产过程中可以使用一种以上相同或不同的材料。因此,WAAM有潜力用具有不同化学成分的原始金属丝制造出新的材料结构。在本研究中,旨在使用WAAM制造一种新的合金结构。为了制造新的合金部件,采用了一种带有外部系统的新型冷丝送进技术和气体保护金属极电弧焊(GMAW)工艺。在制造过程中,使用了两种不同等级和比例的ER70S-6(90%)和316LSi(10%)钢丝,并同时熔化。成功制造出了新的合金结构,由于从辅助焊丝(316LSi)转移过来的Cr和Ni元素,其微观结构和抗拉强度发生了显著变化。在新合金的微观结构中,观察到了针状铁素体、马氏体和贝氏体等组织。由于采用了不同的制造方法,抗拉强度有了显著提高。新合金结构的抗拉强度超过1000MPa,与单材料结构相比,强度提高了近100%。此外,所生产结构的延展性也足够。研究表明,采用冷丝送进+GMAW方法可以制造出具有改善力学性能的新合金。