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Realizing a full volume component by in-situ welding during electron beam melting process AITranslate

Singapore Institute of Manufacturing Technology;Singapore Institute of Manufacturing Technology;Singapore Institute of Manufacturing Technology;Singapore Institute of Manufacturing Technology;Singapore Institute of Manufacturing Technology; South University of Science and Technology of China;Singapore Institute of Manufacturing Technology;Singapore Institute of Manufacturing Technology
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Publisher: Elsevier
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Abstract AITranslate

As one of the powder-bed-fusion additive manufacturing processes, electron beam melting (EBM) is able to produce metal parts directly. Many small volume components with high quality have been fabricated using the EBM technology. However, there are only few reports on the EBM fabrication of medium-sized components. One of the reasons is the lack of energy issue when the scan length is too long, which results in the generation of lack of fusion pores. This, in turn, drastically degrades the mechanical properties of the EBM printed parts. Here, we firstly report an in-situ welding process to overcome the lack of energy issue caused by the long scan length during EBM process. After the investigation of the corresponding microstructure, microhardness and tensile properties, it is revealed that the in-situ welding zone is fully joined and the mechanical properties of the in-situ welded part are comparable to that of the wrought counterpart. This implies that medium-sized components can be successfully fabricated using the EBM, with no compromise on the mechanical properties.

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DOI:https://doi.org/10.1016/j.addma.2018.05.022

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Citation Information:

As one of the powder-bed-fusion additive manufacturing processes, electron beam melting (EBM) is able to produce metal parts directly. Many small volume components with high quality have been fabricated using the EBM technology. However, there are only few reports on the EBM fabrication of medium-sized components. One of the reasons is the lack of energy issue when the scan length is too long, which results in the generation of lack of fusion pores. This, in turn, drastically degrades the mechanical properties of the EBM printed parts. Here, we firstly report an in-situ welding process to overcome the lack of energy issue caused by the long scan length during EBM process. After the investigation of the corresponding microstructure, microhardness and tensile properties, it is revealed that the in-situ welding zone is fully joined and the mechanical properties of the in-situ welded part are comparable to that of the wrought counterpart. This implies that medium-sized components can be successfully fabricated using the EBM, with no compromise on the mechanical properties.

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GB/T 7714-2015 [1] Pan Wang, Mui Ling Sharon Nai, Wai Jack Sin, et al. Additive Manufacturing, 2018(22). DOI:10.1016/j.addma.2018.05.022.
MLA [1] Pan Wang, et al., Additive Manufacturing, no. 22, 2018, https://doi.org/10.1016/j.addma.2018.05.022.
APA [1] Pan Wang, Mui Ling Sharon Nai, Wai Jack Sin, Shenglu Lu, Baicheng Zhang, Jiaming Bai, Jie Song, & Jun Wei. (2018). Additive Manufacturing(22). https://doi.org/10.1016/j.addma.2018.05.022
IEEE [1] Pan Wang, Mui Ling Sharon Nai, Wai Jack Sin, Shenglu Lu, Baicheng Zhang, Jiaming Bai, Jie Song, and Jun Wei, Additive Manufacturing, no. 22, 2018, doi: 10.1016/j.addma.2018.05.022.