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Stability of crystallographic texture in laser powder bed fusion: Understanding the competition of crystal growth using a single crystalline seed AITranslate

Osaka University; Osaka University; Osaka University; Osaka University
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Publisher: Elsevier
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Abstract AITranslate

Highlights • The crystallographic texture stability during LPBF fabrication was investigated. • The texture was stable when “the laser scan direction” matched the <100>. • The orientation along the build direction did not impact the texture stability. In metal additive manufacturing, crystallographic orientation control is a promising method for tailoring the functions of metallic parts. However, despite its importance in the fabrication of texture-controlled functional parts, the stability of the crystallographic texture is not widely discussed. Herein, the crystallographic texture stability under laser powder bed fusion was investigated. Two methodologies were employed. One is that a laser scanning strategy was alternately changed for a specific number of layers. The other is a “seeding” experiment in which single-crystalline substrates with controlled crystallographic orientations in the building (z-) direction and the xy-plane (perpendicular to the building direction) were used as the starting substrate. The transient zone width, where the crystallographic orientation was inherited from the layer beneath, was analyzed to evaluate the texture stability. The crystallographic direction of the seed within the xy-plane, rather than the building direction, determined the transient zone width, i.e., the texture stability. In particular, the texture in the newly deposited portion was stable when the laser scanning direction matched the <100> orientation in the underneath layer, otherwise the crystal orientation switched rapidly, such that the <100> orientation was parallel to the scanning direction. Interestingly, the crystallographic orientation along the building direction in the underneath layer hardly impacted the stability of the texture. Therefore, for the first time, it has been clarified that the <100> orientation in the scanning direction, rather than the building direction, was preferentially stabilized, whereas the orientation in the other directions secondary stabilized. Graphical Download : Download high-res image (636KB) Download : Download full-size image

KeyWords AITranslate

Laser powder bed fusion Crystallographic texture Stability Crystal growth Single crystal
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Basic Information:

DOI:https://doi.org/10.1016/j.addma.2021.102004

Chinese Library Classification Number:

Citation Information:

Highlights • The crystallographic texture stability during LPBF fabrication was investigated. • The texture was stable when “the laser scan direction” matched the <100>. • The orientation along the build direction did not impact the texture stability. In metal additive manufacturing, crystallographic orientation control is a promising method for tailoring the functions of metallic parts. However, despite its importance in the fabrication of texture-controlled functional parts, the stability of the crystallographic texture is not widely discussed. Herein, the crystallographic texture stability under laser powder bed fusion was investigated. Two methodologies were employed. One is that a laser scanning strategy was alternately changed for a specific number of layers. The other is a “seeding” experiment in which single-crystalline substrates with controlled crystallographic orientations in the building (z-) direction and the xy-plane (perpendicular to the building direction) were used as the starting substrate. The transient zone width, where the crystallographic orientation was inherited from the layer beneath, was analyzed to evaluate the texture stability. The crystallographic direction of the seed within the xy-plane, rather than the building direction, determined the transient zone width, i.e., the texture stability. In particular, the texture in the newly deposited portion was stable when the laser scanning direction matched the <100> orientation in the underneath layer, otherwise the crystal orientation switched rapidly, such that the <100> orientation was parallel to the scanning direction. Interestingly, the crystallographic orientation along the building direction in the underneath layer hardly impacted the stability of the texture. Therefore, for the first time, it has been clarified that the <100> orientation in the scanning direction, rather than the building direction, was preferentially stabilized, whereas the orientation in the other directions secondary stabilized. Graphical Download : Download high-res image (636KB) Download : Download full-size image

quote

GB/T 7714-2015 [1] Takuya Ishimoto, Koji Hagihara, Kenta Hisamoto, et al. Additive Manufacturing, 2021(43). DOI:10.1016/j.addma.2021.102004.
MLA [1] Takuya Ishimoto, et al., Additive Manufacturing, no. 43, 2021, https://doi.org/10.1016/j.addma.2021.102004.
APA [1] Takuya Ishimoto, Koji Hagihara, Kenta Hisamoto, & Takayoshi Nakano. (2021). Additive Manufacturing(43). https://doi.org/10.1016/j.addma.2021.102004
IEEE [1] Takuya Ishimoto, Koji Hagihara, Kenta Hisamoto, and Takayoshi Nakano, Additive Manufacturing, no. 43, 2021, doi: 10.1016/j.addma.2021.102004. keywords: {Laser powder bed fusion;Crystallographic texture;Stability;Crystal growth;Single crystal}