プレゼンテーション Creep Deformation of Ti Alloys Produced by LPBF
Y. Yamabe-Mitarai (author) (この著者で検索)
Department of Advanced Material Science, Graduate School of Frontier Sciences, The University of Tokyo
;
Y. Toda (author) (この著者で検索)
ORCID https://orcid.org/0000-0002-8343-2890
National Institute for Materials Science Center for Basic Research on Materials/Data-driven Materials Research Field/Materials Modeling Group
SAMURAI NIMS Researchers Directory SAMURAI
ORCID SAMURAI ;
T. Matsunaga (author) (この著者で検索)
JAXA
;
R. Ozasa (author) (この著者で検索)
Graduate School of Engineering, Osaka University
;
T. Ishimoto (author) (この著者で検索)
University of Toyama
;
T. Ito (author) (この著者で検索)
Toyama Prefectural University
;
T. Nakano (author) (この著者で検索)
Graduate School of Engineering, Osaka University
コレクション

引用
Y. Yamabe-Mitarai, Y. Toda, T. Matsunaga, R. Ozasa, T. Ishimoto, T. Ito, T. Nakano. Creep Deformation of Ti Alloys Produced by LPBF. https://doi.org/10.48505/nims.6476

説明:

(abstract)

The laser powder bed fusion (LPBF) was applied for near α (hcp)-Ti alloy (Ti-6Al-4Nb- 4Zr, mass%) and near β (bcc)-Ti alloy (Ti-6Al-2Sn-4Zr-6Mo) to investigate microstructure evolution depending on scanning conditions and creep deformation behavior related to micro-structure.
The melting pool boundaries that are formed by cyclic heating due to cyclic scanning of the laser beam were clearly observed in the as-built state in both alloys. The crystallographic orientation of the b phase was random in near α-Ti alloys, while columnar microstructures with crystallographic lamellar-like microstructure (CLM), a near single crystal-like micro-structure (SCM), and polycrystalline structures (PCM) were observed under the specific scan-ning condition in near β-Ti alloys.
The creep deformation mechanism is dislocation creep, which depends on the microstruc-ture in the molten pool rather than the grain size in both alloys. Even so, grain size depend-ence of creep life was observed in near α-Ti alloy. In near β-Ti alloy, there is no significant difference in creep deformation between SCM, CLM, and PCM. The creep strain was larger at low stress in the LPBFed samples compared with the forged sample, but the creep life was slightly longer in the LPBFed samples than in the forged sample.

権利情報:

キーワード: Additive manufacturing, Crystallographic analysis, Heat-resistant titanium alloys, Microstructure, Precipitation, Volumetric energy density, Melting pool boundary

会議: The 12th Pacific Rim International Conference on Advanced Materials and Processing (2026-08-09 - 2026-08-13)

研究助成金:

  • JSPS JP21H05198 (Science for Super-Titanium Creation in Super Thermal Field)

原稿種別: 論文以外のデータ

MDR DOI: https://doi.org/10.48505/nims.6476

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更新時刻: 2026-08-24 14:50:53 +0900

MDRでの公開時刻: 2026-08-24 16:27:36 +0900

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