Masahiro Kusano
(National Institute for Materials Science)
;
Makoto Watanabe
(National Institute for Materials Science)
説明:
(abstract)To understand the correlation between process, structures, and properties in laser powder bed fusion (L-PBF), it is essential to use numerical analysis as well as experimental approaches. A finite element thermal analysis uses a moving heat source model represented as a volumetric heat flux to simulate heat input by laser. Because of its computational efficiency, finite element thermal analysis is suitable for iterative procedures such as parametric study and process optimization. However, to obtain valid simulated results, the heat source model must be calibrated by comparison with experimental results for each laser scanning condition. The need for re-calibration limits the applicable window of laser scanning conditions in the thermal analysis. Thus, the current study developed a novel heat source model that is valid and precise under any laser scanning condition within a wide process window. As a secondary objective in the development, we quantitively evaluated and compared the four heat source models proposed to date. It was found that the most suitable heat source model for the L-PBF are conical one among them. Then, a multiple linear regression analysis was performed to represent the heat source model as a function of laser power and scanning velocity. Consequently, the thermal analysis with the novel model is valid and precise within the wide process window of L-PBF.
権利情報:
キーワード: Laser powder bed fusion, Thermal analysis, Heat source model, Laser scanning conditions, Bayesian optimization, Multiple linear regression
刊行年月日: 2024-01-19
出版者: Springer Science and Business Media LLC
掲載誌:
研究助成金:
原稿種別: 出版者版 (Version of record)
MDR DOI:
公開URL: https://doi.org/10.1007/s40192-023-00334-2
関連資料:
その他の識別子:
連絡先:
更新時刻: 2024-04-09 12:30:20 +0900
MDRでの公開時刻: 2024-04-09 12:30:20 +0900
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s40192-023-00334-2.pdf
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サイズ | 6.7MB | 詳細 |