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PMID: 39734726 Published · epublish English Journal Article

Effective Spiral Laser Path for Minimizing Local Heating and Anisotropic Microstructures in Powder Bed Fusion Additive Manufacturing.

3D printing and additive manufacturing ·Vol. 11 ·No. 6 ·2024-12-00 ·Pages e2033-e2044

Yang J, Park SJ, Kim SH, Yeon SM, Kim KI, Son Y, Kahhal P, Park J, Park SH

Abstract

Heat accumulation due to repetitive simple laser processing paths during building up a three-dimensional structure is a well-known issue that needs to be settled to reduce the excessively high residual stress and thermal deformation in a powder bed fusion (PBF) additive manufacturing process. Because of the dependency of laser path on the thermal dispersion, it is essential to analyze the heat accumulation phenomenon during laser processing. A computational fluid dynamics (CFD) analysis based on the volume of fraction method is used to optimize the laser path for minimizing the local heating up in the PBF process. In this work, a novel spiral laser path with optimal rotation angle is proposed and compared with the commonly used scanning paths. As the results, the accumulated temperature of the optimal spiral path shows a 200.9 K less compared with that of the general repetitive path. The thermal deformation of a cantilever structure made by the optimal spiral path is experimentally evaluated. From the experimental test, we verify that the spiral laser path reduces thermal deformation by 52.3% compared with the one made by the general one-directional laser path. This work based on numerical simulations and experiments utilizes the proposed spiral laser path to obtain higher precision, less residual stress, and more uniform microstructure of an additive-manufactured structure.

Keywords
additive manufacturing (AM) computational fluid dynamics (CFD) local heat accumulation powder bed fusion (PBF) spiral laser scanning path thermal deformation
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Yang Jeongho
Additive Manufacturing Innovation Agency, Korea Institute of Industrial Technology, Siheung-si, Korea. | School of Mechanical Engineering, Pusan National University, Busan, Korea.
Park Seong Je
School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore, Singapore.
Kim Sang Hoon
Power Generation Laboratory, Korea Electric Power Research Institute, Daejeon, Republic of Korea.
Yeon Si Mo
Additive Manufacturing Innovation Agency, Korea Institute of Industrial Technology, Siheung-si, Korea.
Kim Kyung Il
Industrial Materials and Process R&D Group, Korea Institute of Industrial Technology, Incheon, Korea.
Son Yong
Additive Manufacturing Innovation Agency, Korea Institute of Industrial Technology, Siheung-si, Korea.
Kahhal Parviz ORCID
School of Engineering, The University of Waikato, Hamilton, New Zealand.
Park Jiyong
Advanced Joining & Additive Manufacturing R&D Department, Korea Institute of Industrial Technology, Yeonsu-gu, Incheon, Republic of Korea. | Department of Convergence Manufacturing System Engineering, University of Science and Technology (UST), Yuseong-gu, Daejeon, Republic of Korea.
Park Sang-Hu ORCID
School of Mechanical Engineering, Pusan National University, Busan, Korea.
Article Info
Journal
3D printing and additive manufacturing
Abbr.
3D Print Addit Manuf
ISSN
2329-7670
Published
2024-12-00
Epub
2024-00-16
Pages
e2033-e2044
Language
English
Region
United States
NLM ID
101649453
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