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Acceleration of powder-bed-size thermal simulation considering scanning-path-scale through a pseudo-layer-wise equivalent heat flux model
ID
Fan, Chen
(
Author
),
ID
Kozjek, Dominik
(
Author
),
ID
Porter, Conor
(
Author
),
ID
Cao, Jian
(
Author
)
PDF - Presentation file. The content of the document unavailable until 01.03.2027.
MD5: 2D9719AF2D8D1EE54CE6385BF87FB38D
URL - Source URL, Visit
https://www.sciencedirect.com/science/article/pii/S1526612524013379
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Abstract
Part-scale modeling of the temperature field in metal powder bed additive manufacturing (AM) is critical for predicting mechanical properties of the AM-ed parts. Track-by-track heat transfer analysis is impractical due to the extensive number of layers and the intricate design of scan strategies for the heat source, particularly in the fabrication of specimen clusters or parts with complex geometry, where multiple regions in the powder bed are manufactured simultaneously. Many part-scale modeling approaches only focus on the thermal behavior of a single part without considering the thermal interaction from the surrounding parts to reduce computational cost. However, experimental observations have revealed that the temperature distribution along the building direction can vary among samples with identical local geometries. This discrepancy can be attributed to the heating effects from neighboring samples. In this study, we propose an integrated part-scale modeling framework that combines layer-wise equivalent heat flux attribution with layer-wise element activation. Before the layer-wise attribution, we justify the equivalent heat flux of individual layers through high-fidelity track-scale simulations. Unlike traditional heat transfer analysis for single parts, our analysis incorporates heat conduction effects through the powder bed between different fusion zones. The temperature data obtained from each equivalent layer using our approach shows consistency when compared to the experimental observations. This research presents an efficient, physically grounded method for modeling the thermal behavior of large AM specimen clusters, enhancing our understanding of temperature field evolution in AM and supporting the design of optimized scanning path strategies for large samples.
Language:
English
Keywords:
additive manufacturing
,
laser powder bed fusion
,
selective laser melting
,
part-scale thermal simulation
,
temperature history prediction
,
melt pool temperature
,
scalability
Work type:
Article
Typology:
1.01 - Original Scientific Article
Organization:
FS - Faculty of Mechanical Engineering
Publication status:
Published
Publication version:
Author Accepted Manuscript
Year:
2025
Number of pages:
16 str.
Numbering:
Vol. 134
PID:
20.500.12556/RUL-175411
UDC:
621.7+621.9
ISSN on article:
2212-4616
DOI:
10.1016/j.jmapro.2024.12.057
COBISS.SI-ID:
221502979
Publication date in RUL:
28.10.2025
Views:
99
Downloads:
47
Metadata:
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Record is a part of a journal
Title:
Journal of manufacturing processes
Publisher:
Elsevier
ISSN:
2212-4616
COBISS.SI-ID:
137159939
Licences
License:
CC BY-NC-ND 4.0, Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International
Link:
http://creativecommons.org/licenses/by-nc-nd/4.0/
Description:
The most restrictive Creative Commons license. This only allows people to download and share the work for no commercial gain and for no other purposes.
Secondary language
Language:
Slovenian
Keywords:
3D tisk
,
aditivne tehnologije
,
selektivno lasersko taljenje
,
SLM
,
termična simulacija
,
napovedovanje temperature
,
temperatura bazena taline
,
skalabilnost
Projects
Funder:
Other - Other funder or multiple funders
Project number:
N00014-19-1-2642
Name:
Vannevar Bush Faculty Fellowship
Funder:
Other - Other funder or multiple funders
Project number:
W911NF-20-2-0292
Name:
DEVCOM Army Research Laboratory - Cooperative Agreement
Funder:
Other - Other funder or multiple funders
Project number:
W911NF-21-2-02199
Name:
DEVCOM Army Research Laboratory - Cooperative Agreement
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