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기형선

Ki, Hyungson
Laser Processing and Artificial Intelligence Lab.
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Deep-learning approach for predicting laser-beam absorptance in full-penetration laser keyhole welding

Author(s)
Oh, SehyeokKim, HyeongwonNam, KimoonKi, Hyungson
Issued Date
2021-06
DOI
10.1364/oe.430952
URI
https://scholarworks.unist.ac.kr/handle/201301/53170
Fulltext
https://www.osapublishing.org/oe/fulltext.cfm?uri=oe-29-13-20010&id=451845
Citation
OPTICS EXPRESS, v.29, no.13, pp.20010 - 20021
Abstract
Laser-beam absorptance in a keyhole is generally calculated using either a ray-tracing method or electrodynamic simulation, both physics-based. As such, the entire computation must be repeated when the keyhole geometry changes. In this study, a data-based deep-learning model for predicting laser-beam absorptance in full-penetration laser keyhole welding is proposed. The model uses a set of keyhole top- and bottom-aperture as inputs. From these, an artificial intelligence (AI) model is trained to predict the laser-energy absorptance value. For the training dataset, various keyhole geometries (i.e., top- and bottom-aperture shapes) are hypothetically created, upon which the ray-tracing model is employed to compute the corresponding absorptance values. An image classification model, ResNet, is employed as a learning recognizer of features to predict absorptance. For image regression, several modifications are applied to the structure. Five model depths are tested, and the optimal Al architecture is used to predict the absorptance with an R-2 accuracy of 99.76% within 1.66 s for 740 keyhole shapes. Using this model, several keyhole parameters affecting the keyhole absorptance are identified. (C) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
Publisher
OPTICAL SOC AMER
ISSN
1094-4087
Keyword
MULTIPLE REFLECTIONSIMULATIONGEOMETRY

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