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contributor authorShi, Tony
contributor authorWu, Jiajie
contributor authorMa, Mason
contributor authorCharles, Elijah
contributor authorSchmitz, Tony
date accessioned2024-12-24T19:11:20Z
date available2024-12-24T19:11:20Z
date copyright4/25/2024 12:00:00 AM
date issued2024
identifier issn1087-1357
identifier othermanu_146_8_081003.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4303456
description abstractThis study models the temperature evolution during additive friction stir deposition (AFSD) using machine learning. AFSD is a solid-state additive manufacturing technology that deposits metal using plastic flow without melting. However, the ability to predict its performance using the underlying physics is in the early stage. A physics-informed machine learning approach, AFSD-Nets, is presented here to predict temperature profiles based on the combined effects of heat generation and heat transfer. The proposed AFSD-Nets includes a set of customized neural network approximators, which are used to model the coupled temperature evolution for the tool and build during multi-layer material deposition. Experiments are designed and performed using 7075 aluminum feedstock deposited on a substrate of the same material for 30 layers. A comparison of predictions and measurements shows that the proposed AFSD-Nets approach can accurately describe and predict the temperature evolution during the AFSD process.
publisherThe American Society of Mechanical Engineers (ASME)
titleAFSD-Nets: A Physics-Informed Machine Learning Model for Predicting the Temperature Evolution During Additive Friction Stir Deposition
typeJournal Paper
journal volume146
journal issue8
journal titleJournal of Manufacturing Science and Engineering
identifier doi10.1115/1.4065178
journal fristpage81003-1
journal lastpage81003-16
page16
treeJournal of Manufacturing Science and Engineering:;2024:;volume( 146 ):;issue: 008
contenttypeFulltext


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