Bulletin of the American Physical Society
APS March Meeting 2019
Volume 64, Number 2
Monday–Friday, March 4–8, 2019; Boston, Massachusetts
Session V49: Mechanics of Materials Processing
2:30 PM–5:30 PM,
Thursday, March 7, 2019
BCEC
Room: 252A
Sponsoring
Units:
GSOFT GSNP
Chair: Frederick Gosselin, Ecole Polytechnique de Montreal
Abstract: V49.00012 : A deep learning approach to solving the peen forming inverse problem
5:06 PM–5:18 PM
Presenter:
Wassime Siguerdidjane
(Mechanical Engineering, Ecole Polytechnique Montreal)
Authors:
Wassime Siguerdidjane
(Mechanical Engineering, Ecole Polytechnique Montreal)
Farbod Khameneifar
(Mechanical Engineering, Ecole Polytechnique Montreal)
Frederick Gosselin
(Mechanical Engineering, Ecole Polytechnique Montreal)
Guy Levasseur
(AeroSphere Inc.)
Peen forming is a cold forming process where surface plastic deformations are created by high-velocity projectile impacts. The resulting local expansions of the treated surface lead to local curvature variations. The effect of the peening treatment can be represented as a thermal expansion on a bi-layered plate, making this problem identical to bilayers in soft material physics. The motivation for this work is the development of automated robotic peen forming, which will increase the repeatability, accuracy, and efficiency of the process. With our goal being full process automation, we are interested in solving the inverse problem of calculating the required peening trajectories to form a part into the desired shape. To achieve this, we present an efficient method using deep learning to recognize patterns linking deformed plates to the required peening trajectories. The proposed model is trained on a large dataset to infer the required peening trajectories. Our results show that the predicted patterns create deformed shape deviations in the order of 100 microns. We consider that this approach can be used as part of a feedback loop to achieve full process automation.
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