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Prediction of Current-Dependent Motor Torque Characteristics Using Deep Learning for Topology Optimization
- Publication Year :
- 2022
-
Abstract
- In this study, we propose a fast topology optimization (TO) method based on a deep neural network (DNN) that predicts the current-dependent motor torque characteristics using its cross-sectional image. The trained DNN is shown to provide the current condition that provides the maximum torque under the assumed motor control method. The proposed method helps perform TO with a reduced number of field computations while maintaining a high search capability.
Details
- Database :
- OAIster
- Notes :
- English
- Publication Type :
- Electronic Resource
- Accession number :
- edsoai.on1402196644
- Document Type :
- Electronic Resource