Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/17423
Title: Designing the futuristic dielectric elastomer minimum energy structures using ANN
Authors: Bhaskar Anupam
Supervisors: Khurana, Aman
Keywords: Mechanical Engineering
Issue Date: 28-May-2025
Publisher: Department of Mechanical Engineering, IIT Indore
Series/Report no.: MT394;
Abstract: Dielectric elastomer minimum energy structures (DEMES) have gained significant attention for their ability to switch between multiple equilibrium states. These structures are formed when a pre-stretched elastomer film adheres to an inextensible frame and achieves equilibrium through energy minimization. Traditional methods for analyzing DEMES mechanics-numerical, theoretical, and experimental-are often labor-intensive and time-consuming. This paper introduces the application of artificial neural network (ANN) techniques to predict the behavior of DEMES-based actuators efficiently. Using the Levenberg Marquardt and Bayesian Regularization algorithms, the performance of two prototypes-the four-arm gripper actuator and the flapping-wing actuator previously studied experimentally and numerically in [Khurana et al., 2024], is predicted. The ANN-based approach demonstrates excellent agreement with the numerical FEA results while significantly reducing computation time. This study highlights the potential of ANN techniques as a fast and reliable tool for the parametric evaluation of DEMES structures, streamlining the design and analysis process.
URI: https://dspace.iiti.ac.in:8080/jspui/handle/123456789/17423
Type of Material: Thesis_M.Tech
Appears in Collections:Department of Mechanical Engineering_ETD

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