Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers

Dielectric Elastomers (DEs) based have significant potential in the emerging field of soft actuators and soft robotics. Due to the highly non-linear electromechanical coupling, DEs can easily undergo large deformation and electromechanical instabilities when subject to an external potential. The def...

Full description

Bibliographic Details
Main Author: Seifi, Saman
Other Authors: Park, Harold S.
Language:en_US
Published: 2018
Subjects:
Online Access:https://hdl.handle.net/2144/32241
id ndltd-bu.edu-oai-open.bu.edu-2144-32241
record_format oai_dc
spelling ndltd-bu.edu-oai-open.bu.edu-2144-322412019-01-08T15:44:56Z Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers Seifi, Saman Park, Harold S. Mechanical engineering Dielectric Elastomers (DEs) based have significant potential in the emerging field of soft actuators and soft robotics. Due to the highly non-linear electromechanical coupling, DEs can easily undergo large deformation and electromechanical instabilities when subject to an external potential. The deformation and instabilities can cause failures often detrimental in various application of DEs, though they can also be systematically harnessed to create enhanced functionalities such as dynamic surface patterning, and energy harvesting. In recent years DEs have been proposed for various biologically-relevant applications, in which they may operate in fluidic environments where surface tension effects may have a significant effect on their stability and reliability. While an excellent literature already exists for electromechanical instabilities, it is still unknown how the effects of surface tension and elasto-capillary forces coupled with electromechanical forces to impact the modes of instabilities on DEs. Furthermore, all available computational models for DEs are monolithically coupled, which are extremely computationally inefficient, and place stringent limits on the DE system sizes that can be modeled. In this thesis, a finite element method (FEM) model is developed to capture surface tension effects on DEs, a phenomena called electro-elasto-capillary (EEC) phenomena. The finite element formulation is dynamic, non-linear, monolithic, and fully coupled. This model is capable of capturing both the onset of instabilities as well as the post-instability response of DEs. The model is used to examine the following problems of interest: (1) Surface tension-driven surface instability transition from creasing to wrinkling in constrained DE films; (2) Wrinkling instability in pre-compressed DEs subjected to surface tension; (3) Occurrence of an electro-elasto-capillary Rayleigh-Plateau instability (RPI) in DE films; (4) Bursting drops inside a DE film. In the second focus of this thesis, a new staggered explicit-implicit FEM model is developed, which offers significant enhancement in computational efficiency while maintaining numerical robustness and solution accuracy compared to the fully coupled and monolithic model. Comparisons to the monolithic solutions for the above-mentioned problems of interest are given, while three-dimensional problems which cannot be solved monolithically are tackled using the proposed explicit-implicit formulation. 2018-11-14T14:14:29Z 2018-11-14T14:14:29Z 2018 2018-10-23T01:01:18Z Thesis/Dissertation https://hdl.handle.net/2144/32241 en_US Attribution-NonCommercial 4.0 International http://creativecommons.org/licenses/by-nc/4.0/
collection NDLTD
language en_US
sources NDLTD
topic Mechanical engineering
spellingShingle Mechanical engineering
Seifi, Saman
Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers
description Dielectric Elastomers (DEs) based have significant potential in the emerging field of soft actuators and soft robotics. Due to the highly non-linear electromechanical coupling, DEs can easily undergo large deformation and electromechanical instabilities when subject to an external potential. The deformation and instabilities can cause failures often detrimental in various application of DEs, though they can also be systematically harnessed to create enhanced functionalities such as dynamic surface patterning, and energy harvesting. In recent years DEs have been proposed for various biologically-relevant applications, in which they may operate in fluidic environments where surface tension effects may have a significant effect on their stability and reliability. While an excellent literature already exists for electromechanical instabilities, it is still unknown how the effects of surface tension and elasto-capillary forces coupled with electromechanical forces to impact the modes of instabilities on DEs. Furthermore, all available computational models for DEs are monolithically coupled, which are extremely computationally inefficient, and place stringent limits on the DE system sizes that can be modeled. In this thesis, a finite element method (FEM) model is developed to capture surface tension effects on DEs, a phenomena called electro-elasto-capillary (EEC) phenomena. The finite element formulation is dynamic, non-linear, monolithic, and fully coupled. This model is capable of capturing both the onset of instabilities as well as the post-instability response of DEs. The model is used to examine the following problems of interest: (1) Surface tension-driven surface instability transition from creasing to wrinkling in constrained DE films; (2) Wrinkling instability in pre-compressed DEs subjected to surface tension; (3) Occurrence of an electro-elasto-capillary Rayleigh-Plateau instability (RPI) in DE films; (4) Bursting drops inside a DE film. In the second focus of this thesis, a new staggered explicit-implicit FEM model is developed, which offers significant enhancement in computational efficiency while maintaining numerical robustness and solution accuracy compared to the fully coupled and monolithic model. Comparisons to the monolithic solutions for the above-mentioned problems of interest are given, while three-dimensional problems which cannot be solved monolithically are tackled using the proposed explicit-implicit formulation.
author2 Park, Harold S.
author_facet Park, Harold S.
Seifi, Saman
author Seifi, Saman
author_sort Seifi, Saman
title Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers
title_short Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers
title_full Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers
title_fullStr Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers
title_full_unstemmed Computational modeling of electro-elasto-capillary phenomena in dielectric elastomers
title_sort computational modeling of electro-elasto-capillary phenomena in dielectric elastomers
publishDate 2018
url https://hdl.handle.net/2144/32241
work_keys_str_mv AT seifisaman computationalmodelingofelectroelastocapillaryphenomenaindielectricelastomers
_version_ 1718813253886279680