Silicone dielectric elastomer actuator in oil immersion

Dielectric elastomer actuators, whose actuation mechanism involves mainly Maxwell stress, has been proven to be potential for numerous applications in terms of their performance, weight and simplicity. The finding of La & Lau on the improvement in electric field strength of VHB4905 DEA in oil im...

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Main Author: Pham, Minh Thao.
Other Authors: School of Mechanical and Aerospace Engineering
Format: Final Year Project
Language:English
Published: 2013
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Online Access:http://hdl.handle.net/10356/53976
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-539762023-03-04T18:33:35Z Silicone dielectric elastomer actuator in oil immersion Pham, Minh Thao. School of Mechanical and Aerospace Engineering Lau Gih Keong DRNTU::Engineering Dielectric elastomer actuators, whose actuation mechanism involves mainly Maxwell stress, has been proven to be potential for numerous applications in terms of their performance, weight and simplicity. The finding of La & Lau on the improvement in electric field strength of VHB4905 DEA in oil immersion is the motivation of this study. Previous studies indicated that immerse the VHB4905 DEA in silicone oil bath helps to maintain the temperature of the active region and increase the breakdown field strength. This study employed the same concept and tested BJB silicone DEA to assess whether it manifest the same improvement as VHB4905 DEA. Single film and multi-film planar DEA were tested in silicone oil; subsequently, the area strain and the breakdown field strength of these samples are determined and compared with samples tested in normal condition (in air). The results indicate that silicone oil improves the breakdown field strength but reduces the area strain of the DEA. Part of the finding conforms to La & Lau’s study, but the silicone film becomes ‘swollen’ due to dielectric oil. This behavior leads to the loss of initial tension and hinders the actuation of the DEA. Furthermore, it is found out that the multi-film configuration exhibits lower actuation strain because the passive outer layers of multi-layer configuration restrict the actuation of the whole DEA. Bachelor of Engineering (Aerospace Engineering) 2013-06-10T08:53:59Z 2013-06-10T08:53:59Z 2013 2013 Final Year Project (FYP) http://hdl.handle.net/10356/53976 en Nanyang Technological University 64 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Pham, Minh Thao.
Silicone dielectric elastomer actuator in oil immersion
description Dielectric elastomer actuators, whose actuation mechanism involves mainly Maxwell stress, has been proven to be potential for numerous applications in terms of their performance, weight and simplicity. The finding of La & Lau on the improvement in electric field strength of VHB4905 DEA in oil immersion is the motivation of this study. Previous studies indicated that immerse the VHB4905 DEA in silicone oil bath helps to maintain the temperature of the active region and increase the breakdown field strength. This study employed the same concept and tested BJB silicone DEA to assess whether it manifest the same improvement as VHB4905 DEA. Single film and multi-film planar DEA were tested in silicone oil; subsequently, the area strain and the breakdown field strength of these samples are determined and compared with samples tested in normal condition (in air). The results indicate that silicone oil improves the breakdown field strength but reduces the area strain of the DEA. Part of the finding conforms to La & Lau’s study, but the silicone film becomes ‘swollen’ due to dielectric oil. This behavior leads to the loss of initial tension and hinders the actuation of the DEA. Furthermore, it is found out that the multi-film configuration exhibits lower actuation strain because the passive outer layers of multi-layer configuration restrict the actuation of the whole DEA.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Pham, Minh Thao.
format Final Year Project
author Pham, Minh Thao.
author_sort Pham, Minh Thao.
title Silicone dielectric elastomer actuator in oil immersion
title_short Silicone dielectric elastomer actuator in oil immersion
title_full Silicone dielectric elastomer actuator in oil immersion
title_fullStr Silicone dielectric elastomer actuator in oil immersion
title_full_unstemmed Silicone dielectric elastomer actuator in oil immersion
title_sort silicone dielectric elastomer actuator in oil immersion
publishDate 2013
url http://hdl.handle.net/10356/53976
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