Stiffness and strength analysis of composites for tidal wave turbine applications

There has been a rise in renewable energy due to climate change. A specific type of renewable energy is ocean energy, which is derived from tides and waves. Machines that extract energy from the ocean experience transient loads and in turn, fatigue. However, a key component to understanding fatigue...

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Main Author: Loy, Sebestian Chuan Kee
Other Authors: Chai Gin Boay
Format: Theses and Dissertations
Language:English
Published: 2018
Subjects:
Online Access:http://hdl.handle.net/10356/76181
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-761812023-03-11T17:08:56Z Stiffness and strength analysis of composites for tidal wave turbine applications Loy, Sebestian Chuan Kee Chai Gin Boay School of Mechanical and Aerospace Engineering Technical University of Munich DRNTU::Engineering::Aeronautical engineering There has been a rise in renewable energy due to climate change. A specific type of renewable energy is ocean energy, which is derived from tides and waves. Machines that extract energy from the ocean experience transient loads and in turn, fatigue. However, a key component to understanding fatigue is the inherent mechanical properties of the material itself, specifically composites. Due to the nature of the working environment, it is key to understand the influence of moisture on the mechanical properties of composites. Unidirectional carbon fibres are manufactured into composites via VARTM. Specimens are cut out from the finished product and are immersed into seawater for varying durations. Three-point bending tests are conducted onto the specimens after seawater aging and the resulting values are discussed in relation to moisture content. Additionally, the Fickian curve was modelled and compared with measured moisture values of the specimens. Finally, the damage of the specimens was examined under the microscope. The results showed that the mechanical properties do decrease with an increasing amount of moisture ingression. Comparison of moisture uptake shows that the experimental data more or less agreed with the Fickian model. Microscopic damage inspection showed that the fibres failed via compression failure for the most part. It is hoped that this study would be useful in the analysis of fatigue in tidal turbines. Master of Science (Aerospace Engineering) 2018-11-22T14:47:55Z 2018-11-22T14:47:55Z 2018 Thesis http://hdl.handle.net/10356/76181 en 96 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::Aeronautical engineering
spellingShingle DRNTU::Engineering::Aeronautical engineering
Loy, Sebestian Chuan Kee
Stiffness and strength analysis of composites for tidal wave turbine applications
description There has been a rise in renewable energy due to climate change. A specific type of renewable energy is ocean energy, which is derived from tides and waves. Machines that extract energy from the ocean experience transient loads and in turn, fatigue. However, a key component to understanding fatigue is the inherent mechanical properties of the material itself, specifically composites. Due to the nature of the working environment, it is key to understand the influence of moisture on the mechanical properties of composites. Unidirectional carbon fibres are manufactured into composites via VARTM. Specimens are cut out from the finished product and are immersed into seawater for varying durations. Three-point bending tests are conducted onto the specimens after seawater aging and the resulting values are discussed in relation to moisture content. Additionally, the Fickian curve was modelled and compared with measured moisture values of the specimens. Finally, the damage of the specimens was examined under the microscope. The results showed that the mechanical properties do decrease with an increasing amount of moisture ingression. Comparison of moisture uptake shows that the experimental data more or less agreed with the Fickian model. Microscopic damage inspection showed that the fibres failed via compression failure for the most part. It is hoped that this study would be useful in the analysis of fatigue in tidal turbines.
author2 Chai Gin Boay
author_facet Chai Gin Boay
Loy, Sebestian Chuan Kee
format Theses and Dissertations
author Loy, Sebestian Chuan Kee
author_sort Loy, Sebestian Chuan Kee
title Stiffness and strength analysis of composites for tidal wave turbine applications
title_short Stiffness and strength analysis of composites for tidal wave turbine applications
title_full Stiffness and strength analysis of composites for tidal wave turbine applications
title_fullStr Stiffness and strength analysis of composites for tidal wave turbine applications
title_full_unstemmed Stiffness and strength analysis of composites for tidal wave turbine applications
title_sort stiffness and strength analysis of composites for tidal wave turbine applications
publishDate 2018
url http://hdl.handle.net/10356/76181
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