Failure analysis of hybrid scarf joints

The use of composite materials has become increasingly popular in industries such as modern aviation. For instance, in the aerospace sector, composites are used for their lightweight, resistance to corrosion and fatigue, these conditions are preferable for semi-monocoque aircraft structures. In addi...

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Main Author: Toh, Zi Ying
Other Authors: Sridhar Idapalapati
Format: Final Year Project
Language:English
Published: 2019
Subjects:
Online Access:http://hdl.handle.net/10356/77534
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-775342023-03-04T19:34:05Z Failure analysis of hybrid scarf joints Toh, Zi Ying Sridhar Idapalapati School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering The use of composite materials has become increasingly popular in industries such as modern aviation. For instance, in the aerospace sector, composites are used for their lightweight, resistance to corrosion and fatigue, these conditions are preferable for semi-monocoque aircraft structures. In addition, traditional sheet metal construction tends to lose material strength at elevated temperatures, while composites are capable of withstanding high temperatures and thermal expansion without compromising material properties. Strong reinforcements such as Glass Fiber Reinforced Plastics (GFRPs) has helped meet the design features of modern aircraft bodies. A critical feature to consider however is the application of these composites on the fuselage. This can be done by conventional mechanical joints or the innovative use of adhesively bonded joints. Adhesively bonded joints are known for factors such as its material compatibility, ability to form large complex geometries and its lower fabrication costs, it also offers more alternatives over traditional joint techniques. This report evaluates the performance of adhesively bonded scarf joints and hybrid scarf joints; which is a combination of adhesively bonded joints and fasteners. Purpose of incorporating mechanical fasteners is to ensure a fail-safe design feature and provide residual strength to the joint as the adhesive experience failure. Four main joint configurations were tested to observe the effects of varying the fastener layout on the respective failure modes and overall load bearing capacity of the joint. Stiffness and strain analysis were drawn from the results of quasi-static tensile testing conducted on all the joint configurations. Experimental results were compared across the different joint configurations to determine the highest strength, potential failure modes and suitability of such joint techniques on loaded structures. Bachelor of Engineering (Mechanical Engineering) 2019-05-31T00:34:30Z 2019-05-31T00:34:30Z 2019 Final Year Project (FYP) http://hdl.handle.net/10356/77534 en Nanyang Technological University 90 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::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Toh, Zi Ying
Failure analysis of hybrid scarf joints
description The use of composite materials has become increasingly popular in industries such as modern aviation. For instance, in the aerospace sector, composites are used for their lightweight, resistance to corrosion and fatigue, these conditions are preferable for semi-monocoque aircraft structures. In addition, traditional sheet metal construction tends to lose material strength at elevated temperatures, while composites are capable of withstanding high temperatures and thermal expansion without compromising material properties. Strong reinforcements such as Glass Fiber Reinforced Plastics (GFRPs) has helped meet the design features of modern aircraft bodies. A critical feature to consider however is the application of these composites on the fuselage. This can be done by conventional mechanical joints or the innovative use of adhesively bonded joints. Adhesively bonded joints are known for factors such as its material compatibility, ability to form large complex geometries and its lower fabrication costs, it also offers more alternatives over traditional joint techniques. This report evaluates the performance of adhesively bonded scarf joints and hybrid scarf joints; which is a combination of adhesively bonded joints and fasteners. Purpose of incorporating mechanical fasteners is to ensure a fail-safe design feature and provide residual strength to the joint as the adhesive experience failure. Four main joint configurations were tested to observe the effects of varying the fastener layout on the respective failure modes and overall load bearing capacity of the joint. Stiffness and strain analysis were drawn from the results of quasi-static tensile testing conducted on all the joint configurations. Experimental results were compared across the different joint configurations to determine the highest strength, potential failure modes and suitability of such joint techniques on loaded structures.
author2 Sridhar Idapalapati
author_facet Sridhar Idapalapati
Toh, Zi Ying
format Final Year Project
author Toh, Zi Ying
author_sort Toh, Zi Ying
title Failure analysis of hybrid scarf joints
title_short Failure analysis of hybrid scarf joints
title_full Failure analysis of hybrid scarf joints
title_fullStr Failure analysis of hybrid scarf joints
title_full_unstemmed Failure analysis of hybrid scarf joints
title_sort failure analysis of hybrid scarf joints
publishDate 2019
url http://hdl.handle.net/10356/77534
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