Durability of bonded crack retarders for aerospace

The increase in demand for aircraft focuses the structural designers and manufacturers towards the reduction of manufacturing cost and structural weight while maintaining high safety, damage tolerance, and structural integrity. These weight savings can be achieved by using large integral structures....

Full description

Bibliographic Details
Main Author: Syed, Abdul Khadar
Published: Open University 2014
Subjects:
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.664275
id ndltd-bl.uk-oai-ethos.bl.uk-664275
record_format oai_dc
spelling ndltd-bl.uk-oai-ethos.bl.uk-6642752017-08-30T03:23:28ZDurability of bonded crack retarders for aerospaceSyed, Abdul Khadar2014The increase in demand for aircraft focuses the structural designers and manufacturers towards the reduction of manufacturing cost and structural weight while maintaining high safety, damage tolerance, and structural integrity. These weight savings can be achieved by using large integral structures. However, large integral structures show reduced performance with respect to damage tolerant design due to lack of physical barriers that can arrest a growing crack such as presently exist in structures joined with rivets and bolts. Fibre metal laminates such as Glass Laminated Aluminium Reinforced Epoxy (GLARE) have been proven effective as bonded crack retarders (BCR) in reducing the fatigue crack growth rate and improving the life of metallic aircraft structures. A major problem associated with bonded crack retarders is the development of thermal residual stresses which may have negative impact on the performance of the structure. Hence, the objectives of this research are to investigate the thermal residual stress developed during the strap bonding process and the fatigue durability of bonded crack retarders. Extensive research performed in this dissertation covers the detailed investigation of thermal residual stresses and the fatigue durability of GLARE bonded crack retarders when incorporated onto different structural coupons and on an aircraft mock-up panel. Thermal residual stresses developed during the strap bonding process are very low and the application of a bonded crack retarder improved the fatigue performance of the specimen. The experimental data on residual stress measurements and fatigue testing provides information for researchers and aircraft structural designers to improve the performance and life of critical aircraft structures and the possibilities of incorporating the bonded crack retarder concept in the initial design and fabrication stages.620.1Open Universityhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.664275Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 620.1
spellingShingle 620.1
Syed, Abdul Khadar
Durability of bonded crack retarders for aerospace
description The increase in demand for aircraft focuses the structural designers and manufacturers towards the reduction of manufacturing cost and structural weight while maintaining high safety, damage tolerance, and structural integrity. These weight savings can be achieved by using large integral structures. However, large integral structures show reduced performance with respect to damage tolerant design due to lack of physical barriers that can arrest a growing crack such as presently exist in structures joined with rivets and bolts. Fibre metal laminates such as Glass Laminated Aluminium Reinforced Epoxy (GLARE) have been proven effective as bonded crack retarders (BCR) in reducing the fatigue crack growth rate and improving the life of metallic aircraft structures. A major problem associated with bonded crack retarders is the development of thermal residual stresses which may have negative impact on the performance of the structure. Hence, the objectives of this research are to investigate the thermal residual stress developed during the strap bonding process and the fatigue durability of bonded crack retarders. Extensive research performed in this dissertation covers the detailed investigation of thermal residual stresses and the fatigue durability of GLARE bonded crack retarders when incorporated onto different structural coupons and on an aircraft mock-up panel. Thermal residual stresses developed during the strap bonding process are very low and the application of a bonded crack retarder improved the fatigue performance of the specimen. The experimental data on residual stress measurements and fatigue testing provides information for researchers and aircraft structural designers to improve the performance and life of critical aircraft structures and the possibilities of incorporating the bonded crack retarder concept in the initial design and fabrication stages.
author Syed, Abdul Khadar
author_facet Syed, Abdul Khadar
author_sort Syed, Abdul Khadar
title Durability of bonded crack retarders for aerospace
title_short Durability of bonded crack retarders for aerospace
title_full Durability of bonded crack retarders for aerospace
title_fullStr Durability of bonded crack retarders for aerospace
title_full_unstemmed Durability of bonded crack retarders for aerospace
title_sort durability of bonded crack retarders for aerospace
publisher Open University
publishDate 2014
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.664275
work_keys_str_mv AT syedabdulkhadar durabilityofbondedcrackretardersforaerospace
_version_ 1718522426634010624