Stress analysis of short flat bar with projection using boundary element method

Components with the projections on the bars, tubes, and plates are more commonly used nowadays to transmit the axial load. Due to the abrupt change in cross-sectional area, the local stress at that region becomes higher than the other regions and it leads to crack propagation. Theref...

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Main Author: Nandar Aung, Wint Yee
Other Authors: Ang Hock Eng
Format: Final Year Project
Language:English
Published: 2018
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Online Access:http://hdl.handle.net/10356/75753
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-757532023-03-04T19:02:17Z Stress analysis of short flat bar with projection using boundary element method Nandar Aung, Wint Yee Ang Hock Eng School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical Engineering Components with the projections on the bars, tubes, and plates are more commonly used nowadays to transmit the axial load. Due to the abrupt change in cross-sectional area, the local stress at that region becomes higher than the other regions and it leads to crack propagation. Therefore, fillets are introduced to reduce the stress concentration factor (SCF) at the high-stress point. Moreover, SCF and crack propagation can be affected by other geometric parameter ratios as well. Therefore, various case studies were conducted by using BEM to determine the effect on SCF and crack propagation in terms of overall stress intensity factor (SIF). Different cases were modeled by varying geometric parameter ratios under axial or shear loading with local or remote restraints. The first part of the study focused on the T-shaped model without the crack for stress concentration analysis. Furthermore, the second part focused on the model with the crack for crack propagation analysis. Through this investigation, the highest stress point was determined and subsequently, the effect on SCF and overall SIF was presented in graphs for different cases. From the results, it was concluded that R/d ratio has more prevailing effect on SCF than the other parameters and it is inversely proportional to SCF. Consequently, it was found that larger D/d could reduce the overall SIF whereas crack length is directly proportional to SIF. Therefore, this study allows for the optimization of the geometric parameters to reduce SCF and overall SIF. Bachelor of Engineering (Mechanical Engineering) 2018-06-13T08:19:26Z 2018-06-13T08:19:26Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/75753 en 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
Nandar Aung, Wint Yee
Stress analysis of short flat bar with projection using boundary element method
description Components with the projections on the bars, tubes, and plates are more commonly used nowadays to transmit the axial load. Due to the abrupt change in cross-sectional area, the local stress at that region becomes higher than the other regions and it leads to crack propagation. Therefore, fillets are introduced to reduce the stress concentration factor (SCF) at the high-stress point. Moreover, SCF and crack propagation can be affected by other geometric parameter ratios as well. Therefore, various case studies were conducted by using BEM to determine the effect on SCF and crack propagation in terms of overall stress intensity factor (SIF). Different cases were modeled by varying geometric parameter ratios under axial or shear loading with local or remote restraints. The first part of the study focused on the T-shaped model without the crack for stress concentration analysis. Furthermore, the second part focused on the model with the crack for crack propagation analysis. Through this investigation, the highest stress point was determined and subsequently, the effect on SCF and overall SIF was presented in graphs for different cases. From the results, it was concluded that R/d ratio has more prevailing effect on SCF than the other parameters and it is inversely proportional to SCF. Consequently, it was found that larger D/d could reduce the overall SIF whereas crack length is directly proportional to SIF. Therefore, this study allows for the optimization of the geometric parameters to reduce SCF and overall SIF.
author2 Ang Hock Eng
author_facet Ang Hock Eng
Nandar Aung, Wint Yee
format Final Year Project
author Nandar Aung, Wint Yee
author_sort Nandar Aung, Wint Yee
title Stress analysis of short flat bar with projection using boundary element method
title_short Stress analysis of short flat bar with projection using boundary element method
title_full Stress analysis of short flat bar with projection using boundary element method
title_fullStr Stress analysis of short flat bar with projection using boundary element method
title_full_unstemmed Stress analysis of short flat bar with projection using boundary element method
title_sort stress analysis of short flat bar with projection using boundary element method
publishDate 2018
url http://hdl.handle.net/10356/75753
_version_ 1759856819537182720