Bending of thin-walled tubes

This study delves into the examination of thin-walled tube behavior under pure bending conditions. A specially designed four-point bending test rig was meticulously crafted to conduct experiments on thin-walled tubes composed of various materials, with a primary focus on 304 Stainless Steel. The Ins...

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Main Author: Ng, Anna Tian Yun
Other Authors: Seah Leong Keey
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2024
Subjects:
Online Access:https://hdl.handle.net/10356/177324
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1773242024-06-01T16:50:46Z Bending of thin-walled tubes Ng, Anna Tian Yun Seah Leong Keey School of Mechanical and Aerospace Engineering MLKSEAH@ntu.edu.sg Engineering This study delves into the examination of thin-walled tube behavior under pure bending conditions. A specially designed four-point bending test rig was meticulously crafted to conduct experiments on thin-walled tubes composed of various materials, with a primary focus on 304 Stainless Steel. The Instron Universal Testing Machine served as the apparatus for applying an incremental load to the tubes, leading to deformation until the yield load was attained. The experimental data obtained from these tests facilitated the determination of the tubes' yield strength, utilizing the 0.2% strain criterion. Comparative analyses were performed among tubes of varying sizes and wall thicknesses to explore alterations in flexural strength and yield points. Notably, thicker tube walls demonstrated an enhanced capacity to withstand applied loads and exhibited greater bending moments in comparison to thinner tube walls. The deflection behaviors of the tubes were observed to be similar. The experimental results were compared with theoretical values. The difference between the values were attributed to a misalignment issue which occurred during the bending process. Additionally, the loads on the Test Fixture’s linear guide exceeded its maximum loading capacity. The outcomes of this study carry substantial implications for the utilization of thin-walled tubes in engineering applications. Understanding the performance variations based on size and wall thickness is crucial for optimizing structural designs and ensuring the reliability of thin-walled tubes in real-world engineering scenarios. The identified limitations in experimental procedures also emphasize the need for meticulous attention to alignment and loading capacity considerations in future investigations. Bachelor's degree 2024-05-27T07:55:16Z 2024-05-27T07:55:16Z 2024 Final Year Project (FYP) Ng, A. T. Y. (2024). Bending of thin-walled tubes. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/177324 https://hdl.handle.net/10356/177324 en B218 application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering
spellingShingle Engineering
Ng, Anna Tian Yun
Bending of thin-walled tubes
description This study delves into the examination of thin-walled tube behavior under pure bending conditions. A specially designed four-point bending test rig was meticulously crafted to conduct experiments on thin-walled tubes composed of various materials, with a primary focus on 304 Stainless Steel. The Instron Universal Testing Machine served as the apparatus for applying an incremental load to the tubes, leading to deformation until the yield load was attained. The experimental data obtained from these tests facilitated the determination of the tubes' yield strength, utilizing the 0.2% strain criterion. Comparative analyses were performed among tubes of varying sizes and wall thicknesses to explore alterations in flexural strength and yield points. Notably, thicker tube walls demonstrated an enhanced capacity to withstand applied loads and exhibited greater bending moments in comparison to thinner tube walls. The deflection behaviors of the tubes were observed to be similar. The experimental results were compared with theoretical values. The difference between the values were attributed to a misalignment issue which occurred during the bending process. Additionally, the loads on the Test Fixture’s linear guide exceeded its maximum loading capacity. The outcomes of this study carry substantial implications for the utilization of thin-walled tubes in engineering applications. Understanding the performance variations based on size and wall thickness is crucial for optimizing structural designs and ensuring the reliability of thin-walled tubes in real-world engineering scenarios. The identified limitations in experimental procedures also emphasize the need for meticulous attention to alignment and loading capacity considerations in future investigations.
author2 Seah Leong Keey
author_facet Seah Leong Keey
Ng, Anna Tian Yun
format Final Year Project
author Ng, Anna Tian Yun
author_sort Ng, Anna Tian Yun
title Bending of thin-walled tubes
title_short Bending of thin-walled tubes
title_full Bending of thin-walled tubes
title_fullStr Bending of thin-walled tubes
title_full_unstemmed Bending of thin-walled tubes
title_sort bending of thin-walled tubes
publisher Nanyang Technological University
publishDate 2024
url https://hdl.handle.net/10356/177324
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