Stress and vibration analysis of interference-fitted tubular joints by finite element analysis

A compound cylinder is a type of cylindrical structure that consists of multiple cylinders assembled together by interference fit. Compound cylinders are commonly used in various engineering applications such as pressure vessels, hydraulic cylinders, and pneumatic cylinders. This final year project...

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Main Author: Tan, Kok Hien
Other Authors: Sellakkutti Rajendran
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2023
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Online Access:https://hdl.handle.net/10356/167381
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1673812023-05-27T16:51:08Z Stress and vibration analysis of interference-fitted tubular joints by finite element analysis Tan, Kok Hien Sellakkutti Rajendran School of Mechanical and Aerospace Engineering MSRajendran@ntu.edu.sg Engineering::Mechanical engineering A compound cylinder is a type of cylindrical structure that consists of multiple cylinders assembled together by interference fit. Compound cylinders are commonly used in various engineering applications such as pressure vessels, hydraulic cylinders, and pneumatic cylinders. This final year project (FYP) deals with the stress and vibration analysis of large compound cylinders commonly used in industries. The effects of interference fit on the stress distribution, natural frequencies and mode shapes are studied. The student version of ANSYS Mechanical workbench software is used for the finite element analysis presented in this report. As a verification of finite element results for interference fit, certain cases have been compared with theoretical results given by analytical formulae. The results are found to be in close agreement. It is observed from the static structural analysis that the maximum hoop stress of the compound cylinder occurs at the mean radius. The effect of changing the mean radius (keeping the inner and outer radii same) has been studied. When the mean radius is shifted towards inner radius (i.e., inner cylinder becomes thinner and outer cylinder becomes thicker), the maximum permissible interference (limited by yield strength of the material) becomes smaller. From the vibration analysis, it is discovered that only torsional mode frequency is affected by the interference in the absence of friction at the interface. When friction is present, the frequencies of all the modes are not affected by the interference and hence the natural frequencies remain constant. However, it is noticed that as the mean radius is decreased, the torsional mode frequency of inner cylinder for fixed-fixed boundary condition approaches 0 Hz. In comparison to the fixed-free boundary condition of the compound cylinder, the natural frequencies for fixed-fixed boundary condition are significantly higher. Bachelor of Engineering (Mechanical Engineering) 2023-05-25T23:55:02Z 2023-05-25T23:55:02Z 2023 Final Year Project (FYP) Tan, K. H. (2023). Stress and vibration analysis of interference-fitted tubular joints by finite element analysis. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/167381 https://hdl.handle.net/10356/167381 en B211 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::Mechanical engineering
spellingShingle Engineering::Mechanical engineering
Tan, Kok Hien
Stress and vibration analysis of interference-fitted tubular joints by finite element analysis
description A compound cylinder is a type of cylindrical structure that consists of multiple cylinders assembled together by interference fit. Compound cylinders are commonly used in various engineering applications such as pressure vessels, hydraulic cylinders, and pneumatic cylinders. This final year project (FYP) deals with the stress and vibration analysis of large compound cylinders commonly used in industries. The effects of interference fit on the stress distribution, natural frequencies and mode shapes are studied. The student version of ANSYS Mechanical workbench software is used for the finite element analysis presented in this report. As a verification of finite element results for interference fit, certain cases have been compared with theoretical results given by analytical formulae. The results are found to be in close agreement. It is observed from the static structural analysis that the maximum hoop stress of the compound cylinder occurs at the mean radius. The effect of changing the mean radius (keeping the inner and outer radii same) has been studied. When the mean radius is shifted towards inner radius (i.e., inner cylinder becomes thinner and outer cylinder becomes thicker), the maximum permissible interference (limited by yield strength of the material) becomes smaller. From the vibration analysis, it is discovered that only torsional mode frequency is affected by the interference in the absence of friction at the interface. When friction is present, the frequencies of all the modes are not affected by the interference and hence the natural frequencies remain constant. However, it is noticed that as the mean radius is decreased, the torsional mode frequency of inner cylinder for fixed-fixed boundary condition approaches 0 Hz. In comparison to the fixed-free boundary condition of the compound cylinder, the natural frequencies for fixed-fixed boundary condition are significantly higher.
author2 Sellakkutti Rajendran
author_facet Sellakkutti Rajendran
Tan, Kok Hien
format Final Year Project
author Tan, Kok Hien
author_sort Tan, Kok Hien
title Stress and vibration analysis of interference-fitted tubular joints by finite element analysis
title_short Stress and vibration analysis of interference-fitted tubular joints by finite element analysis
title_full Stress and vibration analysis of interference-fitted tubular joints by finite element analysis
title_fullStr Stress and vibration analysis of interference-fitted tubular joints by finite element analysis
title_full_unstemmed Stress and vibration analysis of interference-fitted tubular joints by finite element analysis
title_sort stress and vibration analysis of interference-fitted tubular joints by finite element analysis
publisher Nanyang Technological University
publishDate 2023
url https://hdl.handle.net/10356/167381
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