Analysis of anchor drop and drag over the pipeline

The present work examines the denting response of a pipeline subjected to quasi-static anchor loading, imposed by a triangular block with patch profile. Using Simulation module of ANSYS Workbench V11.0, a parametric study is conducted and denting force-displacement results are obtained for various...

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Main Author: Lai, Kah Yip
Other Authors: Ong Lin Seng
Format: Final Year Project
Language:English
Published: 2009
Subjects:
Online Access:http://hdl.handle.net/10356/17180
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-171802023-03-04T19:05:46Z Analysis of anchor drop and drag over the pipeline Lai, Kah Yip Ong Lin Seng School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering::Mechanics and dynamics The present work examines the denting response of a pipeline subjected to quasi-static anchor loading, imposed by a triangular block with patch profile. Using Simulation module of ANSYS Workbench V11.0, a parametric study is conducted and denting force-displacement results are obtained for various pipe’s thickness, lengths, internal pressures, indenter widths and orientations. The finite element modeling consists of a quarter-model which is constructed using SOLID186 elements. Initial frictionless contacts are considered for the pipe-indenter and pipe-soil interfaces using contact pair elements. Boundary conditions are set to simulate a fixed end pipeline lying on a rigid seabed. Displacement loading using time steps is employed to determine the response of the pipe under indentation. A successful replicate model of previous work is obtained to ensure a good level of accuracy in simulation runs. It was found that when the pipe wall thickness is increased, the pipe has more resistance to indentation and required more denting force to cause non-linear deformations. Similarly, when the internal pressure of a pipe is increased, the pipe becomes stiffer. With an increase in pressure, the localized denting length increases as well. The plots of yield force for various length to diameter ratios also show that a shorter pipe will require a larger force to cause structural deformations. For the effect of indenter width, it is found that the force required for a pipe to deform non-linearly increased when a wider indenter is used. Ovalisation results are tabulated to investigate the extent of deformation for various widths and thickness. Lastly, the denting behaviours show that a transversely loaded indenter required more denting force for structural deformation as compared to a longitudinally loaded indenter. These results are based on a simplified model and do not include all aspects of pipeline indentation. However, the parameters tested will give an insight into the possibility of failure of pipe during an anchor-loaded impact. Future work recommendations for improvements to the FEM model are made. Bachelor of Engineering (Mechanical Engineering) 2009-06-01T04:28:33Z 2009-06-01T04:28:33Z 2009 2009 Final Year Project (FYP) http://hdl.handle.net/10356/17180 en Nanyang Technological University 87 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::Mechanics and dynamics
spellingShingle DRNTU::Engineering::Mechanical engineering::Mechanics and dynamics
Lai, Kah Yip
Analysis of anchor drop and drag over the pipeline
description The present work examines the denting response of a pipeline subjected to quasi-static anchor loading, imposed by a triangular block with patch profile. Using Simulation module of ANSYS Workbench V11.0, a parametric study is conducted and denting force-displacement results are obtained for various pipe’s thickness, lengths, internal pressures, indenter widths and orientations. The finite element modeling consists of a quarter-model which is constructed using SOLID186 elements. Initial frictionless contacts are considered for the pipe-indenter and pipe-soil interfaces using contact pair elements. Boundary conditions are set to simulate a fixed end pipeline lying on a rigid seabed. Displacement loading using time steps is employed to determine the response of the pipe under indentation. A successful replicate model of previous work is obtained to ensure a good level of accuracy in simulation runs. It was found that when the pipe wall thickness is increased, the pipe has more resistance to indentation and required more denting force to cause non-linear deformations. Similarly, when the internal pressure of a pipe is increased, the pipe becomes stiffer. With an increase in pressure, the localized denting length increases as well. The plots of yield force for various length to diameter ratios also show that a shorter pipe will require a larger force to cause structural deformations. For the effect of indenter width, it is found that the force required for a pipe to deform non-linearly increased when a wider indenter is used. Ovalisation results are tabulated to investigate the extent of deformation for various widths and thickness. Lastly, the denting behaviours show that a transversely loaded indenter required more denting force for structural deformation as compared to a longitudinally loaded indenter. These results are based on a simplified model and do not include all aspects of pipeline indentation. However, the parameters tested will give an insight into the possibility of failure of pipe during an anchor-loaded impact. Future work recommendations for improvements to the FEM model are made.
author2 Ong Lin Seng
author_facet Ong Lin Seng
Lai, Kah Yip
format Final Year Project
author Lai, Kah Yip
author_sort Lai, Kah Yip
title Analysis of anchor drop and drag over the pipeline
title_short Analysis of anchor drop and drag over the pipeline
title_full Analysis of anchor drop and drag over the pipeline
title_fullStr Analysis of anchor drop and drag over the pipeline
title_full_unstemmed Analysis of anchor drop and drag over the pipeline
title_sort analysis of anchor drop and drag over the pipeline
publishDate 2009
url http://hdl.handle.net/10356/17180
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