Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control

Pipe-in-pipe (PIP) system can be considered as a structure-tuned mass damper (TMD) system by replacing the hard centralizers by the softer springs and dashpots to connect the inner and outer pipes. With properly designed connecting devices, PIP system therefore has the potential to mitigate the subs...

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Main Authors: Bi, Kaiming, Hao, Hong, Chen, Wensu
Format: Journal Article
Published: World Scientific Publishing Co. Pte. Ltd. 2018
Online Access:http://purl.org/au-research/grants/arc/DE150100195
http://hdl.handle.net/20.500.11937/72582
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author Bi, Kaiming
Hao, Hong
Chen, Wensu
author_facet Bi, Kaiming
Hao, Hong
Chen, Wensu
author_sort Bi, Kaiming
building Curtin Institutional Repository
collection Online Access
description Pipe-in-pipe (PIP) system can be considered as a structure-tuned mass damper (TMD) system by replacing the hard centralizers by the softer springs and dashpots to connect the inner and outer pipes. With properly designed connecting devices, PIP system therefore has the potential to mitigate the subsea pipeline vibrations induced by various sources, such as earthquake or vortex shedding. This study proposes using rotational friction hinge dampers with springs (RFHDSs) to connect the inner and outer pipes. The rotational friction hinge dampers (RFHDs) are used to absorb the energy induced by the external vibration sources and the springs are used to provide the stiffness to the TMD system and to restore the original locations of the inner and outer pipes. To investigate the effectiveness of this new design concept, detailed three-dimensional (3D) finite element (FE) model of the RFHD is developed in ANSYS and the hysteretic behavior of RFHD is firstly studied. The calculated hysteretic loop is then applied to the 3D PIP FE model to estimate the seismic responses. The effectiveness of the proposed system to mitigate seismic induced vibrations is examined by comparing the seismic responses of the proposed system with the conventional PIP system. The influences of various parameters, such as the preload on the bolt, the friction coefficient and the spring stiffness, on the RFHD hysteresis behavior and on the seismic responses of PIP system are investigated and some suggestions on the RFHDS design are made.
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format Journal Article
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T10:53:08Z
publishDate 2018
publisher World Scientific Publishing Co. Pte. Ltd.
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spelling curtin-20.500.11937-725822022-09-06T05:48:20Z Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control Bi, Kaiming Hao, Hong Chen, Wensu Pipe-in-pipe (PIP) system can be considered as a structure-tuned mass damper (TMD) system by replacing the hard centralizers by the softer springs and dashpots to connect the inner and outer pipes. With properly designed connecting devices, PIP system therefore has the potential to mitigate the subsea pipeline vibrations induced by various sources, such as earthquake or vortex shedding. This study proposes using rotational friction hinge dampers with springs (RFHDSs) to connect the inner and outer pipes. The rotational friction hinge dampers (RFHDs) are used to absorb the energy induced by the external vibration sources and the springs are used to provide the stiffness to the TMD system and to restore the original locations of the inner and outer pipes. To investigate the effectiveness of this new design concept, detailed three-dimensional (3D) finite element (FE) model of the RFHD is developed in ANSYS and the hysteretic behavior of RFHD is firstly studied. The calculated hysteretic loop is then applied to the 3D PIP FE model to estimate the seismic responses. The effectiveness of the proposed system to mitigate seismic induced vibrations is examined by comparing the seismic responses of the proposed system with the conventional PIP system. The influences of various parameters, such as the preload on the bolt, the friction coefficient and the spring stiffness, on the RFHD hysteresis behavior and on the seismic responses of PIP system are investigated and some suggestions on the RFHDS design are made. 2018 Journal Article http://hdl.handle.net/20.500.11937/72582 10.1142/S0219455418400059 http://purl.org/au-research/grants/arc/DE150100195 World Scientific Publishing Co. Pte. Ltd. restricted
spellingShingle Bi, Kaiming
Hao, Hong
Chen, Wensu
Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control
title Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control
title_full Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control
title_fullStr Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control
title_full_unstemmed Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control
title_short Effectiveness of Using RFHDS Connected PIP System for Subsea Pipeline Vibration Control
title_sort effectiveness of using rfhds connected pip system for subsea pipeline vibration control
url http://purl.org/au-research/grants/arc/DE150100195
http://hdl.handle.net/20.500.11937/72582