Assessment of VIV fatigue of subsea template jumper by using a time domain model
Paper in proceeding, 2021

This paper addresses the application of a time domain model for Vortex-Induced Vibration (VIV) to assess the fatigue damage of subsea jumpers. The time domain model, capable of accounting for structural non-linearity and time-varying flow, was applied on a typical ’M’-shaped jumper model. Obtained results were compared against VIV motion data from experiments in the literature. Fatigue estimates were also compared to the DNVGL response model approach. Two models were investigated, with and without elbow elements in the bends. The reduced stiffness of the model including elbow elements improved the results of modal analysis and caused a shift in the mode shape order. VIV motion results were in good correlation with model test data. With several exceptions, the fatigue damage calculated using the DNVGL response model procedure was higher than obtained from the time domain model, as no mode competition is applied on non-straight pipes. For several load cases torsion stress was the largest stress component.

time domain model

subsea jumpers

Vortex-Induced Vibration (VIV)

fatigue analysis

Author

Linda Sieber

OffNoise-HSD-Systems

Svein Saevik

Norwegian University of Science and Technology (NTNU)

Jonas Ringsberg

Chalmers, Mechanics and Maritime Sciences (M2), Marine Technology

Zhenhui liu

Aker Solutions AS

Developments in the Analysis and Design of Marine Structures - Proceedings of the 8th International Conference on Marine Structures (MARSTRUCT 2021)

468-476
978-1-032-13665-3 (ISBN)

Developments in the Analysis and Design of Marine Structures - Proceedings of the 8th International Conference on Marine Structures (MARSTRUCT 2021)
Trondheim, Norway,

Driving Forces

Sustainable development

Innovation and entrepreneurship

Subject Categories

Applied Mechanics

Vehicle Engineering

Fluid Mechanics and Acoustics

Areas of Advance

Energy

Materials Science

Roots

Basic sciences

DOI

10.1201/9781003230373-53

More information

Latest update

1/28/2022