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Numerical study of a moored structure in moving broken ice driven by current and wave

Abstract

This paper presents a numerical model intended to simulate the mooring force and the dynamic response of a moored structure in drifting ice. The mooring lines were explicitly modeled by using a generic cable model with a set of constraint equations providing desired structural properties such as the axial, bending, and torsional stiffness. The six degrees-of-freedom (DOF) rigid body motions of the structure were simulated by considering its interactions with the mooring lines and the drifting ice. In this simulation, a fragmented ice field of broken ice pieces could be considered under the effects of current and wave. The ice–ice and ice–structure interaction forces were calculated based on a viscoelastic-plastic rheological model. The hydrodynamic forces acting on the floating structure, mooring line, and drifting ice were simplified and calculated appropriately. The present study, in general, demonstrates the potential of developing an integrated numerical model for the coupled analysis of a moored structure in a broken ice field with current and wave.

Category

Academic article

Language

English

Author(s)

  • Biao Su
  • Karl Gunnar Aarsæther
  • David Kristiansen

Affiliation

  • SINTEF Ocean / Aquaculture
  • SINTEF Ocean / Fisheries and New Biomarine Industry

Year

2019

Published in

Journal of Offshore Mechanics and Arctic Engineering

ISSN

0892-7219

Volume

141

Issue

3

View this publication at Norwegian Research Information Repository