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Behavior of unbonded flexible risers subject to axial tension

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Abstract

Owing to nonlinear contact problems with slip and friction, a lot of limiting assumptions are made when developing analytical models to simulate the behavior of an unbonded flexible riser. Meanwhile, in order to avoid convergence problems and excessive calculating time associated with running the detailed finite element (FE) model of an unbonded flexible riser, interlocked carcass and zeta layers with complicated cross section shapes are replaced by simple geometrical shapes (e.g. hollow cylindrical shell) with equivalent orthotropic materials. But the simplified model does not imply the stresses equivalence of these two layers. To solve these problems, based on ABAQUS/Explicit, a numerical method that is suitable for the detailed FE model is proposed. In consideration of interaction among all component layers, the axial stiffness of an eight-layer unbonded flexible riser subjected to axial tension is predicted. Compared with analytical and experimental results, it is shown that the proposed numerical method not only has high accuracy but also can substantially reduce the calculating time. In addition, the impact of the lay angle of helical tendons on axial stiffness is discussed.

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References

  • Alfano, G., Bahtui, A. and Bahai, H., 2009. Numerical derivation of constitutive models for unbonded flexible risers, Int. J. Mech. Sci., 51(4): 295–304.

    Article  MATH  Google Scholar 

  • Bahtui, A., 2008. Development of a Constitutive Model to Simulate Unbonded Flexible Riser Pipe Elements, Ph. D. Thesis, Brunel University.

    Google Scholar 

  • Clarke, T., Jacques, R., Bisognin, A., Camerini, C., Damasceno, S. and Strohaecker, T., 2011. Monitoring the structural integrity of a flexible riser during a full-scale fatigue test, Eng. Struct., 33(4): 1181–1186.

    Article  Google Scholar 

  • Claydon, P., Cook, G., Brown, P. A. and Chandwani, R., 1992. A theoretical approach to prediction of service life of unbonded flexible pipes under dynamic loading conditions, Mar. Struct., 5(5): 399–429.

    Article  Google Scholar 

  • Clevelario, J., 2009. Course on Flexible Pipes: Introduction to Unbonded Flexible Pipe Design & Manufacturing, Wellstream International Limited.

    Google Scholar 

  • Custódio, A. B. and Vaz, M. A., 2002. A nonlinear formulation for the axisymmetric response of umbilical cables and flexible pipes, Appl. Ocean Res., 24(1): 21–29.

    Article  Google Scholar 

  • de Sousa, J. R. M., Viero, P. F., Magluta, C. and Roitman, N., 2012. An experimental and numerical study on the axial compression response of flexible pipes, J. Offshore Mech. Arctic Eng., 134(3): 031703.1–031703.12, doi:10.1115/1.4005181.

    Article  Google Scholar 

  • Féret, J. J. and Bournazel, C. L., 1987. Calculation of stresses and slip in structural layers of unbonded flexible pipes, J. Offshore Mech. Arct. Eng., 109(3): 263–269.

    Article  Google Scholar 

  • Hibbitt, Karlsson & Sorensen Inc., 2010. ABAQUS Analysis User’s Manual, USA.

    Google Scholar 

  • Kebadze, E., 2000. Theoretical Modelling of Unbonded Flexible Pipe Cross-Sections, Ph. D. Thesis, South Bank University.

    Google Scholar 

  • Kraincanic, I. and Kebadze, E., 2001. Slip initiation and progression in helical armoring layers of unbonded flexible pipes and its effect on pipe bending behavior, The Journal of Strain Analysis for Engineering Design, 36(3): 265–275.

    Article  Google Scholar 

  • Lacarbonara, L. and Pacitti, A., 2008. Nonlinear modeling of cables with flexural stiffness, Mathematical Problems in Engineering, 2008, 370767.1–370767.21.

    Article  Google Scholar 

  • Østergaard, N. H., Lyckegaard, A. and Andreasen, J., 2012a. A method for prediction of the equilibrium state of a long and slender wire on a frictionless toroid applied for analysis of flexible pipe structures, Eng. Struct., 34(1): 391–399.

    Article  Google Scholar 

  • Østergaard, N. H., Lyckegaard, A. and Andreasen, J., 2012b. Imperfection analysis of flexible pipe armor wires in compression and bending, Appl. Ocean Res., 38, 40–47.

    Article  Google Scholar 

  • Østergaard, N. H., Lyckegaard, A. and Andreasen, J., 2012c. On modelling of lateral buckling failure in flexible pipe tensile armor layers, Mar. Struct., 27(1): 64–81.

    Article  Google Scholar 

  • Ramos, Jr. R. and Pesce, C. P., 2004. A consistent analytical model to predict the structural behavior of flexible risers subjected to combined loads, J. Offshore Mech. Arct. Eng., 126(2): 141–146.

    Article  Google Scholar 

  • Sævik, S., 2011. Theoretical and experimental studies of stresses in flexible pipes, Comput. Struct., 89(23–24): 2273–2291.

    Article  Google Scholar 

  • Vaz, M. A. and Rizzo, N. A. S., 2011. A finite element model for flexible pipe armor wire instability, Mar. Struct., 24(3): 275–291.

    Article  Google Scholar 

  • Wang, W. and Chen, G., 2011. Analytical and numerical modeling for flexible pipes, China Ocean Eng., 25(4): 737–746.

    Article  Google Scholar 

  • Witz, J. A., 1996. A case study in the cross-section analysis of flexible risers, Mar. Struct., 9(9): 885–904.

    Article  Google Scholar 

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Correspondence to Wen-yong Tang  (唐文勇).

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This work was financially supported by the Fund of State Key Laboratory of Ocean Engineering (Grant No. GKZD010059-6).

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Ren, Sf., Tang, Wy. & Guo, Jt. Behavior of unbonded flexible risers subject to axial tension. China Ocean Eng 28, 249–258 (2014). https://doi.org/10.1007/s13344-014-0020-9

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  • DOI: https://doi.org/10.1007/s13344-014-0020-9

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