Technical Papers
Mar 18, 2019

Performance of a Novel Dynamically Installed Fish Anchor in Calcareous Silt

Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 145, Issue 6

Abstract

Diving upon pullout of an installed anchor leads to an increase in embedment depth and, hence, capacity under operational loadings. It is particularly critical for dynamically installed anchors (DIAs) in calcareous sediments where the embedment depth is generally relatively shallow. This paper proposes a novel fish DIA featuring an elliptically shaped shaft, which reduces hydrodynamic drag resistance. Every cross section of the anchor shaft is elliptical, and the widest part is in the middle. The shaft is shaped to be thicker near the head to lower the mass centroid and increase its diving potential. The padeye is fitted perpendicularly to the wider part of the shaft, so that the maximum resistance area can be mobilized during pullout loading. The dynamic installation and monotonic pullout performance of the fish DIA in calcareous silt were assessed through a series of beam centrifuge tests at 133.3 times Earth’s gravity, varying the drop height (hence the impact velocity), reconsolidation period after installation and load inclination angle at the mudline. The anchor tip embedment depths of 1.02–1.42 times the anchor length lay in the range for OMNI-Max and torpedo DIAs in calcareous silt. A dimensionless embedment depth–based model, total energy–based models, and a conventional shear resistance model were found to be adequate for the prediction of embedment depths. The tracked anchor trajectory confirmed that the fish DIA dove under inclined mudline loading (θ0<45°), as opposed to being pulled out for torpedo and OMNI-Max DIAs. The normalized vertical and horizontal holding capacities of the fish DIA were respectively 4.0 and 5.6 times those of a four-fin torpedo DIA.

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Acknowledgments

The first author is the recipient of an International Postgraduate Research Scholarship and an Australian Postgraduate Award. The research presented here was undertaken with support from the Australian Research Council through the Discover Early Career Researcher Award DE140100903. The work forms part of the activities of the Centre for Offshore Foundation Systems (COFS), currently supported as a node of the Australian Research Council Centre of Excellence for Geotechnical Science and Engineering, through Centre of Excellence funding from the State Government of Western Australia and in partnership with the Lloyd’s Register Foundation. This support is gratefully acknowledged, as is the assistance of the beam centrifuge technician, Mr. Kelvin Leong.

References

Andersen, K. H., J. D. Murff, M. F. Randolph, E. C. Clukey, C. T. Erbrich, H. P. Jostad, B. Hansen, C. Aubeny, P. Sharma, and C. Supachawarote. 2005. “Suction anchors for deepwater applications.” In Proc., Int. Symp. on Frontiers in Offshore Geotechnics, ISFOG, 3–30. London: Taylor & Francis Group.
Blake, A. P., C. D. O’Loughlin, and C. Gaudin. 2010. “Setup following keying of plate anchors assessed through centrifuge tests in kaolin clay.” In Proc., 2nd Int. Symp. on Frontiers in Offshore Geotechnics, ISFOG, 705–710. London: Taylor & Francis Group.
Boukpeti, N., and D. J. White. 2011. Strength characterisation of a carbonate silt across the solid-fluid boundary report no. GEO: 11549, MERIWA project no. M395. Crawley, Australia: Geomechanics Group, Centre for Offshore Foundation Systems, Univ. of Western Australia.
Brandão, F. E. N., C. C. D. Henriques, J. B. Araújo, O. C. G. Ferreira, and C. Dos Santos Amaral. 2006. “Albacora Leste field development-FPSO P-50 mooring system concept and installation.” In Proc., 38th Offshore Technology Conf. Houston: Offshore Technology Conference.
Chang, K., M. S. Hossain, Y. H. Kim, M. F. Randolph, and D. Wang. 2018. “Novel dynamically installed fish anchor—Diving upon loading in calcareous silt.” In Proc., 50th Offshore Technology Conf. Houston: Offshore Technology Conference.
Chang, K., M. S. Hossain, Y. H. Kim, and D. Wang. 2019. “Cyclic capacity and diving potential of novel fish anchor in calcareous silt.” J. Geotech. Geoenviron. Eng. in press.
Chow, S. H., C. D. O’loughlin, and M. F. Randolph. 2014. “Soil strength estimation and pore pressure dissipation for free-fall piezocone in soft clay.” Géotechnique 64 (10): 817–827. https://doi.org/10.1680/geot.14.P.107.
Coop, M., K. Sorensen, T. B. Freitas, and G. Georgoutsos. 2004. “Particle breakage during shearing of a carbonate sand.” Géotechnique 54 (3): 157–163. https://doi.org/10.1680/geot.2004.54.3.157.
Dayal, U., J. H. Allen, and J. M. Jones. 1975. “Use of an impact penetrometer for the evaluation of the in-situ strength of marine sediments.” Mar. Georesour. Geotechnol. 1 (2): 73–89. https://doi.org/10.1080/10641197509388155.
Einav, I., and M. F. Randolph. 2005. “Combining upper bound and strain path methods for evaluating penetration resistance.” Int. J. Numer. Methods Eng. 63 (14): 1991–2016. https://doi.org/10.1002/nme.1350.
Einav, I., and M. F. Randolph. 2006. “Effect of strain rate on mobilised strength and thickness of curved shear bands.” Géotechnique 56 (7): 501–504. https://doi.org/10.1680/geot.2006.56.7.501.
Finnie, I. M., and M. F. Randolph. 1994. “Bearing response of shallow foundations in uncemented calcareous soil.” In Proc., Int. Conf. Centrifuge, 535–540. Rotterdam, Netherlands: A.A. Balkema.
Gaudin, C., C. D. O’Loughlin, M. S. Hossain, and E. H. Zimmerman. 2013. “The performance of dynamically embedded anchors in calcareous silt.” In Proc., ASME 32nd Int. Conf. On Ocean, Offshore and Arctic Engineering, OMAE. New York: American Society of Mechanical Engineering.
Gaudin, C., C. D. O’Loughlin, M. F. Randolph, and A. C. Lowmass. 2006. “Influence of the installation process on the performance of suction embedded plate anchors.” Géotechnique 56 (6): 381–391. https://doi.org/10.1680/geot.2006.56.6.381.
Hossain, M. S., Y. Hu, M. F. Randolph, and D. J. White. 2005. “Limiting cavity depth for spudcan foundations penetrating clay.” Géotechnique 55 (9): 679–690. https://doi.org/10.1680/geot.2005.55.9.679.
Hossain, M. S., Y. Kim, and C. Gaudin. 2014. “Experimental investigation of installation and pullout of dynamically penetrating anchors in clay and silt.” J. Geotech. Geoenviron. Eng. 140 (7): 04014026. https://doi.org/10.1061/(ASCE)GT.1943-5606.0001100.
Hossain, M. S., C. D. O’Loughlin, and Y. Kim. 2015. “Dynamic installation and monotonic pullout of a torpedo anchor in calcareous silt.” Géotechnique 65 (2): 77–90. https://doi.org/10.1680/geot.13.P.153.
Kim, Y. H., and M. S. Hossain. 2015. “Dynamic installation of OMNI-Max anchors in clay: Numerical analysis.” Géotechnique 65 (12): 1029–1037. https://doi.org/10.1680/jgeot.15.T.008.
Kim, Y. H., and M. S. Hossain. 2017. “Dynamic installation, keying and diving of OMNI-Max anchors in clay.” Géotechnique 67 (1): 78–85. https://doi.org/10.1680/jgeot.16.T.008.
Kim, Y. H., M. S. Hossain, and K. Chang. 2018. “Numerical investigation of novel dynamic installed anchors in clay and calcareous silt.” Ocean Eng. 163: 29–39. https://doi.org/10.1016/j.oceaneng.2018.05.051.
Lieng, J. T., T. I. Tjelta, and K. Skaugset. 2010. “Installation of two prototype deep penetrating anchors at the Gjøa Field in the North sea.” In Proc., 42nd Offshore Technology Conf. Houston: Offshore Technology Conference.
Mao, X., and M. Fahey. 2003. “Behaviour of calcareous soils in undrained cyclic simple shear.” Géotechnique 53 (8): 715–727. https://doi.org/10.1680/geot.2003.53.8.715.
Medeiros, C. J. Jr. 2002. “Low cost anchor system for flexible risers in deep waters.” In Proc., 34th Offshore Technology Conf. Houston: Offshore Technology Conference.
Miao, G., and D. Airey. 2013. “Breakage and ultimate states for a carbonate sand.” Géotechnique 63 (14): 1221–1229. https://doi.org/10.1680/geot.12.P.111.
Morton, J. P., C. D. O’Loughlin, and D. J. White. 2014. “Strength assessment during shallow penetration of a sphere in clay.” Géotech. Lett. 4 (4): 262–266. https://doi.org/10.1680/geolett.14.00049.
Neubecker, S. R., and M. F. Randolph. 1995. “Profile and frictional capacity of embedded anchor chains.” J. Geotech. Eng. 121 (11): 797–803. https://doi.org/10.1061/(ASCE)0733-9410(1995)121:11(797).
O’Beirne, C., C. D. O’Loughlin, and C. Gaudin. 2015. “Soil response in the wake of dynamically installed projectiles.” Géotech. Lett. 5 (3): 153–160. https://doi.org/10.1680/jgele.15.00055.
O’Beirne, C., C. D. O’Loughlin, and C. Gaudin. 2016. “Assessing the penetration resistance acting on a dynamically installed anchor in normally consolidated and over consolidated clay.” Can. Geotech. J. 54 (1): 1–17. https://doi.org/10.1139/cgj-2016-0111.
O’Loughlin, C. D., A. P. Blake, M. D. Richardson, M. F. Randolph, and C. Gaudin. 2014a. “Installation and capacity of dynamically embedded plate anchors as assessed through centrifuge tests.” Ocean Eng. 88: 204–213. https://doi.org/10.1016/j.oceaneng.2014.06.020.
O’Loughlin, C. D., C. Gaudin, J. P. Morton, and D. J. White. 2014b. “MEMS accelerometers for measuring dynamic penetration events in geotechnical centrifuge tests.” Int. J. Phys. Modell. Geotech. 14 (2): 31–39. https://doi.org/10.1680/ijpmg.13.00020.
O’Loughlin, C. D., M. F. Randolph, and M. Richardson. 2004. “Experimental and theoretical studies of deep penetrating anchors.” In Proc., 36th Offshore Technology Conf. Houston: Offshore Technology Conference.
O’Loughlin, C. D., M. D. Richardson, M. F. Randolph, and C. Gaudin. 2013. “Penetration of dynamically installed anchors in clay.” Géotechnique 63 (11): 909–919.
O’Loughlin, C. D., D. White, and S. Stanier. 2015. “Novel anchoring solutions for FLNG-opportunities driven by scale.” In Proc., 47th Offshore Technology Conf. Houston: Offshore Technology Conference.
Randolph, M. F., R. J. Jewell, K. J. L. Stone, and T. A. Brown. 1991. “Establishing a new centrifuge facility.” In Proc., Int. Conf. on Centrifuge Modelling, Centrifuge, 3–9. Rotterdam, Netherlands: A.A. Balkema.
Richardson, M. D. 2008. “Dynamically installed anchors for floating offshore structures.” Ph.D. thesis, Centre for Offshore Foundation Systems, Univ. of Western Australia.
Sharma, S. S., and M. A. Ismail. 2006. “Monotonic and cyclic behavior of two calcareous soils of different origins.” J. Geotech. Geoenviron. Eng. 132 (12): 1581–1591. https://doi.org/10.1061/(ASCE)1090-0241(2006)132:12(1581).
Skempton, A. W. 1951. “The bearing capacity of clays.” In Vol. 1 of Proc., Building Research Congress, 180–189. London: The Congress.
Steiner, A., A. J. Kopf, J.-S. L’heureux, S. Kreiter, S. Stegmann, H. Haflidason, and T. Moerz. 2013. “In situ dynamic piezocone penetrometer tests in natural clayey soils—A reappraisal of strain-rate corrections.” Can. Geotech. J. 51 (3): 272–288. https://doi.org/10.1139/cgj-2013-0048.
Tian, Y., M. J. Cassidy, and C. Gaudin. 2014. “The influence of padeye offset on plate anchor re-embedding behaviour.” Géotech. Lett. 4 (1): 39–44. https://doi.org/10.1680/geolett.13.00056.
True, D. G. 1974. “Rapid penetration into seafloor soils.” In Proc., 6th Offshore Technology Conf. Houston: Offshore Technology Conference.
Wei, Q., Y. Tian, M. J. Cassidy, C. Gaudin, and C. D. O’Loughlin. 2015. “Behaviour of OMNI-Max anchors under chain loading.” In Proc., 3rd Int. Symp. on Frontiers in Offshore Geotechnics (ISFOG), 925–930. London: Taylor & Francis Group.
White, D. J., C. Gaudin, N. Boylan, and H. Zhou. 2010. “Interpretation of T-bar penetrometer tests at shallow embedment and in very soft soils.” Can. Geotech. J. 47 (2): 218–229. https://doi.org/10.1139/T09-096.
Young, D. F., B. R. Munson, T. H. Okiishi, and W. W. Huebsch. 2010. A brief introduction to fluid mechanics. New York: Wiley.
Zhu, H., and M. F. Randolph. 2011. “Numerical analysis of a cylinder moving through rate-dependent undrained soil.” Ocean Eng. 38 (7): 943–953. https://doi.org/10.1016/j.oceaneng.2010.08.005.
Zimmerman, E. H., M. Smith, and J. T. Shelton. 2009. “Efficient gravity installed anchor for deepwater mooring.” In Proc., 41st Offshore Technology Conf. Houston: Offshore Technology Conference.

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Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 145Issue 6June 2019

History

Received: Jan 22, 2018
Accepted: Oct 25, 2018
Published online: Mar 18, 2019
Published in print: Jun 1, 2019
Discussion open until: Aug 18, 2019

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Research Student, Centre for Offshore Foundation Systems, Univ. of Western Australia, 35 Stirling Hwy., Crawley, WA 6009, Australia. Email: [email protected]
M. S. Hossain [email protected]
Associate Professor, Centre for Offshore Foundation Systems, Oceans Graduate School, Univ. of Western Australia, 35 Stirling Hwy., Crawley, WA 6009, Australia (corresponding author). Email: [email protected]
Professor, Shandong Provincial Key Laboratory of Marine Environment and Geological Engineering, Ocean Univ. of China, 238 Songling Rd., Qingdao 266100, China; formerly, Senior Research Fellow, Centre for Offshore Foundation Systems, Univ. of Western Australia, Crawley, WA 6009, Australia. Email: [email protected]
Research Fellow, Centre for Offshore Foundation Systems, Oceans Graduate School, Univ. of Western Australia, 35 Stirling Hwy., Crawley, WA 6009, Australia. Email: [email protected]

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