Numerical study of spudcon penetration on two-layered soil with Lagrangian-Eulerian couple

Document Type : Original Article

Authors

1 MS.c graduated of Coastal ports and marine structures engineering, Department of Marine Structures, Faculty of Marine Engineering, Khorramshahr University of Marine Sciences and Techniques, Khorramshahr, Iran.

2 Associate Professor, Department of Marine Structures, Faculty of Marine Engineering, Khorramshahr University of Marine Sciences and Technologies, Khorramshahr, Iran.

3 MS.c graduated of Science of Naval Architectures, Department of Naval Architectures, Faculty of Marine Engineering, Khorramshahr University of Marine Sciences and Technologies, Khorramshahr, Iran.

Abstract

Introduction
Jackup rigs are one of the most widely used and popular offshore structures in semi-deep waters due to their mobility. The new jackups usually consist of a floating triangular body supported by three independent vertical truss legs that can be raised, lowered and jacked, and each of these legs rests on foundations known as spuds. They ride and reach stability and balance by penetrating deep into the soil. In cases where the seabed soil has a layered structure including a strong layer placed on top of a weak layer, there is a possibility of punch failure during foundation penetration. Knowing about the soil flow mechanisms around the foundation of the spudcon that suffer continuous large penetration and also estimating the probability and degree of intensity of a sudden spudcon penetration are very important issues.
Methodology
In the present research, a numerical study was carried out to investigate the bearing capacity of the spudken foundation of the offshore jackup structure in soil with a two-layer system of sand on clay. Finite element analysis of large deformations has been used to simulate the continuous penetration of the spudken foundation in a layered soil consisting of a strong sand layer placed on top of a weak clay layer. Numerical simulation is done by "Eulerian-Lagrangian coupling" method in ABAQUS software.
In this research, the effect of characteristics of sand and clay layers, including relative density (ID) and thickness of sand layer, shear strength at the boundary of two layers (su0), gradient of shear strength of clay layer on bearing capacity and punch rupture phenomenon are studied. In this research, the Mohr-Columb model was used to model the behavior of sandy and clay soils.

Results and discussion
The results of the research show that the parameters related to geotechnical characteristics, including the shear strength of the clay layer, the shear resistance gradient, the relative density of the sand layer, and the thickness of the sand layer have a direct relationship with the bearing strength of the Spadken foundation. So that with the increase of each of these characteristics, the bearing resistance also increases. The obtained results showed that by increasing the thickness (Hs) and relative density (ID) of the sand layer, the load bearing capacity of the pispodken (q) and the volume of the transferred sandy soil mass (the height of the soil mass (hplug) and the width of the soil mass) (bplug) increases, so that with the increase of Hs from 6 m to 8 m, the value of qpeak increases from 263 kPa to 346 kPa, the value of hplug from 6.52 m to 8.26 m and the value of bplug from 6.6 m to 6.9 m and with The increase of ID from 20% to 60% increases the qpeak value from 328 kPa to 367 kPa, the hplug value from 6.85 m to 7.14 m, and the bplug value from 5.7 m to 6 m. Also, the investigation of the effects of shear resistance (su0) and shear resistance gradient (ρ) of the clay layer shows their direct relationship with the bearing capacity and the reverse relationship with the volume of the transferred soil mass, so that with the increase of su0 from 11 kPa to 20 kPa, the value of qpeak from 307 kPa to 390 kPa, the value of hplug from 7.41 m to 7.14 m and the value of bplug from 6.9 m to 6.6 m, and with the increase of ρ from 1 kPa/m to 2 kPa/m, the value of qpeak from 314 kPa At 352 kPa, the value of hplug goes from 7.14 m to 6.9 m and the value of bplug goes from 6 m to 5.7 m.

Conclusions
The results of this research can be summarized as follows:
• Parameters related to geotechnical characteristics, including shear resistance of clay layer, gradient of shear resistance, relative density of sand layer, thickness of sand layer have a direct relationship with the load bearing strength of the foundation. So that with the increase of each of these characteristics, the bearing resistance also increases.
• The severity and risk of punch breakage increases with the increase in the thickness of the sand layer and the decrease in the shear strength of the clay layer.
• The soil rupture pattern under the infiltrating spudken foundation changes with respect to the depth, such that at surface depths, the rupture has two components, shear along the almost vertical shear plane in the sand layer and local shear rupture in the clay layer.

Keywords

Main Subjects


Craig, W. H., & Chua, K. (1990). Deep penetration of spudcan foundations on sand and clay.  Geotechnique, 40(4), 541-556. https://doi.org/10.1680/geot.1990.40.4.541
Dier, A., Carrol, B., & Abolfathi, S. (2004). Guidelines For Jack Up Rigs with Particular Reference to Foundation Integrity, Health and Safety Executive (HSE). Research Report 289, UK, 1-91. https://www.hse.gov.uk/Research/rrhtm/rr289.html
Drescher, A., & Detournay, E. (1993). Limit load in translational failure mechanisms for associative and non- associative materials. Geotechnique, 43(3), 443-456. https://doi.org/10.1680/geot.1993.43.3.443
Gao, W., Yu, L., & Hu, Y. (2012). Large deformation FE analysis of large diameter spudcan penetration into two-layer of uniform clays. International Journal of Geotechnical Engineering,
 6(2), 171-177. https://doi.org/ 10.3328/IJGE.2012.06.02.171-177
Gerwick, B. C. (1986). Construction of offshore structures. John Wiley, New York. https://doi.org/10.1201/9780849330520
Hanna, A. M., & Meyerhof, G. G. (1980). Design charts for ultimate bearing capacity of foundations on sand overlying soft clay. Can. Geotech. J, 17(2), 300-303. https://doi.org/10.1139/t80-030
Hansen, J. B. (1970). A revised and extended formula for bearing capacity. Bulleting of the danish geotechnical institute, 28, 5-11. https://www.semanticscholar.org
Hossain, M. S., Hu, Y., & Randolph, M. F. (2003). Spudcan foundation penetration into uniform clay. Proceedings of The Thirteenth International Offshore and Polar Engineering Conference, May 25–30, Honolulu, Hawaii, USA. https://onepetro.org/ISOPEIOPEC/proceedings-abstract/ISOPE03/All-ISOPE03/ISOPE-I-03-177/8446
Houlsby, G. T., & Martin, C. M., (2003). Undrained bearing capacity factors for conical footings on clay. Geotechnique, 53(5), 513-520. https://ora.ox.ac.uk/objects/uuid:e3b491f0-4a72-4881-85d0-e1b512bdc618
Hu, P., Stanier, S. A., Cassidy, M. J., & Wang, D. (2014). Predicting peak resistance of
Hu, P., Stanier, S., Cassidy, M., & Wang, D. (2014). Predicting Peak Resistance of Spudcan Penetrating Sand Overlying Clay. Journal of Geotechnical and Geoenvironmental Engineering, 140. https://doi.org/ 10.1061/(ASCE)GT.1943-5606.0001016
ISO. (2012). ISO 19905-1: Petroleum and natural gas industries-site specific assessment of mobile offshore units-part 1 : Jack-ups. Geneva, Switzerland : International Organization for
Lee, K. K. (2009). Investigation of potential spudcan punch- through failure on sand overlying clay soils. PhD thesis, University of Western Australia, Perth. https://api.research                                 repository.uwa.edu.au/ws/portalfiles/portal/3220219/Lee_Kok_Kuen_2009.pdf
Lee, K. K., Randolph, M. F., & Cassidy, M. J. (2013). Bearing capacity on sand overlying clay soils: A simplified conceptual model. Geotechnique, 63(15), 1285-1297. https://doi.org/10.1680/geot.12.P.176
Liu, J., Yu, L., Zhou, H., & Kong, X. J. (2014). Bearing Capacity and Critical Punch-Through Depth of Spudcan on Sand Overlying Clay. China Ocean Eng, 28(1), 139 – 147. https://doi.org/ 10.1007/s13344-014-0011-x
Meyerhof, G. G. (1974). Ultimate bearing capacity of footings on sand layer overlying clay. Can. Geotech. J, 11(2), 223-229. https://doi.org/10.1139/t74-018
Qiu, G., & Henke, S. (2011). Controlled installation of spudcan foundations on loose sand overlying weak clay. Marine Structures, 24(4), 528–550. https://doi.org/ 10.1016/j.marstruc.2011.06.005
Qiu, G., Henke, S., & Grabe, J. (2010). 3D FE analysis of the installation process of spudcan foundations. In 2nd International Symposium on Frontiers in Offshore Geotechnics (ISFOG), Perth WA, 685–690. http://hdl.handle.net/11420/12144
SNAME. (2008). SNAME: Recommended practice for site specific assessment of mobile jack-up units. T & r bulletin 5-5a 1st edn, rev 3. Alexandria, VA, USA: Society of Naval Architechts and Marine Engineers. https://pdfcoffee.com/sname-5-5-and-5-5arev3-pdf-free.html
spudcan penetrating sand overlying clay. Journal of Geotechnical and Geoenvironmental Engineering, 140(2), 04013009. https://doi.org/10.1061/(ASCE)GT.1943-5606.0001016
Standardization. https://www.iso.org/standard/34592.html
Teh, K. L. (2007). Punch- through of spudcan foundation on sand overlying clay. PhD thesis, National University of Singapore. https://scholarbank.nus.edu.sg/handle/10635/28149
Teh, K. L., Cassidy, M. J., Leung, C. F., Chow, Y. K., Randolph, M. F., & Quah, C. K. (2008). Revealing the bearing failure mechanisms of a penetrating spudcan through sand overlying clay. Geotechnique, 58(10), 793–804. https://doi.org/10.1680/geot.2008.58.10.793
Teh, K. L., Leung, C. F., Chow, Y. K., & Handidjaja, P. (2009). Prediction of punch-through for spudcan penetration in sand overlying clay. Offshore Technology Conference, OTC20060. https:/doi.org/ 10.4043/OTC-20060-MS
Terzaghi, K. (1943). Theoretical soil mechanics. London: Chapman and Hall. https:/doi.org/  10.4043/OTC-20060-MS
Terzaghi, K., & Peck, R. B. (1948). Soil mechanics in engineering practice. New York, John Wiley & Sons. https://www.scirp.org/reference/ReferencesPapers?ReferenceID=1289570
Xu, X. (2007). Investigation of the end bearing performance of displacement piles in sand. Phd thesis, University of Western Australia. https://research-repository.uwa.edu.au/en/publications/investigation-of-the-end-bearing-performance-of-displacement-pile
Yu, L., Hu, Y., & Liu, J. (2009). Spudcan penetration in loose sand over uniform clay. Proceedings of the 28th International Conference on Ocean, Offshore and Arctic Engineering, May 31 - June 5, Honolulu, Hawaii, USA. https://doi.org/10.1115/OMAE2009-79214