Earth and Planetary Sciences (miscellaneous); Geotechnical Engineering and Engineering Geology
Abstract :
[en] This paper investigates the interference effect of closely-spaced foundations on the modulus of subgrade reaction (k) and provides an insight into some of the factors affecting the k-value of a raft foundation when other foundations (isolated footings or other identical rafts) are closely placed on both sides. The investigation adopted a three-dimensional, non-linear Finite Element numerical analysis based on a case study of a residential project with several multi-story buildings constructed on sand underlain by weathered limestone. A site-specific ground investigation was conducted to determine soil properties, which were used to construct 3D numerical models to simulate different arrangements of foundations and estimate the corresponding k-values. The results show that the k-value starts to decrease when the spacing between the foundations becomes less than three times the raft width, and the percentage of reduction in k-value increases in a non-linear way as the spacing decreases further. In addition to spacing, the study revealed that the effect of adjacent foundations depends on their size and the magnitude of their applied pressure. The case study provides a framework for developing a correction factor that can be applied to k-value for improving the structural and geotechnical design of closely-spaced shallow foundations.
Abd Elsamee WN (2013) An Experimental study on the effect of foundation Depth, Size and Shape on Subgrade Reaction of cohessionless soil. Engineering, 5(10). https://doi.org/10.4236/eng.2013.510095
Al-Refeai T and Al-Ghamdy D (1994) Geological and geotechnical aspects of Saudi Arabia. Geotech Geol Eng, 12:253-276. doi: https://doi.org/10.1007/BF00427056.
Anaswara S and Shivashankar R (2019) A numerical study on interference effects of closely spaced strip footings on soils. International Journal of Civil Engineering and Technology, 10(3).
Avci B and Gurbuz A (2018) Modulus of subgrade reaction that varies with magnitude of displacement of cohesionless soil. Arab J Geosci 11:351. doi: https://doi.org/10.1007/s12517-018-3713-1.
Biot MA (1941) General Theory of Three-Dimensional Consolidation. J Appl Phys 12:155-164. doi: https://doi.org/10.1063/1.1712886.
Bolton MD (1986) The strength and dilatancy of sands. Geotechnique, 36(1), 65-78. doi: https://doi.org/10.1680/geot.1986.36.1.65.
Bowles JE (1988) Foundation analysis and design. 4th Ed, New York: McGraw-Hill.
BSI (British Standards Institution) (1990) BS 1377-9: Methods of test for Soils for civil engineering purposes-Part 9: In-situ tests. BSI, London, UK.
Cerato AB and Lutenegger AJ (2006) Bearing capacity of square and circular footings on a finite layer of granular soil underlain by a rigid base. J Geotech Geoenvironmental Eng 132(11):1496-1501. doi: https://doi.org/10.1061/(ASCE)1090-0241(2006)132:11(1496)
Colasanti RJ and Horvath JS (2010) Practical Subgrade Model for Improved Soil-Structure Interaction Analysis: Software Implementation. Pract Period Struct Des Constr 15:278-286. doi: https://doi.org/10.1061/(ASCE)SC.1943-5576.0000060.
Das BM and Sivakugan N (2016) Fundamentals of geotechnical engineering. 5th Ed, Boston: Cengage Learning.
DIN (Deutsches Institut för Normung) (2021) DIN 18134: Determining the deformation and strength characteristics of soil by the plate loading test. Berlin, Germany.
Erickson HL and Drescher A (2002) Bearing Capacity of Circular Footings. J Geotech Geoenvironmental Eng 128:38-43. doi: https://doi.org/10.1061/(ASCE)1090-0241(2002)128:1(38).
Gourvenec S, Randolph M and Kingsnorth O (2006) Undrained Bearing Capacity of Square and Rectangular Footings. Int J Geomech 6:147-157. doi: https://doi.org/10.1061/(ASCE)1532-3641(2006)6:3(147).
Horvath JS and Colasanti RJ (2011) Practical Subgrade Model for Improved Soil-Structure Interaction Analysis: Model Development. Int J Geomech 11:59-64. doi: https://doi.org/10.1061/(ASCE)GM.1943-5622.0000070.
Kayabasi A, Gokceoglu C and Ercanoglu M (2003) Estimating the deformation modulus of rock masses: A comparative study. Int J Rock Mech Min Sci 40:55-63. doi: https://doi.org/10.1016/S1365-1609(02)00112-0.
Kumar J and Bhoi MK (2009) Interference of two closely spaced strip footings on sand using model tests. J Geotech Geoenvironmental Eng 135(4):595-604. doi: https://doi.org/10.1061/(ASCE)1090-0241(2009)135:4(595)
Kumar J and Ghosh P (2007) Ultimate bearing capacity of two interfering rough strip footings. Int J Geomech 7(1):53-62. https://doi.org/10.1061/(ASCE)1532-3641(2007)7:1(53).
Massih DSYA and Soubra A-H (2007) Numerical Simulations for the Bearing Capacity of Strip Footings. In: Advances in Shallow Foundations. American Society of Civil Engineers, Reston, VA, pp 1-10. doi: https://doi.org/10.1061/40915(234)5
MathWorks (2005) Inc. MATLAB: The language of technical computing. Desktop tools and development environment, version 7.
Meyerhof GG and Baikie LD (1963) Strength of steel culvert sheets bearing against compacted sand backfill. Highway Research Record, 30.
MIDAS-GTS (2014) Geotechnical Analysis System user?s guide.
Nainegali LS, Basudhar PK and Ghosh P (2013) Interference of two asymmetric closely spaced strip footings resting on nonhomogeneous and linearly elastic soil bed. Int J Geomech 13(6):840.
Ou, CY (2006). Deep excavation: Theory and practice. London: Taylor & Francis.
Peck R, Hanson W and Thornburn T (1991) Foundation engineering. 2nd ed, (Vol. 10). ISBN: 978-0-471-67585-3; New York: Wiley.
Poulos HG (2018) Rational assessment of modulus of subgrade reaction. J of the Southeast Asian Geotechnical Society, 49(1):1-7.
Schultze E and Melzer KJ (1965) The determination of the density and the modulus of compressibility of non-cohesive soils by soundings. In: Proc., 6th Int. Conf. Soil Mech. Found. Eng. pp 354-358.
Selvadurai APS (1979) Elastic analysis of soil-foundation interaction. In Developments in Geotechnical Engineering 17. Elsevier.
Shehata WM and Amin AA (1997) Geotechnical hazards associated with desert environment. Nat Hazards 16:81-95. doi: https://doi.org/10.1023/A:1007930614217.
Stuart JG (1962) Interference Between Foundations, with Special Reference to Surface Footings in Sand. Géotechnique 12:15-22. doi: https://doi.org/10.1680/geot.1962.12.1.15.
Terzaghi K (1955) Evaluation of coefficients of subgrade reaction. Geotechnique 5:297-326.
Ukritchon B, Whittle AJ and Klangvijit C (2003) Calculations of Bearing Capacity Factor Ny Using Numerical Limit Analyses. J Geotech Geoenvironmental Eng 129:468-474. doi: https://doi.org/10.1061/(ASCE)1090-0241(2003)129:6(468).
Vesic AB (1961) Beams on elastic subgrade and the Winkler?s hypothesis. In: Proceedings, 5th International Conference on Soil Mechanics and Foundation Engineering. pp 845-850.
Winkler E (1867) Die Lehre von der Elasticität und Festigkeit mit besonderer Röcksicht auf ihre Anwendungen in der Technik; Prague, Czech Republic: Dominicus
Zhang L (2010) Estimating the Strength of Jointed Rock Masses. Rock Mech Rock Eng 43:391-402. doi: https://doi.org/10.1007/s00603-009-0065-x.