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Load capacity of the mixed bench and slab foundation. Numerical simulations and analytical calculation model

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents results of a numerical investigation on load capacity of the mixed bench and slab shallow foundations (often used in the process of the modernization of the old, antique buildings, which are suffering from lack of the load capacity). The main trouble with use of existing analytical approaches is a non-unique foundation level of the bench and slab, they could even be founded on different geotechnical layers. Proposed analytical model based on Brinch Hansen (EC-7) approach could deal with such a problem. Results of 2D and 3D numerical modelling (ultimate load of the foundation) are compared to the obtained by using the proposed approach. Influence of the soil above the foundation level is also investigated. Different width to length ratios of the foundation are analyzed (from "short" to "long" foundations). Usability of the proposed analytical model in engineering practice is proved by numerical simulations; the obtained results are on the safe side with quite acceptable margin of additional safety.
Wydawca
Rocznik
Strony
135--141
Opis fizyczny
Bibliogr. 16 poz., rys., tab.
Twórcy
  • Civil Engineering Department, Cracow University of Technology, Warszawska 24, 31- 155 Cracow, Poland
Bibliografia
  • [1] Bogusz, W., Godlewski (2019), T. Philosophy of geotechnical design in civil engineering – possibilities and risks. Bulletin of the Polish Academy of Sciences Technical Sciences. 67(2), 289–306
  • [2] Brinch Hansen, J. (1970) A revised extended formula for bearing capacity. Danish Geotechnical Institute Bulletin. 28, 5–11
  • [3] Edgar Giovanny, D.S. (2013) Assessment of the range of variation of Nγ from 60 estimation methods for footings on sand. Canadian Geotechnical Journal. 50, 793–800
  • [4] Johari, A., Hosseini, S.M., Keshavarz A. (2017) Reliability analysis of seismic bearing capacity of strip footing by stochastic slip lines method. Computers and Geotechnics. 91, 203–217
  • [5] Johari, A., Sabzi A., Gholaminejad A. (2019) Reliability analysis of differential settlement of strip footings by stochastic response surface method (2019) Iran J Sci Technol Trans Civ Eng. 43,37–48
  • [6] Keverling Buisman, A.S. (1940) Grondmechanica. Waltman, Delft, the Netherlands
  • [7] Meyerhof, G.G. (1951) The ultimate bearing capacity of foundations. Géotechnique. 2, 301–332
  • [8] Meyerhof, G.G. (1953) The bearing capacity of foundations under eccentric and inclined loads. In: Proceedings of the III International Conference on Soil Mechanics and Foundation Engineering, Zürich, Switzerland, 440–445
  • [9] Meyerhof, G.G. (1963) Some recent research on the bearing capacity of foundations. Canadian Geotechnical Journal. 1(1),16–26.
  • [10] Motra, H.B., Stutz, H., Wuttke, F. (2016) Quality assessment of soil bearing capacity factor models of shallow foundations. Soils and Foundations. 56(2), 265–276
  • [11] Prandtl, L. (1920) Ueber die Haerte plastischer Koerper. Nachrichtender Gesellschaftder Wissenschaften. Berichte Mathem. -Phys. Kl, 74–85
  • [12] Prandtl, L. (1921) Ueberdie Eindringfestigkeit (Haerte) plastischer Baustoffeund die Fes-tigkeit von Schneiden. Z. Angew. Math. Mech.1. Band1,15–20
  • [13] Puła, W., Chwała M. (2015) On spatial averaging along random slip lines in the reliability computations of shallow strip foundations. Computers and Geotechnics. 68, 128–136.
  • [14] Reissner, H. (1924) Zum Erddruckproblem. In: Biezeno, C.B.,Burgers, J.M. (Eds.), Proceedings of the 1st International Congress for Applied Mechanics, Delft, The Netherlands: 295–311
  • [15] Terzaghi, K. (1943) Theoretical Soil Mechanics. J. Wiley, New York.
  • [16] van Baars, S. (2014) The inclination and shape factors for the bearing capacity of footings. Soils and Foundations. 54(5), 985–992
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-df09fb74-a6e9-418b-9846-bfb46e0f9e27
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