Numerical Study of the Ultimate Bearing Capacity of Two Adjacent Rough Strip Footings on Granular Soil: Effects of Rotational and Horizontal Constraints of Footings

Author:

Salari Mahdi1,Lezgy-Nazargah Mojtaba2ORCID,Shafaie Vahid3ORCID,Movahedi Rad Majid3ORCID

Affiliation:

1. Faculty of Civil Engineering, Kharazmi University, Tehran 1571914911, Iran

2. Faculty of Civil Engineering, Hakim Sabzevari University, Sabzevar 9617976487, Iran

3. Department of Structural and Geotechnical Engineering, Széchenyi István University, 9026 Győr, Hungary

Abstract

In this paper, the numerical study of the ultimate bearing capacity (UBC) of two closely spaced strip footings on granular soil is investigated using the finite element method (FEM) and upper bound limit analysis (UBLA). Although the UBC of two adjacent footings has previously been studied in other experimental and numerical research, in all the previously reported studies, the footings were not allowed to rotate and move horizontally freely. Due to the deformation of the soil medium, two closely spaced footings are subjected to horizontal movements and tilting, even under central vertical loads. When the two adjacent footings are not permitted to rotate and move in the horizontal directions, the unwanted bending moment and horizontal force act on the footings. Indeed, the UBC of two closely spaced rough footings is evaluated under incorrect constraints in earlier research. In the present research, the UBC of two adjacent rough footings is evaluated with and without these incorrect constraints. The key finding of this study is that constraining the horizontal and rotational movement of the foundation artificially increases the UBC, which does not reflect field conditions. When foundations are permitted to rotate and move horizontally, there is no increase in UBC; however, there is an increased risk of differential settlement and structural instability.

Publisher

MDPI AG

Reference34 articles.

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5. Probabilistic Study on the Bearing Capacity of Strip Footing Subjected to Combined Effect of Inclined and Eccentric Loads;Krishnan;Comput. Geotech.,2022

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