Design of Conical Foundations with Increased Bearing Capacity in Areas of Undermined Soils

被引:2
作者
Zhussupbekov, Askar [1 ]
Sarsembayeva, Assel [1 ]
Bazarov, Baurzhan [2 ]
Omarov, Abdulla [1 ]
机构
[1] LN Gumilyov Eurasian Natl Univ, Dept Civil Engn, Astana 010008, Kazakhstan
[2] Karaganda Ind Univ, Dept Civil Engn, Temirtau 101400, Kazakhstan
来源
APPLIED SCIENCES-BASEL | 2024年 / 14卷 / 05期
关键词
conical foundations; horizontal displacement of soils; load-settlement interaction; stable foundations; undermined soils; GROUND SUBSIDENCE; FOOTINGS;
D O I
10.3390/app14051816
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This article discusses the foundations of a conical shape directed with their apex downwards to increase the cross-sectional area and, accordingly, the bearing capacity during settlement and under the influence of horizontal tensile strains in undermined areas. To simulate the deformability of undermined and seismically exposed foundations, a three-dimensional expandable box was manufactured and assembled. Models of a conical foundation with an aperture angle of the cones at 90 degrees and 80 degrees were buried into the soil at 0.75 of its height, in order to provide a safety margin for further loading due to an increase in the bearing area when the cone is immersed deeper into the ground. Laboratory and field tests were performed on the vertical loading of single cones before and after horizontal soil displacement. Numerical modeling of the interaction between soil and foundation was carried out for conical foundation models that were considered for laboratory and field testing using the Plaxis 2D (Version 8.2) program. To compare the bearing capacity, isolated shallow foundations with a diameter equal to the cross section of the conical foundation at the intersection with the ground surface were tested. The isolated shallow foundations lost their bearing capacity after 0.15 kN in laboratory tests and after 75 kN in the field tests, while the ultimate bearing capacity of conical foundations with the similar cross section at the soil surface was not achieved, even after 0.2 kN during laboratory tests with horizontal soil displacement and at a load of 100 kN in field tests.
引用
收藏
页数:19
相关论文
共 28 条
[1]  
Altun AO, 2010, SCI RES ESSAYS, V5, P3206
[2]  
[Anonymous], 2015, Buildings and Constructions in Earned Additionally Territories and Subsiding Soil
[3]  
[Anonymous], 2015, Buildings on Undermined Territories and Soil Subsidence
[4]  
Avershin S.G., 1947, Movement of Rocks during Underground Development
[5]   Analysis of ground subsidence in coal mining area using SAR interferometry [J].
Baek, Jin ;
Kim, Sang-Wan ;
Park, Hyuck-Jin ;
Jung, Hyung-Sup ;
Kim, Ki-Dong ;
Kim, Jeong Woo .
GEOSCIENCES JOURNAL, 2008, 12 (03) :277-284
[6]  
Bakhurin I.M., 1946, Movement of Rocks under the Influence of Mining
[7]   Vertical bearing capacity factors for conical footings on sand [J].
Cassidy, MJ ;
Houlsby, GT .
GEOTECHNIQUE, 2002, 52 (09) :687-692
[8]   Bearing capacity factors for a conical footing using lower- and upper-bound finite elements limit analysis [J].
Chakraborty, Manash ;
Kumar, Jyant .
CANADIAN GEOTECHNICAL JOURNAL, 2015, 52 (12) :2134-2140
[9]   Evaluation of vertical bearing capacity factors for conical footing with varying base roughness using FELA and MARS model [J].
Chouhan, Kritesh ;
Lai, Van Qui ;
Chavda, Jitesh T. T. ;
Yoonirundorn, Kittiphan ;
Keawsawasvong, Suraparb .
SHIPS AND OFFSHORE STRUCTURES, 2024, 19 (04) :471-483
[10]   Machine learning regression approach for analysis of bearing capacity of conical foundations in heterogenous and anisotropic clays [J].
Chung Nguyen Van ;
Keawsawasvong, Suraparb ;
Dang Khoa Nguyen ;
Van Qui Lai .
NEURAL COMPUTING & APPLICATIONS, 2023, 35 (05) :3955-3976