A review of the identification methods and types of collapsible soils

被引:0
作者
Opukumo A.W. [1 ]
Davie C.T. [2 ]
Glendinning S. [2 ]
Oborie E. [1 ]
机构
[1] Department of Geology, Niger Delta University, Wilberforce Island, Bayelsa State, Amassama
[2] School of Engineering, Newcastle University, Newcastle upon Tyne
来源
Journal of Engineering and Applied Science | 2022年 / 69卷 / 01期
关键词
Collapse potential; Engineered and non-engineered soils; Field prediction; Laboratory prediction;
D O I
10.1186/s44147-021-00064-2
中图分类号
学科分类号
摘要
Collapsible soils have caused infrastructural damages resulting in several economic losses and loss of lives in certain cases. The prerequisite for collapse occurring is an open metastable structure; capable of developing in any soil type given the right placement or aging conditions. Natural and anthropogenic (engineered and non-engineered) collapsible soils exist in many regions of the world. In their unsaturated state, these soils exhibit high enough shear strength and stiffness (provided by inter-particle bonds of either suction, clay, calcium carbonate, or other salts) but upon wetting and/or loading they undergo repacking due to bond softening/weakening. This collapse of the soil structure leads to a rapid volume decrease and consequently associated issues such as rapid differential settlement, ground fissuring and landslides occur causing damages to civil structures, and loss of lives. Despite these threats and the large body of research available in this subject, there is still poor understanding of the process of softening/weakening and the collapse mechanism of certain bond in some collapse elements. The aim of this paper is to provide a state-of-the-art comprehensive review of the different types of collapsible soils, field, and laboratory methods of predicting and measuring their potential to collapse. This understanding is crucial for geotechnical characterisation of soils in order to design safe and economic infrastructures with their long-term serviceability also in focus. © 2022, The Author(s).
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  • [1] Abatan A.O., Akinyemi O.D., Olowofela J.A., Ajiboye G.A., Salako F.K., Experimental investigation of factors affecting compressional and shear wave velocities in shale and limestone of Ewekoro formation of Southern Nigeria sedimentary basin, Environ Earth Sci, 75, 22, (2016)
  • [2] Alan J.L., Robert T.S., Determination of collapse potential of soils, Geotech Test J, 11, 3, pp. 173-178, (1988)
  • [3] Alonso E.E., Pereira J.M., Vaunat J., Olivella S., A microstructurally based effective stress for unsaturated soils, Géotechnique, 60, 12, pp. 913-925, (2010)
  • [4] Assallay A.M., Structure and hydrocollapse behaviour of loess, (1998)
  • [5] Standard Test Method for Measurement of Collapse Potential of Soils, 4, (2003)
  • [6] Ayadat T., Hanna A.M., Assessement of soil collapse prediction methods, Int J Eng, 25, 1, pp. 19-26, (2012)
  • [7] Barden L., McGown A., Collins K., The collapse mechanism in partly saturated soil, Eng Geol, 7, 1, pp. 49-60, (1973)
  • [8] Bell F., Culshaw M., Northmore K., The metastability of some gull-fill materials from Allington, Kent, UK, Q J Eng Geol Hydrogeol, 36, 3, pp. 217-229, (2003)
  • [9] Bell F.G., Culshaw M.G., Problem soils: a review from a British perspective, Problematic soils, (2001)
  • [10] Bishop A.W., The principle of effective stress, Teknisk ukeblad, 39, pp. 859-863, (1959)