Empirical Equations Expressing the Effects of Measured Suction on the Compaction Curve for Sandy Soils Varying Fines Content

被引:1
作者
Chowdepalli, Bhargavi [1 ]
Watanabe, Kenji [1 ]
机构
[1] Univ Tokyo, Dept Civil Engn, Tokyo 1138656, Japan
来源
GEOTECHNICS | 2023年 / 3卷 / 03期
关键词
apparent suction; SWCC; degree of saturation; compaction characteristics; unsaturated soil condition; WATER-RETENTION CURVE; DRY DENSITY; HYDRAULIC CONDUCTIVITY; SHEAR-STRENGTH; BEHAVIOR; SATURATION; MODEL;
D O I
10.3390/geotechnics3030042
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
To effectively apply various soil types for embankments, understanding their compaction characteristics is crucial. One crucial factor affecting compaction is suction, which plays a significant role as it is typically performed under unsaturated conditions. Suction varies with soil density, water content, and fines content. This study directly measures suction after soil compaction using the triaxial apparatus, unlike the Soil water characteristic curve (SWCC), assessing its impact on compaction characteristics. Immediate suction measurement after compaction provides apparent suction, resembling on-site conditions with open pore air pressure. Comparing SWCC with apparent suction at each compacted state reveals that suction and air entry value increase with initial density, positively impacting compaction. Notably, apparent suction aligns better with wetting process suction from the SWCC due to added water during specimen preparation. Empirical equations are derived to obtain suction contours across various density and saturation ranges, aiding in understanding suction variations on the compaction curve. Even slight variations in saturation causes noticeable changes in apparent suction during higher compaction efforts, affecting soil compaction characteristics. Therefore, the precise control of saturation control is needed to achieve desired properties of compacted soil, especially at higher compaction efforts and with various soil types. This understanding significantly impacts the mechanical behavior of unsaturated soils.
引用
收藏
页码:760 / 780
页数:21
相关论文
共 39 条
[1]  
Aitchison G., 1985, Golden Jubilee of the International Society for Soil Mechanics and Foundation Engineering: Commemorative Volume, P20
[2]   Soil-Water Characteristic Curve and One-Dimensional Deformation Characteristics of Fiber-Reinforced Lime-Blended Expansive Soil [J].
Al-Mahbashi, Ahmed M. ;
Al-Shamrani, Mosleh Ali ;
Moghal, Arif Ali Baig .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2020, 32 (06)
[3]   Influence of the initial water content and dry density on the soil-water retention curve and the shrinkage behavior of a compacted clay [J].
Birle, Emanuel ;
Heyer, Dirk ;
Vogt, Norbert .
ACTA GEOTECHNICA, 2008, 3 (03) :191-200
[4]  
Bradbury M.H., 2002, Nuclear Energy and Safety Research Department Porewater Chemistry in Compacted Re-Saturated MX-80 Bentonite: Physico-Chemical Characterisation and Geochemical Modelling Porewater Chemistry in Compacted Re-Saturated MX-80 Bentonite: Physico-Chemical Char
[5]  
Chang K., 2013, CRYSTENGCOMM, P421, DOI [10.1007/978-3-642-32238-9, DOI 10.1007/978-3-642-32238-9]
[6]   Yielding and plastic behaviour of an unsaturated compacted silt [J].
Cui, YJ ;
Delage, P .
GEOTECHNIQUE, 1996, 46 (02) :291-311
[7]  
Delage P., 2008, Vadose Zo. J, V9, P196, DOI [10.2136/vzj2009.0115br, DOI 10.2136/VZJ2009.0115BR]
[8]   Calculation model for the shear strength of unsaturated soil under nonlinear strength theory [J].
Deng, Dongping ;
Wen, Shasha ;
Lu, Kuan ;
Li, Liang .
GEOMECHANICS AND ENGINEERING, 2020, 21 (03) :247-258
[9]  
Fredlund D. G., 1993, Soil mechanics for unsaturated soils.
[10]  
Fredlund D.G., 2018, Methods Soil Anal. Part 4 Phys. Methods, V321, P329, DOI [10.2136/sssabookser5.4.c15, DOI 10.2136/SSSABOOKSER5.4.C15]