Engineering Properties of Silty Clay Stabilized with Calcium Carbide Residue

被引:124
作者
Kampala, Apichit [1 ]
Horpibulsuk, Suksun [1 ,2 ]
机构
[1] Suranaree Univ Technol, Sch Civil Engn, Muang Dist 30000, Nakhon Ratchasi, Thailand
[2] Suranaree Univ Technol, Ctr Excellence Civil Engn, Muang Dist 30000, Nakhon Ratchasi, Thailand
关键词
Calcium carbide residue; Engineering properties; Pozzolanic reaction; Soil stabilization; CRITICAL-STATE MODEL; STRENGTH DEVELOPMENT; COMPACTION CURVES; GRAINED SOILS; CRUSHED GLASS; MARINE CLAY; FLY-ASH; CEMENT; AGGREGATE; BEHAVIOR;
D O I
10.1061/(ASCE)MT.1943-5533.0000618
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Calcium carbide residue (CCR) is a waste product from acetylene gas factories, which is rich in calcium hydroxide [Ca(OH)(2)]. Because clayey soils contain high amount of natural pozzolanic materials (silica and alumina), CCR can be used as a soil stabilizer. This article presents the engineering properties of CCR-stabilized silty clay to ascertain its performance in pavement base and subbase applications. The input of CCR, which reduces the plasticity index of the clay, increases the optimum water content (OWC) and decreases the maximum dry unit weight (gamma(d,max)) of the stabilized clay. The CCR fixation point, simply obtained from the index test, is proved as a practical indicator for determining the CCR content to obtain the required engineering properties at a particular molding water content. The state of water content controls the densification, chemical reaction, and water absorption capacity. The soaked engineering properties are thus dependent upon the state of water content. For a particular CCR content, the optimum water content is the most appropriate in terms of strength, swelling and collapse behaviors, and bearing capacity. The lower water content is not sufficient for the chemical reaction, while the higher water content yields a higher water/binder ratio. The water absorption is smallest for the CCR-stabilized samples compacted at the OWC. To conclude, the optimal mix proportion is the CCR fixation point at OWC. CCR stabilization is more effective than lime stabilization in terms of engineering, economic, and environmental viewpoints. DOI: 10.1061/(ASCE)MT.1943-5533.0000618. (C) 2013 American Society of Civil Engineers.
引用
收藏
页码:632 / 644
页数:13
相关论文
共 68 条
[1]   THE MECHANICAL AND DRYING SHRINKAGE PROPERTIES OF CEMENT MORTARS CONTAINING CARBIDE LIME WASTE [J].
ALKHAJA, WA ;
MADANY, IM ;
ALSAYED, MH ;
DARWISH, AA .
RESOURCES CONSERVATION AND RECYCLING, 1992, 6 (03) :179-190
[2]   Geotechnical Properties of Waste Excavation Rock in Pavement Subbase Applications [J].
Arulrajah, A. ;
Ali, M. M. Y. ;
Piratheepan, J. ;
Bo, M. W. .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2012, 24 (07) :924-932
[3]   Select chemical and engineering properties of wastewater biosolids [J].
Arulrajah, A. ;
Disfani, M. M. ;
Suthagaran, V. ;
Imteaz, M. .
WASTE MANAGEMENT, 2011, 31 (12) :2522-2526
[4]   Geotechnical Properties of Recycled Crushed Brick in Pavement Applications [J].
Arulrajah, A. ;
Piratheepan, J. ;
Aatheesan, T. ;
Bo, M. W. .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2011, 23 (10) :1444-1452
[5]   Characteristics of Singapore marine clay at changi [J].
Arulrajah A. ;
Bo M.W. .
Geotechnical and Geological Engineering, 2008, 26 (4) :431-441
[6]   In situ pore water pressure dissipation testing of marine clay under reclamation fills [J].
Arulrajah, A. ;
Nikraz, H. ;
Bo, M. .
GEOTECHNICAL AND GEOLOGICAL ENGINEERING, 2006, 24 (01) :29-43
[7]   Dissipation testing of Singapore marine clay by piezocone tests [J].
Arulrajah A. ;
Bo M.W. ;
Nikraz H. ;
Balasubramaniam A.S. .
Geotechnical and Geological Engineering, 2007, 25 (06) :647-656
[8]   Lime stabilization of clay minerals and soils [J].
Bell, FG .
ENGINEERING GEOLOGY, 1996, 42 (04) :223-237
[9]   Utilization of construction and demolition debris under traffic-type loading in base and subbase applications [J].
Bennert, T ;
Papp, WJ ;
Maher, A ;
Gucunski, N .
RECYCLED AND SECONDARY MATERIALS, SOIL REMEDIATION, AND IN SITU TESTING: SOILS, GEOLOGY AND FOUNDATIONS, 2000, (1714) :33-39
[10]   Laboratory Validation of Ultra-Soft Soil Deformation Model [J].
Bo M.W. ;
Choa V. ;
Wong K.S. ;
Arulrajah A. .
Geotechnical and Geological Engineering, 2011, 29 (1) :65-74