Skip to main content
Top
Published in: Geotechnical and Geological Engineering 5/2016

23-07-2016 | Original paper

Effect of Natural Zeolite and Cement Additive on the Strength of Sand

Authors: Hossein Mola-Abasi, Behrouz Kordtabar, Afshin Kordnaeij

Published in: Geotechnical and Geological Engineering | Issue 5/2016

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

It is widely known and well emphasized that the cemented sand is one of economic and environmental topics in soil stabilization. In some instances, a blend of sand, cement and other materials such as fiber, glass, nano particle and zeolite can commercially be available and effectively used in soil stabilization especially in road construction. In regard to zeolite, its influence and effectiveness on the properties of cemented sands systems has not been completely explored. Hence, in this study, based on an experimental program, it has been tried to investigate the potential of a zeolite stabilizer known as additive material to improve the properties of cemented sands. A total number of 216 unconfined compression tests were carried out on cured samples in 7, 28 and 90 days. Results show unconfined compression strength and failure properties improvements of cement sand specimens when cement replaced by zeolite at optimum proportions of 30 % after 28 days due to pozzolanic reaction. The rate of strength improvement is approximately 20–78 and 20–60 % for 28 and 90 days curing times respectively. The efficiency of using zeolite has been enhanced by increasing the cement content and porosity of the compacted mixture. The replacement of cement by natural zeolite led to an increase of the pH after 14 days. Chemical oxygen demand (COD) tests demonstrate that the materials with the zeolite mixture reveal stronger adsorptive capacity of COD in compare to cemented mixture. Scanning electron microscope images show that adding zeolite in cemented sand changes the microstructure (filling large porosity and pozzolanic reaction) that results in increasing strength.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
go back to reference Arabani M, Sharafi H, Habibi MR, Haghshenas E (2015) Laboratory evaluation of cement stabilized crushed glass-sand blends. Electron J Geotech Eng 17:1777–1792 Arabani M, Sharafi H, Habibi MR, Haghshenas E (2015) Laboratory evaluation of cement stabilized crushed glass-sand blends. Electron J Geotech Eng 17:1777–1792
go back to reference ASTM C 150 (2007) Standard specification for Portland cement. American Society for Testing and Materials, Philadelphia ASTM C 150 (2007) Standard specification for Portland cement. American Society for Testing and Materials, Philadelphia
go back to reference ASTM D 2166 (2000) Standard test method for unconfined compressive strength of cohesive soil. American Society for Testing and Materials, Philadelphia ASTM D 2166 (2000) Standard test method for unconfined compressive strength of cohesive soil. American Society for Testing and Materials, Philadelphia
go back to reference Bhatmagar A, Minocha AK (2006) Conventional and non-conventional adsorbents for removal of pollutants from water-a review. Indian J Chem Tech 13(3):203–217 Bhatmagar A, Minocha AK (2006) Conventional and non-conventional adsorbents for removal of pollutants from water-a review. Indian J Chem Tech 13(3):203–217
go back to reference Canpolat F, Yılmaz K, Kose MM, Sumer M, Yurdusev MA (2004) Use of zeolite, coal bottom ash and fly ash as replacement materials in cement production. Cem Concr Res 34(5):731–735CrossRef Canpolat F, Yılmaz K, Kose MM, Sumer M, Yurdusev MA (2004) Use of zeolite, coal bottom ash and fly ash as replacement materials in cement production. Cem Concr Res 34(5):731–735CrossRef
go back to reference Choobbasti AJ, Vafaei A, Kutanaei SS (2015) Mechanical properties of sandy soil improved with cement and nanosilica. Open Eng 5(1):111–116CrossRef Choobbasti AJ, Vafaei A, Kutanaei SS (2015) Mechanical properties of sandy soil improved with cement and nanosilica. Open Eng 5(1):111–116CrossRef
go back to reference Clough GW, Sitar N, Bachus RC, Rad NS (1981) Cemented sands under static loading. J Geotech Eng Div 107(6):799–817 Clough GW, Sitar N, Bachus RC, Rad NS (1981) Cemented sands under static loading. J Geotech Eng Div 107(6):799–817
go back to reference Consoli NC, Foppa D (2014) Porosity/cement ratio controlling initial bulk modulus and incremental yield stress of an artificially cemented soil cured under stress. Géotech Lett 4:22–26CrossRef Consoli NC, Foppa D (2014) Porosity/cement ratio controlling initial bulk modulus and incremental yield stress of an artificially cemented soil cured under stress. Géotech Lett 4:22–26CrossRef
go back to reference Consoli NC, Prietto PDM, Ulbrich LA (1998) Influence of fiber and cement addition on behavior of sandy soil. J Geotech Geoenviron 124(12):1211–1214CrossRef Consoli NC, Prietto PDM, Ulbrich LA (1998) Influence of fiber and cement addition on behavior of sandy soil. J Geotech Geoenviron 124(12):1211–1214CrossRef
go back to reference Consoli NC, Rotta GV, Prietto PDM (2000) The influence of curing under stress on the triaxial response of cemented soils. Géotechnique 50(1):99–105CrossRef Consoli NC, Rotta GV, Prietto PDM (2000) The influence of curing under stress on the triaxial response of cemented soils. Géotechnique 50(1):99–105CrossRef
go back to reference Consoli NC, Rotta GV, Prietto PDM (2006) Yielding-compressibility–strength relationship for an artificially cemented soil cured under stress. Géotechnique 56(1):69–72CrossRef Consoli NC, Rotta GV, Prietto PDM (2006) Yielding-compressibility–strength relationship for an artificially cemented soil cured under stress. Géotechnique 56(1):69–72CrossRef
go back to reference Consoli NC, Foppa D, Festugato L, Heineck KS (2007) Key parameters for strength control of artificially cemented soils. J Geotech Geoenviron 133(2):197–205CrossRef Consoli NC, Foppa D, Festugato L, Heineck KS (2007) Key parameters for strength control of artificially cemented soils. J Geotech Geoenviron 133(2):197–205CrossRef
go back to reference Consoli NC, Lopes LS Jr, Foppa D, Heineck KS (2009) Key parameters dictating strength of lime/cement-treated soil. Proc Inst Civ Eng Geotech Eng 162(2):111–118CrossRef Consoli NC, Lopes LS Jr, Foppa D, Heineck KS (2009) Key parameters dictating strength of lime/cement-treated soil. Proc Inst Civ Eng Geotech Eng 162(2):111–118CrossRef
go back to reference Consoli NC, Festugato L, da Rocha CG, Cruz RC (2013a) Key parameters for strength control of rammed sand–cement mixtures: influence of types of Portland cement. Constr Build Mater 49:591–597CrossRef Consoli NC, Festugato L, da Rocha CG, Cruz RC (2013a) Key parameters for strength control of rammed sand–cement mixtures: influence of types of Portland cement. Constr Build Mater 49:591–597CrossRef
go back to reference Consoli NC, Consoli BS, Festugato L (2013b) A practical methodology for the determination of failure envelopes of fiber-reinforced cemented sands. Geotext Geomembr 41:50–54CrossRef Consoli NC, Consoli BS, Festugato L (2013b) A practical methodology for the determination of failure envelopes of fiber-reinforced cemented sands. Geotext Geomembr 41:50–54CrossRef
go back to reference Coop MR, Atkinson JH (1993) The mechanics of cemented carbonate sands. Geotechnique 43(1):53–67CrossRef Coop MR, Atkinson JH (1993) The mechanics of cemented carbonate sands. Geotechnique 43(1):53–67CrossRef
go back to reference Dalla Rosa F, Consoli NC, Baudet BA (2008) An experimental investigation of the behaviour of artificially cemented soil cured under stress. Geotechnique 58(8):675–679CrossRef Dalla Rosa F, Consoli NC, Baudet BA (2008) An experimental investigation of the behaviour of artificially cemented soil cured under stress. Geotechnique 58(8):675–679CrossRef
go back to reference Feng NQ, Li GZ, Zang XW (1990) High strength and flowing concrete with a zeolite mineral admixture. Cem Concr Aggreg ASTM 12:61–69CrossRef Feng NQ, Li GZ, Zang XW (1990) High strength and flowing concrete with a zeolite mineral admixture. Cem Concr Aggreg ASTM 12:61–69CrossRef
go back to reference Horpibulsuk S, Suddeepong A, Suksiripattanapong C, Chinkulkijniwat A, Arulrajah A, Disfani MM (2014) Water-void to cement ratio identity of lightweight cellular-cemented material. J Mater Civ Eng 26(10):06014021CrossRef Horpibulsuk S, Suddeepong A, Suksiripattanapong C, Chinkulkijniwat A, Arulrajah A, Disfani MM (2014) Water-void to cement ratio identity of lightweight cellular-cemented material. J Mater Civ Eng 26(10):06014021CrossRef
go back to reference Huang JT, Airey D (1998) Properties of artificially cemented carbonate sand. J Geotech Geoenviron 124(6):492–499CrossRef Huang JT, Airey D (1998) Properties of artificially cemented carbonate sand. J Geotech Geoenviron 124(6):492–499CrossRef
go back to reference Ladd RS (1978) Preparing test specimens using under compaction. Geotech Test J 1(1):16–23CrossRef Ladd RS (1978) Preparing test specimens using under compaction. Geotech Test J 1(1):16–23CrossRef
go back to reference Napia C, Sinsiri T, Jaturapitakkul C, Chindaprasirt P (2012) Leaching of heavy metals from solidified waste using Portland cement and zeolite as a binder. Waste Manag 32(7):1459–1467CrossRef Napia C, Sinsiri T, Jaturapitakkul C, Chindaprasirt P (2012) Leaching of heavy metals from solidified waste using Portland cement and zeolite as a binder. Waste Manag 32(7):1459–1467CrossRef
go back to reference Perraki T, Kakali G, Kontoleon F (2003) The effect of natural zeolites on the early hydration of Portland cement. Micropor Mesopor Mat 61(1):205–212CrossRef Perraki T, Kakali G, Kontoleon F (2003) The effect of natural zeolites on the early hydration of Portland cement. Micropor Mesopor Mat 61(1):205–212CrossRef
go back to reference Pino LFM, Baudet BA (2015) The effect of the particle size distribution on the mechanics of fibre-reinforced sands under one-dimensional compression. Geotext Geomembr 43(3):250–258CrossRef Pino LFM, Baudet BA (2015) The effect of the particle size distribution on the mechanics of fibre-reinforced sands under one-dimensional compression. Geotext Geomembr 43(3):250–258CrossRef
go back to reference Poon CS, Lam L, Kou SC, Lin ZS (1999) A study on the hydration rate of natural zeolite blended cement pastes. Constr Build Mater 13(8):427–432CrossRef Poon CS, Lam L, Kou SC, Lin ZS (1999) A study on the hydration rate of natural zeolite blended cement pastes. Constr Build Mater 13(8):427–432CrossRef
go back to reference Shi JX (2012) The applications of zeolite in sustainable binders for soil stabilization. Appl Mec Mater 256:112–115CrossRef Shi JX (2012) The applications of zeolite in sustainable binders for soil stabilization. Appl Mec Mater 256:112–115CrossRef
go back to reference Shi C, Day RL (2000) Pozzolanic reaction in the presence of chemical activators: Part II—reaction products and mechanis. Cem Concr Res 30(4):607–613CrossRef Shi C, Day RL (2000) Pozzolanic reaction in the presence of chemical activators: Part II—reaction products and mechanis. Cem Concr Res 30(4):607–613CrossRef
go back to reference Thomé A, Donato M, Consoli NC, Graham J (2005) Circular footings on a cemented layer above weak foundation soil. Can Geotec J 42(6):1569–1584CrossRef Thomé A, Donato M, Consoli NC, Graham J (2005) Circular footings on a cemented layer above weak foundation soil. Can Geotec J 42(6):1569–1584CrossRef
go back to reference Yilmaz E, Belem T, Benzaazoua M (2015) Specimen size effect on strength behavior of cemented paste backfills subjected to different placement conditions. Eng Geol 185:52–62CrossRef Yilmaz E, Belem T, Benzaazoua M (2015) Specimen size effect on strength behavior of cemented paste backfills subjected to different placement conditions. Eng Geol 185:52–62CrossRef
go back to reference Yılmaz B, Ucar A, Oteyaka B, Uz V (2007) Properties of zeolitic tuff (clinoptilolite) blended portland cement. Build Environ 42(11):3808–3815CrossRef Yılmaz B, Ucar A, Oteyaka B, Uz V (2007) Properties of zeolitic tuff (clinoptilolite) blended portland cement. Build Environ 42(11):3808–3815CrossRef
Metadata
Title
Effect of Natural Zeolite and Cement Additive on the Strength of Sand
Authors
Hossein Mola-Abasi
Behrouz Kordtabar
Afshin Kordnaeij
Publication date
23-07-2016
Publisher
Springer International Publishing
Published in
Geotechnical and Geological Engineering / Issue 5/2016
Print ISSN: 0960-3182
Electronic ISSN: 1573-1529
DOI
https://doi.org/10.1007/s10706-016-0060-4

Other articles of this Issue 5/2016

Geotechnical and Geological Engineering 5/2016 Go to the issue