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USE OF SILT OF DAMS AS A SUPPLEMENTARY CEMENTITIOUS MATERIAL IN SELF-COMPACTING MORTARS: EFFECT ON PHYSICAL AND MECHANICAL PROPERTIES

Safi, Brahim, Yurtdas, Ismail, Li, Pr. Alex

First published: 2012-06-18https://doi.org/10.5593/sgem2012/s21.v4020View metrics

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Title
USE OF SILT OF DAMS AS A SUPPLEMENTARY CEMENTITIOUS MATERIAL IN SELF-COMPACTING MORTARS: EFFECT ON PHYSICAL AND MECHANICAL PROPERTIES
Authors
Safi, Brahim, Yurtdas, Ismail, Li, Pr. Alex
Proceedings
SGEM International Multidisciplinary Scientific GeoConference EXPO Proceedings; SGEM2012 12th International Multidisciplinary Scientific GeoConference
Publisher
Stef92 Technology
Year
2012
Pages
791 - 804 pp
ISSN
1314-2704
ISBN
Not available yet
Language
en
Publication type
Conference Paper
References64
  1. Ambroise J, Murat M, Pera J. Investigations on synthetic binders obtained by middle-temperature thermal dissication of cl ay minerals. Silicates Industries 1986;7(8): 99-107.

  2. Sayanam RA, Kalsotra AK, Mehta SK, Sing RS, Mandal G. Studies on thermal transformations and pozzolanic activities of clay from Jammu region (India). Journal of Thermal Analysis 1989;35:99-106

  3. Zhang MH, Malhotra VM. Characteristics of a thermally activated alumino-silicate pozzolanic material and its use in concrete. Cement and Concrete Research 1995;25: 1713–1725.

  4. Shvarzman A, Kovler K, Grader GS, Shter GE. The effect of dehydroxylation/amorphization degree on pozzolanic activity of kaolinite. Cement and Concrete Research 2003;33(3): 405–416.

  5. Brooks JJ, Megat Johari MA. Effect of metakaolin on creep and shrinkage of concrete. Cement Concrete Composites 2001;23(6): 495–502.

  6. Sabir BB, Wild S, Bai J. Metakaolin and calcined clay as pozzolans for concrete: a review. Cement and Concrete Composites 2001;16: 441–454.

  7. Guneyisi E, Gesoglu M, Mermerdas K. Improving strength, drying shrinkage, and pore structure of concrete using metakaolin, Materials and Structures 2008;41: 937–949.

  8. Wild S, Khatib JM, Jones A. Relative strength pozzolanic activity and cement hydration in superplasticised metakaolin concrete. Cement and Concrete Research 1996;26: 1537–1544.

  9. Guneyisi E, and Gesoglu M. Properties of self-compacting mortars with binary and ternary cementitious blends of fly ash and metakaolin, Materials and Structures 2008; 41: 1519–1531.

  10. Khatib JM, Hibbert JJ, Selected engine ering properties of concrete incorporating slag and Metakaolin, Construction and Building Materials 2005; 19:460–472.

  11. Khabit JM. Metakaolin concrete at low water to binder ratio, Construction and Building Materials 2008; 22: 1691–1700.

  12. Li Z, Ding Z. Property improvement of Portland cement by incorporating with metakaolin and slag. Cement and Concrete Research 2003; 33: 579–584.

  13. Badigiannis E, Kakali G, Dimopoulu G, Chaniotakis E, Tsivilis S. Metakaolin as a main cement constituent. Exploitation of pour Greek kaolins. Cement Concrete Research, 2005;27: 197-203. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org Recycling

  14. Khabit JM, Wild S. Pore size distribution of MK paste. Cement and Concrete Research 1996;26 (10): 1545-1553.

  15. Siddique R, Klaus J. Influence of me takaolin on the properties of mortar and concrete: A review. Applied Clay Science 2009;43: 392-400.

  16. Guneyisi E, Mermerdas K. Comparative study on strength, sorptivity, and chloride ingress characteristics of air-cured and water-cured concretes modified with metakaolins. Materials and Structures 2007; 40: 1161–1171.

  17. Wild S, Khatib JM, Roose LJ. Chemical shrinkage and autogenous shrinkage of Portland cement–metakaolin pastes. Advance in Cement Research 1998;10(3):109–119.

  18. Kinuthia JM, Wild S, Sabir BB, Bai J. Self-compensating autogenous shrinkage in Portland cement–metakaolin–fly ash pastes. Advance in Cement Research 2000;12(1): 35–43.

  19. Gleize PJP, Cyr M, Escadeillas G. Effects of metakaolin on autogenous shrinkage of cement pastes. Cement and Concrete Composites 2007;29: 80–87.

  20. Wild S, Khatib JM. Portlandite consumption in metakaolins cement pastes and mortars. Cement Concrete Research 1997;27: 137–146.

  21. Curcio F, DeAngelis BA, Pagliolico S. Metakaolin as a pozzolanic microfiller for high-performance mortars. Cement and Concrete Research 1998;28(6): 803–809.

  22. Belas N, Besseghier N, Mebrouki A, Bouhamou N. Vers une protection de l’environnement en valorisant la vase draguée du barrage comme composant du béton. Matériaux & Techniques 2009 ;97(4) : 231-240.

  23. A. Semcha, Valorisation des sédiments de dragage : Applications dans le BTP, cas du barrage de Fergoug (Thèse doctorat de l’Université de Reims). Reims ; 2006.

  24. Safi B, Benmounah A, Saidi M. Rheology and zeta potential of cement pastes containing calcined silt and ground granulated blast-furnace slag”. Materiales de Construcción, Vol. 61, N°303 (2011), pp: 353-370.

  25. Bibi M, Chicouhe MA, Ait Tahar K. In fluence des ajouts d’argiles gréseuses ou/et vaseuses sur les propriétés des matériaux cimentaires, Matériaux & Techniques 2008 ;96(4-5): 165-172.

  26. Shen, J., Yurtdas, I., Diagana, C., Li. A. Mix-design method of self-compacting concretes for pre-cast industry. Canadian Journal of Civil Engineering 2009; 36: 1459- 1469.

  27. ASTM C642. Standard test method for specific gravity, absorption, and voids in hardened concrete. Annual Book of ASTM Standards. 04.02 Concrete and Concrete Aggregate; 1993.

  28. Bazant ZP, Wittmann FH. Creep and Shrinkage in Concrete Structures, J. Wiley and Sons, 1982.

  29. Acker P, Comportement mécanique du béton: apport de l'approche physico- chimique, PhD thesis of Ecole Nationale de s Pont et Chaussées, Rapport de Recherche LPC n°152. Paris; 1988 SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org 12th International Multidisciplinary Scientific GeoConference SGEM 2012

  30. Yurtdas I, Peng H, Burlion N, Skoczylas F. Influences of water by cement ratio on mechanical properties of mortars submitted to drying, Cement and Concrete Research, 2006;36:1286-1293.

  31. Baroghel-Bouny V. Water vapour experiments on hardened cementitious materials Part I: Essential tool for analysis of hygral behaviour and its relation to pore structure. Cement and Concrete Research 2007;37: 414-437.

  32. Verbeck G.J, Helmuth RH. Structures and physical properties of cement paste. In: Proceeding of 5th International Symposium on the Chemistry of Cement. Cement Association of Japan; 1968, p.1-44. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org

  33. Ambroise J, Murat M, Pera J. Investigations on synthetic binders obtained by middle-temperature thermal dissication of cl ay minerals. Silicates Industries 1986;7(8): 99-107.

  34. Sayanam RA, Kalsotra AK, Mehta SK, Sing RS, Mandal G. Studies on thermal transformations and pozzolanic activities of clay from Jammu region (India). Journal of Thermal Analysis 1989;35:99-106

  35. Zhang MH, Malhotra VM. Characteristics of a thermally activated alumino-silicate pozzolanic material and its use in concrete. Cement and Concrete Research 1995;25: 1713–1725.

  36. Shvarzman A, Kovler K, Grader GS, Shter GE. The effect of dehydroxylation/amorphization degree on pozzolanic activity of kaolinite. Cement and Concrete Research 2003;33(3): 405–416.

  37. Brooks JJ, Megat Johari MA. Effect of metakaolin on creep and shrinkage of concrete. Cement Concrete Composites 2001;23(6): 495–502.

  38. Sabir BB, Wild S, Bai J. Metakaolin and calcined clay as pozzolans for concrete: a review. Cement and Concrete Composites 2001;16: 441–454.

  39. Guneyisi E, Gesoglu M, Mermerdas K. Improving strength, drying shrinkage, and pore structure of concrete using metakaolin, Materials and Structures 2008;41: 937–949.

  40. Wild S, Khatib JM, Jones A. Relative strength pozzolanic activity and cement hydration in superplasticised metakaolin concrete. Cement and Concrete Research 1996;26: 1537–1544.

  41. Guneyisi E, and Gesoglu M. Properties of self-compacting mortars with binary and ternary cementitious blends of fly ash and metakaolin, Materials and Structures 2008; 41: 1519–1531.

  42. Khatib JM, Hibbert JJ, Selected engine ering properties of concrete incorporating slag and Metakaolin, Construction and Building Materials 2005; 19:460–472.

  43. Khabit JM. Metakaolin concrete at low water to binder ratio, Construction and Building Materials 2008; 22: 1691–1700.

  44. Li Z, Ding Z. Property improvement of Portland cement by incorporating with metakaolin and slag. Cement and Concrete Research 2003; 33: 579–584.

  45. Badigiannis E, Kakali G, Dimopoulu G, Chaniotakis E, Tsivilis S. Metakaolin as a main cement constituent. Exploitation of pour Greek kaolins. Cement Concrete Research, 2005;27: 197-203. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org Recycling

  46. Khabit JM, Wild S. Pore size distribution of MK paste. Cement and Concrete Research 1996;26 (10): 1545-1553.

  47. Siddique R, Klaus J. Influence of me takaolin on the properties of mortar and concrete: A review. Applied Clay Science 2009;43: 392-400.

  48. Guneyisi E, Mermerdas K. Comparative study on strength, sorptivity, and chloride ingress characteristics of air-cured and water-cured concretes modified with metakaolins. Materials and Structures 2007; 40: 1161–1171.

  49. Wild S, Khatib JM, Roose LJ. Chemical shrinkage and autogenous shrinkage of Portland cement–metakaolin pastes. Advance in Cement Research 1998;10(3):109–119.

  50. Kinuthia JM, Wild S, Sabir BB, Bai J. Self-compensating autogenous shrinkage in Portland cement–metakaolin–fly ash pastes. Advance in Cement Research 2000;12(1): 35–43.

  51. Gleize PJP, Cyr M, Escadeillas G. Effects of metakaolin on autogenous shrinkage of cement pastes. Cement and Concrete Composites 2007;29: 80–87.

  52. Wild S, Khatib JM. Portlandite consumption in metakaolins cement pastes and mortars. Cement Concrete Research 1997;27: 137–146.

  53. Curcio F, DeAngelis BA, Pagliolico S. Metakaolin as a pozzolanic microfiller for high-performance mortars. Cement and Concrete Research 1998;28(6): 803–809.

  54. Belas N, Besseghier N, Mebrouki A, Bouhamou N. Vers une protection de l’environnement en valorisant la vase draguée du barrage comme composant du béton. Matériaux & Techniques 2009 ;97(4) : 231-240.

  55. A. Semcha, Valorisation des sédiments de dragage : Applications dans le BTP, cas du barrage de Fergoug (Thèse doctorat de l’Université de Reims). Reims ; 2006.

  56. Safi B, Benmounah A, Saidi M. Rheology and zeta potential of cement pastes containing calcined silt and ground granulated blast-furnace slag”. Materiales de Construcción, Vol. 61, N°303 (2011), pp: 353-370.

  57. Bibi M, Chicouhe MA, Ait Tahar K. In fluence des ajouts d’argiles gréseuses ou/et vaseuses sur les propriétés des matériaux cimentaires, Matériaux & Techniques 2008 ;96(4-5): 165-172.

  58. Shen, J., Yurtdas, I., Diagana, C., Li. A. Mix-design method of self-compacting concretes for pre-cast industry. Canadian Journal of Civil Engineering 2009; 36: 1459- 1469.

  59. ASTM C642. Standard test method for specific gravity, absorption, and voids in hardened concrete. Annual Book of ASTM Standards. 04.02 Concrete and Concrete Aggregate; 1993.

  60. Bazant ZP, Wittmann FH. Creep and Shrinkage in Concrete Structures, J. Wiley and Sons, 1982.

  61. Acker P, Comportement mécanique du béton: apport de l'approche physico- chimique, PhD thesis of Ecole Nationale de s Pont et Chaussées, Rapport de Recherche LPC n°152. Paris; 1988 SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org 12th International Multidisciplinary Scientific GeoConference SGEM 2012

  62. Yurtdas I, Peng H, Burlion N, Skoczylas F. Influences of water by cement ratio on mechanical properties of mortars submitted to drying, Cement and Concrete Research, 2006;36:1286-1293.

  63. Baroghel-Bouny V. Water vapour experiments on hardened cementitious materials Part I: Essential tool for analysis of hygral behaviour and its relation to pore structure. Cement and Concrete Research 2007;37: 414-437.

  64. Verbeck G.J, Helmuth RH. Structures and physical properties of cement paste. In: Proceeding of 5th International Symposium on the Chemistry of Cement. Cement Association of Japan; 1968, p.1-44. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org

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