Universidad Veracruzana, México
GEOTEST S.A. de C.V., México
Universidad Autónoma de Coahuila, México
Universidad Autónoma de Coahuila, México
Universidad Veracruzana, México
Ingenio Mahuixtlán S.A de C.V, México
Universidad Veracruzana, México
Universidad Veracruzana, México
Universidad Veracruzana, México
* Corresponding author

Article Main Content

In the present research work, four concrete mixtures were designed according to the ACI 211.1 method, the first as a control mixture, with 100% CPC, and the remaining three elaborated with partial replacement of the CPC by combinations of Sugar Cane Bagasse Ash and Silica Fume (SCBA-SF) in 10%, 20% and 30% (Green Concrete). The tests carried out on the four mixtures were physical properties (Slump, Temperature, Density) and mechanical properties as Compressive Strength (F'c) and Modulus of Elasticity, according to the ASTM and ONNCCE standards, the study specimens were exposed in water, as a control medium and a 3.5% solution of MgSO4 as an aggressive medium for a period of 28 days. The results obtained indicate a good performance of the Green Concrete in comparison with the control mixture, in particular the Green Concrete made with 10% and 20% substitution of CPC by SCBA-SF.

References

  1. O. Troconis de Rincón et. al., (2016). Reinforced Concrete Durability in Marine Environments DURACON Project: Long-Term Exposure. Corrosion, 72:6, pp. 824-833.
     Google Scholar
  2. Miguel Angel Baltazar-Zamora, Laura Landa-Ruiz, Yazmin Rivera, René Croche. (2020). Electrochemical Evaluation of Galvanized Steel and AISI 1018 as Reinforcement in a Soil Type MH. European Journal of Engineering Research and Science, 5:3, pp. 259-263.
     Google Scholar
  3. M. Criado, D.M. Bastidas, S. Fajardo, A. Fernández-Jiménez, J.M. Bastidas. (2011). Corrosion behaviour of a new low-nickel stainless steel embedded in activated fly ash mortars. Cement and Concrete Composites, 33, pp. 644-652.
     Google Scholar
  4. A. Landa-Gómez et.al., (2018). Correlation of Compression Resistance and Rupture Module of a Concrete of Ratio w/c= 0.50 with the Corrosion Potential, Electrical Resistivity and Ultrasonic Pulse Speed. ECS Transactions. 84, 217-227.
     Google Scholar
  5. D.M. Bastidas, M. Criado, S. Fajardo, A. La Iglesia, J.M. Bastidas. (2015). Corrosion inhibition mechanism of phosphates for early-age reinforced mortar in the presence of chlorides. Cement and Concrete Composites, 61, pp. 1-6.
     Google Scholar
  6. G. Santiago-Hurtado, M.A. Baltazar-Zamora, A. Galindo D, J.A. Cabral M, F.H. Estupiñán L., P. Zambrano Robledo, C. Gaona-Tiburcio. (2013). Anticorrosive Efficiency of Primer Applied in Carbon Steel AISI 1018 as Reinforcement in a Soil Type MH. International Journal of Electrochemical Science, 8:6, pp. 8490-8501.
     Google Scholar
  7. M.K. Yashwanth, B.G. Naresh Kumar, D.S. Sandeep Kumar. (2019). Potential of Bagasse Ash as Alternative Cementitious Material in Recycled Aggregate Concrete. International Journal of Innovative Technology and Exploring Engineering, 8:11, pp. 271-275.
     Google Scholar
  8. O. Ojeda-Farías, J.M. Mendoza-Rangel, M.A. Baltazar-Zamora. (2018). Influence of sugar cane bagasse ash inclusion on compacting, CBR and unconfined compressive strength of a subgrade granular material. Revista ALCONPAT, 8:2, pp. 194-208.
     Google Scholar
  9. M.A. Baltazar-Zamora, G. Santiago-Hurtado, V.M. Moreno L, R. Croche B, M. de la Garza, F. Estupiñan L, P. Zambrano R., C. Gaona-Tiburcio. (2016). Electrochemical Behaviour of Galvanized Steel Embedded in Concrete Exposed to Sand Contaminated with NaCl. International Journal of Electrochemical Science, 11:12, pp. 10306-10319.
     Google Scholar
  10. M.A. Baltazar-Zamora, G. Santiago-Hurtado, C. Gaona-Tiburcio et. al. (2012). Evaluation of the corrosion at early age in reinforced concrete exposed to sulfates. International Journal of Electrochemical Science, 7:1, pp. 588-600.
     Google Scholar
  11. Miguel Angel Baltazar-Zamora, Sabino Márquez-Montero, Laura Landa-Ruiz, René Croche, Oscar López-Yza. (2020). Effect of the type of curing on the corrosion behavior of concrete exposed to urban and marine environment. European Journal of Engineering Research and Science, 5:1, pp. 91-95.
     Google Scholar
  12. G. Santiago-Hurtado et. al. (2016). Electrochemical Evaluation of Reinforcement Concrete Exposed to Soil Type SP Contaminated with Sulphates. International Journal of Electrochemical Science, 11:6, pp. 4850-4864.
     Google Scholar
  13. M.A. Baltazar-Zamora et. al. (2012). Efficiency of Galvanized Steel Embedded in Concrete Previously Contaminated with 2, 3 and 4% of NaCl. International Journal of Electrochemical Science, 7:4, pp. 2997-3007.
     Google Scholar
  14. Miguel Angel Baltazar-Zamora, José Manuel Mendoza-Rangel, René Croche, Citlalli Gaona-Tiburcio, Cindy Hernández, Luis López, Francisco Olguín, Facundo Almeraya-Calderón. (2019). Corrosion Behavior of Galvanized Steel Embedded in Concrete Exposed to Soil Type MH Contaminated with Chlorides. Frontiers in Materials, 6, pp. 1-12.
     Google Scholar
  15. A. Landa-Gómez et.al., (2018). Corrosion Behavior 304 and 316 Stainless Steel as Reinforcement in Sustainable Concrete Based on Sugar Cane Bagasse Ash Exposed to Na2SO4. ECS Transactions. 84, pp. 179-188.
     Google Scholar
  16. M.A. Baltazar-Zamora, D.M. Bastidas, G. Santiago-Hurtado, J.M. Mendoza-Rangel, C. Gaona-Tiburcio, J.M. Bastidas, F. Almeraya-Calderón. (2019). Effect of Silica Fume and Fly Ash Admixtures on the Corrosion Behavior of AISI 304 Embedded in Concrete Exposed in 3.5% NaCl Solution. Materials (Basel), 12:23, pp. 1-13.
     Google Scholar
  17. G. Santiago-Hurtado et. al. (2016). Electrochemical Evaluation of a Stainless Steel as Reinforcement in Sustainable Concrete Exposed to Chlorides. International Journal of Electrochemical Science, 11:4, pp. 2994-3006.
     Google Scholar
  18. Miguel Angel Baltazar-Zamora, Hilda Ariza-Figueroa, Laura Landa-Ruiz, and René Croche. (2020). Electrochemical Evaluation of AISI 304 SS and Galvanized Steel in Ternary Ecological Concrete based on Sugar Cane Bagasse Ash and Silica Fume (SCBA-SF) exposed to Na2SO4. European Journal of Engineering Research and Science, 5:3, pp. 353-357.
     Google Scholar
  19. Hilda A. Ariza-Figueroa et. al. (2020). Corrosion Behavior of AISI 304 Stainless Steel Reinforcements in SCBA-SF Ternary Ecological Concrete Exposed to MgSO4. Materials (Basel), 13:10, pp. 1-16.
     Google Scholar
  20. Abigail Landa-Sánchez et. al. (2020). Corrosion Behavior of Steel-Reinforced Green Concrete Containing Recycled Coarse Aggregate Additions in Sulfate Media. Materials (Basel), 13:19, pp. 1-22
     Google Scholar
  21. ACI. Provision of mixtures, normal concrete, heavy and massive ACI 211.1, p. 29. Ed. IMCYC, México (2004).
     Google Scholar
  22. ASTM C29 / C29M–07–Standard Test Method for Bulk Density (“Unit Weight”) and Voids in 412 Aggregate; ASTM International, West Conshohocken, PA, 2007, www.astm.org.
     Google Scholar
  23. ASTM C33/C33M–16e1–Standard Specification for Concrete Aggregates; ASTM International, 414 West Conshohocken, PA, 2016, www.astm.org.
     Google Scholar
  24. ASTM C127–15–Standard Test Method for Relative Density (Specific Gravity) and Absorption of 416 Coarse Aggregate; ASTM International, West Conshohocken, PA, 2015, www.astm.org.
     Google Scholar
  25. ASTM C128–15–Standard Test Method for Relative Density (Specific Gravity) and Absorption of 418 Fine Aggregate; ASTM International, West Conshohocken, PA, 2015, www.astm.org.
     Google Scholar
  26. NMX-C-414-ONNCCE 2014: Cementantes Hidráulicos. ONNCCE, S.C.; Mexico 2014.
     Google Scholar
  27. NMX-C-156-ONNCCE-2010: Determinación del revenimiento en el concreto fresco. ONNCCE S.C., México, (2010).
     Google Scholar
  28. ASTM C 1064/C1064M–08–Standard Test Method for Temperature of Freshly Mixed Hydraulic-426 Cement Concrete; ASTM International, West Conshohocken, PA, 2008, www.astm.org.
     Google Scholar
  29. NMX-C-162-ONNCCE-2014: Determinación de la masa unitaria, cálculo del rendimiento y contenido de aire del concreto fresco por el método gravimétrico., ONNCCE S.C., México, (2014).
     Google Scholar
  30. NMX-C-083-ONNCCE-2014: Determinación de la resistencia a la compresión de especímenes – Método de prueba, ONNCCE S.C., México, (2014).
     Google Scholar
  31. NMX-C-128-ONNCCE-2013: Determinación del Modulo de Elasticidad Estático y Relación de Poisson, ONNCCE S.C., México, (2013).
     Google Scholar


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