Residual fly ash from pyrometallurgical processes as a partial replacement for Portland cement in mortars: a study of structural evolution and determination of compressive strength

Author:

Juarez-Tapia J. C.1ORCID,García-Ortiz H.1ORCID,Pérez-Labra M.1ORCID,Romero-Serrano J. A.2ORCID,Reyes-Pérez M.1ORCID,Hernández-Ramirez A.2ORCID,Acosta-Sanchez V.1ORCID,Teja-Ruiz A.M.1ORCID,Reyes-Dominguez I.A.3ORCID

Affiliation:

1. Academic Area of Earth Sciences and Materials, Autonomous University of Hidalgo State , Road Pachuca-Tulancingo Km 4.5, Mineral de la Reforma , Hidalgo , México

2. Metallurgy and Materials Department, ESIQIE-IPN, UPALM , Zacatenco , Ciudad de México , México

3. Institute of Metallurgy, Autonomous University of San Luis Potosí , San Luis Potosí , México

Abstract

Abstract Mortar mixtures were prepared by partial replacement of Portland cement with 0%, 10%, and 15% of residual fly ash to determine the structural evolution and compressive strength at 3, 7, 14, and 28 days. Portlandite, calcite, ettringite, iron oxide, silicon oxide, and sillimanite were identified in the standard mortar, and, additionally, magnetite was identified in the mortar with 10% and 15% fly ash. X-ray diffraction peaks corresponding to portlandite and ettringite increased in intensity with increasing curing time as a result of the consolidation of mineral species. The SEM analysis revealed that the standard mortar contained mainly portlandite and ettringite at 28 days, while the samples with 10% and 15% fly ash contained particles of fly ash coated with portlandite and ettringite, particles with a smooth surface, and particles of fly ash with signs of attack on their surfaces. The sc increased when the age of the mortar and the substitution of Portland cement by fly ash was increased from 3 to 28 days and from 0 to 15%, respectively.

Publisher

Walter de Gruyter GmbH

Reference38 articles.

1. Imbabi M, Carrigan C, McKenna S. Trends and developments in green cement and concrete technology. Int J Sustain Built Environ. 2012;1(2):94–216. doi:10.1016/j.ijsbe.2013.05.001

2. Albitar M, Ali MM, Visintin P, Drechsler M. Effect of granulated lead smelter slag on strength of fly ash-based geopolymer concrete. Constr Build Mater. 2015;83:128–35. doi:10.1016/j.conbuildmat.2015.03.009

3. Rahman MA, Sarker PK, Shaikh FUA, Saha AK. Soundness and compressive strength of Portland cement blended with ground granulated ferronickel slag, Constr Build Mater. 2017;140:194–202. doi:10.1016/j.conbuildmat.2017.02.023

4. ASTM C618 – 03, Standard Specification for Coal Fly Ash and Raw or Calcined Natural Pozzolan for Use in Concrete, (2003). https://global.ihs.com/doc_detail.cfm?document_name=ASTM%20C618&item_s_key=00014875

5. Bendapudi SCK. Contribution of fly ash to the properties of mortar and concrete. Int J Earth Sci Eng. 2011;04(06 SPL):1017–23. https://www.researchgate.net/publication/255963880_Contribution_of_Fly_ash_to_the_properties_of_Mortar_and_Concrete

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