Investigation of the physical and mechanical properties of self-adhesive composite with replacement of the kid aggregate by glass powder
DOI:
https://doi.org/10.33448/rsd-v11i13.35642Keywords:
Concrete; Self-adensable cementitious composite; Compressive strength; Void stake.Abstract
The objective of this work is to evaluate the production of self-adensible cementitious composite with the residues of ground glass, in the proportions of 5%, 10%, 15%, 20% and 30% in place of the kid aggregate and investigate its physical and mechanical properties. Concrete is one of the most used materials in civil construction and many types of waste can be used in its composition to reduce the extraction of natural raw materials, such as glass which is a 100% recyclable material and can be used as aggregate in cementitious composite or glass powder in cement making cement. For this, the tests of granulometry, specific mass, unit mass, mass will be used for the characterization of glass residue. In the fresh state, the "Mini-Cone Slump Flow" and "mini v-funnel test" methods were performed to obtain viscosity and spreading diameter index and in the hardened state were performed mechanical strength tests to axial and diametric compression, specific mass and void stake. The results obtained indicate that the compressive strength decreased with the increase of compressive strength at 28 days.
References
ADI-SUPER25. (2021). ADI-SUPER ADI-SUPER Superplastificante para concreto –. 20–21.
Ali, E., & Al-Tersawy, S. (2012). Recycled glass as a partial replacement for fine aggregate in self compacting concrete. Construction and Building Materials, 35, 785–791. https://doi.org/10.1016/j.conbuildmat.2012.04.117
Armstrong, T. (2016). Global Cement Report. International Cement Review.
ASTM C270-10. (2017). ASTM C270-10. StandardStandard Specification for Mortar for Unit Masonry: C270 − 14a. https://doi.org/10.1520/C0270-14A.Copyright
Czarnecki, L., & Kapron, M. (2010). Sustainable construction as a research area. International Journal of the Society of Material Engineering for Resources, 17(2), 99–106. https://doi.org/10.5188/ijsmer.17.99
Dong, W., Li, W., & Tao, Z. (2021). A comprehensive review on performance of cementitious and geopolymeric concretes with recycled waste glass as powder, sand or cullet. Resources, Conservation and Recycling, 172, 105664. https://doi.org/https://doi.org/10.1016/j.resconrec.2021.105664
Farias, L. A., Lopes, A. N. M., Stival, M. L., Andrade, M. A. S., & Bittencourt, R. M. (2001). Ensaios de Tração Direta em Corpos de Prova de Concreto. 1, 9.
Gomes, Alexandre; Barros, P. C. (2009). Métodos de dosagem de concreto autoadensável.
Higuchia, A. M. D., & Raimundo Pereira de Vasconcelos. (2022). The effect of glass powder on the rheological and mechanical performance of self- compacting high strength concrete. Available at SSRN. https://doi.org/http://dx.doi.org/10.2139/ssrn.4163556
Islam, G. M. S., Rahman, M. H., & Kazi, N. (2017). Waste glass powder as partial replacement of cement for sustainable concrete practice. International Journal of Sustainable Built Environment, 6(1), 37–44. https://doi.org/https://doi.org/10.1016/j.ijsbe.2016.10.005
Magni Darwich Higuchi, A., Gorett dos Santos Marques, M., Farias Ribas, L., & Pereira de Vasconcelos, R. (2021). Use of glass powder residue as an eco-efficient supplementary cementitious material. Construction and Building Materials, 304, 124640. https://doi.org/https://doi.org/10.1016/j.conbuildmat.2021.124640
Małek, M., Łasica, W., Jackowski, M., & Kadela, M. (2020). Effect of waste glass addition as a replacement for fine aggregate on properties of mortar. Materials, 13(14), 1–19. https://doi.org/10.3390/ma13143189
NBR 16697. (2018). Cimento Portland — Requisitos. Abnt, 1–9.
NBR 5738. (2018). Concreto - Ensaio de compressão de corpos de prova cilíndricos Conforme a 5738.pdf.pdf.
NBR 7222. (2011). NBR 7222: Concreto e argamassa - Determinação da resistência à tração por compressão diametral de corpos de prova cilíndricos. In Associação Brasileira de Normas Técnicas (p. 5).
Nepomuceno, M., Oliveira, L., & Lopes, S. M. R. (2012). Construção e materiais de construção utilizando diferentes adições minerais em misturas binárias de pós. d, 317–326.
Novaes, A. H., Duarte, F., Riveiro, L. O., & Santos, T. E. (2019). Metodologia Cientifica Teoria e aplicação na educação a distância. In Petrolina - PE Universidade Federal do Vale do São Francisco (Vol. 53, Issue 9). http://portais.univasf.edu.br/dacc/noticias/livro-univasf/metodologia-cientifica-teoria-e-aplicacao-na-educacao-a-distancia.pdf
Okamura, H., & Ouchi, M. (2003). Betão Auto-compactável. 1(1), 5–15.
Rahma, A., Naber, N. El, & Ismail, S. I. (2017). Effect of glass powder on the compression strength and the workability of concrete. Cogent Engineering, 4(1), 1373415. https://doi.org/10.1080/23311916.2017.1373415
Rao, S., Silva, P., & De Brito, J. (2015). Experimental study of the mechanical properties and durability of self-compacting mortars with nano materials (SiO2 and TiO2). Construction and Building Materials, 96, 508–517. https://doi.org/10.1016/j.conbuildmat.2015.08.049
Santiago, J. M., Clementino, F. de S., Conceição, I. G. C. da, Sousa, H. F. de, & Santos, H. C. dos. (2022). Effects on the properties of cementitious composites using waste glass powder (WGP) as a partial replacement for cement. International Journal for Innovation Education and Research, 10(1), 307–324. https://doi.org/10.31686/ijier.vol10.iss1.3619
Silva, L. R. R. da, Silva, J. A. da, Francisco, M. B., Ribeiro, V. A., de Souza, M. H. B., Capellato, P., Souza, M. A., dos Santos, V., Cesar Gonçalves, P., & de Lourdes Noronha Motta Melo, M. (2020). Polymeric Waste from Recycling Refrigerators as an Aggregate for Self-Compacting Concrete. Sustainability, 12(20). https://doi.org/10.3390/su12208731
Singh, H., & Siddique, R. (2022). Utilization of crushed recycled glass and metakaolin for development of self-compacting concrete. Construction and Building Materials, 348, 128659. https://doi.org/https://doi.org/10.1016/j.conbuildmat.2022.128659
ASTM C150/C150M − 18. https://doi.org/10.1520/C0150
Tutikian, B. F. (2004). Método para dosagem de concretos auto- método para dosagem de concretos autoadensável.
USEPA. (2010). Available and Emerging Technologies for Reducing Greenhouse Gas Emissions from the Petroleum Refining Industry (Issue October).
VOTORANTIM. (2020). Ficha De Informações de Segurança De Produtos Químicos – FISPQ – Revisão n°00 06/01/2020.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2022 Rafael Gonçalves Torres; Mirian de Lourdes Noronha Motta Melo; Valquíria Claret dos Santos; Vander Alkmin dos Santos Ribeiro; Adhimar Flávio Oliveira; Ana Paula Mota Alves
This work is licensed under a Creative Commons Attribution 4.0 International License.
Authors who publish with this journal agree to the following terms:
1) Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
2) Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
3) Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work.