Research Article

INVESTIGATION OF THE PERFORMANCE OF WASTE GLASS POWDER SUBSTITUTED CONCRETES UNDER HIGH TEMPERATURES

Volume: 27 Number: 2 June 3, 2024
EN TR

INVESTIGATION OF THE PERFORMANCE OF WASTE GLASS POWDER SUBSTITUTED CONCRETES UNDER HIGH TEMPERATURES

Abstract

This study aims to investigate the changes in the strength performance of concretes produced using waste glass powder before and after high temperature. Accordingly, a series of 6 concretes with different waste glass powder replacement ratios were produced. An experimental program including mechanical tests was carried out on the produced concrete series. Concrete series that completed the curing period were kept at 400 oC, 600 oC, 800 oC, respectively, and compressive strength losses after high temperature were determined. The mechanical properties of concrete decreased with the increase of waste glass powder substitution in concrete. On the other hand, the best results were observed in the series where the glass powder ratio was 10%. It was observed that the use of up to 10% of glass powder in concrete increased the performance of concrete. As a result, it was observed that waste glass powder can be used as a cement replacement material in the production of high temperature resistant concrete. With this reduction in the amount of cement, it has been seen that it is possible to produce a more environmentally friendly concrete with a reduced carbon footprint. In addition, the use of waste glass powder in concrete production becomes a potential option for the construction sector by providing a solution to waste management and contributing to the circular economy.

Keywords

References

  1. Abed, M., & de Brito, J. (2020). Evaluation of high-performance self-compacting concrete using alternative materials and exposed to elevated temperatures by non-destructive testing. Journal of Building Engineering, 32, 101720. https://doi.org/10.1016/j.jobe.2020.101720
  2. Acikgenc Ulas, M. (2022). Development of an artificial neural network model to predict waste marble powder demand in eco‐efficient self‐compacting concrete. Structural Concrete. https://doi.org/10.1002/suco.202200043
  3. Alyamac, K. E., Ghafari, E., & Ince, R. (2017). Development of eco-efficient self-compacting concrete with waste marble powder using the response surface method. Journal of Cleaner Production, 144, 192–202. https://doi.org/10.1016/j.jclepro.2016.12.156
  4. Bengal, S. N., Pammar, L. S., & Nayak, C. B. (2022). Engineering application of organic materials with concrete: A review. Materials Today: Proceedings, 56, 581–586. https://doi.org/10.1016/j.matpr.2022.02.390
  5. Binici, H., Temiz, H., Sevinç, A. H., Mustafa, E., Mehmet, K., & Şayir, Z. (2013). Alüminyum Talaşı, Bims ve Gazbeton Tozu İçeren Betonların Yüksek Sıcaklık Etkisinin İncelenmesi. Yapı Teknolojileri Elektronik Dergisi, 9(1), 1–15. e-ISSN:1305-631X
  6. Delay, R. (2008). Our Post-Kyoto Treaty Climate Change Framework: Open Market Carbon-Ranching as Smart Development. Penn St. Envtl. L. Rev., 17, 55.
  7. Demir, T., and Alyamaç, K. E. (2022). Investigation of the Use of Marble Powder in Production of High Strength Concretes. Open Journal of Nano, 7(1), 18–25. https://doi.org/10.56171/ojn.1034691
  8. Demir, T., Demirel, B., and Öztürk, M. (2022). An Evaluation of the Effect of Waste Aluminum Sawdust on the Carbonation of Concrete. Bitlis Eren University Journal of Science, 11(4), 993–999. https://doi.org/10.17798/bitlisfen.1141419

Details

Primary Language

Turkish

Subjects

Construction Materials

Journal Section

Research Article

Publication Date

June 3, 2024

Submission Date

January 3, 2024

Acceptance Date

March 25, 2024

Published in Issue

Year 1970 Volume: 27 Number: 2

APA
Demir, T., Demirel, B., & Şireci, A. Ç. (2024). ATIK CAM TOZU KATKILI BETONLARIN YÜKSEK SICAKLIK ALTINDAKİ PERFORMANSLARININ İNCELENMESİ. Kahramanmaraş Sütçü İmam Üniversitesi Mühendislik Bilimleri Dergisi, 27(2), 631-642. https://doi.org/10.17780/ksujes.1414159