Research Article
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Year 2022, Volume: 7 Issue: 4, 250 - 265, 30.12.2022
https://doi.org/10.47481/jscmt.1163963

Abstract

References

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Effects of single-walled carbon nanotubes and steel fiber on recycled ferrochrome filled electrical conductive mortars

Year 2022, Volume: 7 Issue: 4, 250 - 265, 30.12.2022
https://doi.org/10.47481/jscmt.1163963

Abstract

The production of electrically conductive concrete was introduced years ago among construction materials, generally for anti-icing. The present study investigates the electrical, mechanical, dynamic, and microstructural properties of recycled ferrochrome filled cementitious mortars, containing single-walled carbon nanotubes (SWCNTs) and steel fiber. 7, 14, and 28-day non-destructive and 28-day compressive and bending tests of cementitious conductive mortars obtained from five different mixtures were performed. Two-point uniaxial method was used to determine the electrical conductivity properties of the samples. The damping ratio of the samples was obtained by performing dynamic resonance tests. Ultrasound pulse velocity (UPV) and Leeb hardness tests were performed as other non-destructive testing methods. Microstructure analysis at the interfaces of conductive concrete samples were characterized by scanning electron microscopy (SEM), EDS (Energy-Dispersive X-ray Spectroscopy), and X-ray diffraction (XRD). According to the experimental results, all data agreed and confirmed each other. When SWCNT is used in combination with steel fiber, the conductive mortar samples exhibited reasonable conductivity, while their mechanical properties turned out to below.

References

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  • [4] Ates, A. O., Khoshkholghi, S., Tore, E., Marasli, M., & Ilki, A. (2019). Sprayed glass fiber–reinforced mortar with or without basalt textile reinforcement for jacketing of low-strength concrete prisms. Jour nal of Composites for Construction, 23(2), Article 04019003. [CrossRef]
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  • [15] Dehghanpour, H., & Yilmaz, K. (2020). Heat be havior of electrically conductive concretes with and without rebar reinforcement. Medziagotyra, 26(4), 471–476. [CrossRef]
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  • [17] Rao, R., Wang, H., Wang, H., Tuan, C. Y., & Ye, M. (2019). Models for estimating the thermal proper ties of electric heating concrete containing steel fiber and graphite. Composites Part B: Engineering, 164, 116–120. [CrossRef]
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  • [23] Wang, X., Wu, Y., Zhu, P., & Ning, T. (2021). Snow melting performance of graphene composite con- ductive concrete in severe cold environment. Mate- rials, 14(21), Article 6715. [CrossRef]
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  • [26] Dilbas, H. (2022). An investigation on effect of ag- gregate distribution on physical and mechanical properties of recycled aggregate concrete (RAC). Journal of Sustainable Construction Materials and Technologies, 7(2), 108–118. [CrossRef]
  • [27] Canpolat, O., Uysal, M., Aygörmez, Y., Şahin, F., & Acıkök, F. (2018). Effect of fly ash and ground gran- ulated blast furnace slag on the strength of concrete pavement. Journal of Sustainable Construction Mate- rials and Technologies, 3(3), 278–285. [CrossRef]
  • [28] Dilbas, H. (2021). Application of finite element method on recycled aggregate concrete and rein- forced recycled aggregate concrete: A review. Jour- nal of Sustainable Construction Materials and Tech- nologies, 6(4), 173–191. [CrossRef]
  • [29] Sassani, A., Ceylan, H., Kim, S., Gopalakrishnan, K., Arabzadeh, A., & Taylor, P. C. (2017). Influence of mix design variables on engineering properties of carbon fiber-modified electrically conductive concrete. Construction and Building Materials, 152, 168–181. [CrossRef]
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  • [32] Turkish Standard EN 196-1. (2005). Methods of test- ing cement–Part 1: Determination of strength. Turk- ish Standard.
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  • [34] American Society for Testing and Materials A956. (2006). Standard test method for leeb hardness testing of steel products. American Society for Testing and Materials.
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  • [36] Al-Jabri, K., & Shoukry, H. (2018). Influence of nano metakaolin on thermo-physical, mechanical and microstructural properties of high-volume fer- rochrome slag mortar. Construction and Building Materials, 177, 210–221. [CrossRef]
  • [37] Dash, M. K., & Patro, S. K. (2018). Performance as- sessment of ferrochrome slag as partial replacement of fine aggregate in concrete. European Journal of Environmental and Civil Engineering, 25(4), 635– 654. [CrossRef]
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There are 75 citations in total.

Details

Primary Language English
Subjects Civil Engineering
Journal Section Research Articles
Authors

Heydar Dehghanpour 0000-0001-7801-2288

Fatih Doğan 0000-0002-4234-4034

Serkan Subaşı 0000-0001-7826-1348

Muhammed Maraşlı 0000-0003-2684-1003

Publication Date December 30, 2022
Submission Date August 18, 2022
Acceptance Date October 14, 2022
Published in Issue Year 2022 Volume: 7 Issue: 4

Cite

APA Dehghanpour, H., Doğan, F., Subaşı, S., Maraşlı, M. (2022). Effects of single-walled carbon nanotubes and steel fiber on recycled ferrochrome filled electrical conductive mortars. Journal of Sustainable Construction Materials and Technologies, 7(4), 250-265. https://doi.org/10.47481/jscmt.1163963

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Based on a work at https://dergipark.org.tr/en/pub/jscmt

E-mail: jscmt@yildiz.edu.tr