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Research Article

Application of electrical resistivity for estimating compressive strength of FRC at early-ages

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References

  • Azarsa, P., & Gupta, R. (2017). Electrical resistivity of concrete for durability evaluation: A review. Advances in Materials Sciences and Engineering, 2017(1), 1–8. https://doi.org/10.1155/2017/8453095
  • Bobde, S., Gandhe, G., & Tupe, D. (2018). Performance of glass fiber reinforced concrete. International Journal of Advance Research, Ideas and Innovations in Technology, 4(3), 984–988. www.IJARIIT.com
  • Gunduz, Y., & Sahin, Y. (2021). Relation of the thermal conductivity and the electrical resistivity to the unit weight of hemp based composites. International Journal of Thermophysics, 42(7). https://doi.org/10.1007/s10765-021-02857-2
  • Haque, M. I., & Rasel-Ul-Alam, M. (2018). Non-linear models for the prediction of specified design strengths of concretes development profile. HBRC Journal, 14(2), 123–136. https://doi.org/10.1016/j.hbrcj.2016.04.004
  • Hassan, A. M. T., & Jones, S. W. (2012). Non-destructive testing of ultra high-performance fiber reinforced concrete (UHPFRC): A feasibility study for using ultrasonic and resonant frequency testing techniques. Construction and Building Materials, 35(2012), 361–367. https://doi.org/10.1016/j.conbuildmat.2012.04.047
  • Hedjazi, S., & Castillo, D. (2020). Effect of fiber types on the electrical properties of fiber reinforced concrete. Journal of Material Express, 10(5), 733–739. https://doi.org/10.1166/mex.2020.1679
  • Hongyu, S., Jinrui, Z., & Zongjin, L. (2015). Electrical method to evaluate elastic modulus of early age concrete. Construction and Building Materials, 101(2015), 661–666. https://doi.org/10.1016/j.conbuildmat.2015.10.138
  • Khademi, F., Akbari, M., & Jamal, S. (2016). Prediction of concrete compressive strength using ultrasonic pulse velocity test and artificial neural network modeling. Romanian Journal of Materials, 46(3), 343–350. https://solacolu.chim.upb.ro/p343-350c.pdf
  • Madhavi, T., Raju, L., & Mathur, D. (2014). Polypropylene Fiber Reinforced Concrete – A review. International Journal of Emerging Technology & Advanced Engineering, 4(4), 114–119.
  • Mandal, T., Tinjum, J., & Edil, T. (2016). Non-destructive testing of cementitiously stabilized materials using ultrasonic pulse velocity test. Transportation Geotechnics, 6(2016), 97–107. https://doi.org/10.1016/j.trgeo.2015.09.003
  • Mohod, M. (2015). Performance of polypropylene fiber reinforced concrete. Journal of Mechanical and Civil Engineering, 12(1), 28–36. https://doi.org/10.9790/1684-12112836
  • Nitin, & Verma, S. (2016). Effect on mechanical properties of concrete using nylon fibers. International Research Journal of Engineering & Technology, 3(7), 1751–1755. https://www.irjet.net/archives/V3/i7/IRJET-V3I7329.pdf
  • Nycon. (2019a). Nycon SSF Type V (Stainless steel) high performance fiber, ASTM 820, continuously deformed (Nycon Headquarters: 300 Ben Fairless Drive Fairless Hills, PA 19030 USA).
  • Nycon. (2019b). Nycon-AR-DM (fiberglass) Alkali resistant, dry or wet mix, medium denier, superior finish (Nycon Headquarters: 300 Ben Fairless Drive Fairless Hills, PA 19030 USA).
  • Nycon. (2019c). Nycon-Multimesh Virgin Nylon, Medium Denier, Superior Finish (Nycon Headquarters: 300 Ben Fairless Drive Fairless Hills, PA 19030 USA).
  • Nycon. (2019d). ProCon-F virgin polypropylene, fibrillated fiber net (Nycon Headquarters: 300 Ben Fairless Drive Fairless Hills, PA 19030 USA).
  • Pawade, P., Nagarnaik, P., & Pande, A. (2011). Performance of steel fiber on standard strength concrete in compression. International Journal of Civil & Structural Engineering, 2(2), 483–492. https://doi.org/10.6088/ijcser.00202010127
  • Proceq USA, Inc. (2017). Resipod family operating instruction concrete durability testing (117 Corporation Drive Aliquippa, PA 15001).
  • Safari, S. (2016). Early-Age mechanical properties and electrical resistivity of geopolymer composites. School of Engineering and Design, Brunel University,
  • Shahmansouri, A., Bengar, H., & Jahani, E. (2019). Predicting compressive strength and electrical resistivity of eco-friendly concrete containing natural zeolite via GEP algorithm. Construction and Building Materials, 229, 116883. https://doi.org/10.1016/j.conbuildmat.2019.116883
  • Subramanian, E., Vaishnave, V., & Vignesh, V. (2016). Experimental investigation of concrete composite using nylon fiber. International Journal of Engineering Sciences & Research Technology, 5(12), 998–1002. https://doi.org/10.5281/zenodo.187534
  • Suksawang, N., Wtaife, S., & Alsabbagh, A. (2018). Evaluation of elastic modulus of fiber reinforced concrete. ACI Materials Journal, 115(2), 239–249. https://doi.org/10.14359/51701920
  • Verma, S. K., Bhadauria, S. S., & Akhtar, S. (2013). Review of nondestructive testing methods for condition monitoring of concrete structures. Journal of Construction Engineering, 2013(N/A), 1–11. https://doi.org/10.1155/2013/834572
  • Wei, X., Xiao, L., & Li, Z. (2012). Prediction of standard compressive strength of cement by the electrical resistivity method. Construction and Building Materials, 31(2012), 341–346. https://doi.org/10.1016/j.conbuildmat.2011.12.111

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