Open Access
Issue |
E3S Web Conf.
Volume 476, 2024
The 4th Aceh International Symposium on Civil Engineering (AISCE 2023)
|
|
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Article Number | 01037 | |
Number of page(s) | 8 | |
DOI | https://doi.org/10.1051/e3sconf/202447601037 | |
Published online | 17 January 2024 |
- Pacheco-Torgal, F., et al., Eco-efficient repair and rehabilitation of concrete infrastructures. 2017: Woodhead Publishing. [Google Scholar]
- Alengaram, U.J., H. Mahmud, and M.Z. Jumaat, Comparison of mechanical and bond properties of oil palm kernel shell concrete with normal weight concrete. International journal of the physical sciences, 2010. 5(8): p. 1231–1239. [Google Scholar]
- Rahayu, H., et al., The effect of different acceleration corrosion processes on flexural strength of oil palm shell concrete. AIP Conference Proceedings, 2023. 2482(1). [Google Scholar]
- Wibisono, C.A., et al., The effect of partial replacement of aggregate on the flexural strength of corroded oil palm shell concrete. AIP Conference Proceedings, 2023. 2689(1). [Google Scholar]
- Hussain, A., et al., Thermogravimetric and thermochemical studies of Malaysian oil palm shell waste. Jurnal Teknologi, 2006. 45. [Google Scholar]
- Pantazopoulou, S.J. and K. Papoulia, Modeling cover-cracking due to reinforcement corrosion in RC structures. Journal of engineering mechanics, 2001. 127(4): p. 342–351. [CrossRef] [Google Scholar]
- Kashani, M.M., et al., Finite element investigation of the influence of corrosion pattern on inelastic buckling and cyclic response of corroded reinforcing bars. Engineering Structures, 2014. 75: p. 113–125. [CrossRef] [Google Scholar]
- Murugan, U., Assessment condition of RC corroded column by non-destructive testing methods. Materials Today: Proceedings, 2021. 45: p. 6645–6648. [CrossRef] [Google Scholar]
- Zaki, A. and Z. Ibrahim, Corrosion assessment of pre-corrosion concrete specimens using acoustic emission technique. Journal of Engineering and Technological Sciences, 2021. 53(2). [Google Scholar]
- Melchers, R., Modelling durability of reinforced concrete structures. Corrosion Engineering, Science and Technology, 2020. 55(2): p. 171–181. [CrossRef] [Google Scholar]
- Chen, F., H. Baji, and C.-Q. Li, A comparative study on factors affecting time to cover cracking as a service life indicator. Construction and Building Materials, 2018. 163: p. 681–694. [CrossRef] [Google Scholar]
- Bezuidenhout, S.R. and G.P. van Zijl, Corrosion propagation in cracked reinforced concrete, toward determining residual service life. Structural Concrete, 2019. 20(6): p. 2183–2193. [CrossRef] [Google Scholar]
- Saifullah, I., et al., Mechanical and Bond Properties of Lightweight Concrete Incorporating Coconut Shell as Coarse Aggregate. American Journal of Civil Engineering and Architecture, 2019. 7(1): p. 38–46. [Google Scholar]
- Paredes, M., et al., Precision statements for the surface resistivity of water cured concrete cylinders in the laboratory. Advances in Civil Engineering Materials, 2012. 1(1): p. ACEM104268. [CrossRef] [Google Scholar]
- Spragg, R.P., et al., Variability analysis of the bulk resistivity measured using concrete cylinders. 2011. [Google Scholar]
- Chen, C.-T., J.-J. Chang, and W.-C. Yeih, The effects of specimen parameters on the resistivity of concrete. Construction and Building Materials, 2014. 71: p. 35–43. [CrossRef] [Google Scholar]
- Minagawa, H. and M. Hisada. Consideration about chloride ion diffusion coefficient estimated by electric resistivity of concrete exposed in tidal zone. in Proceedings of the 3rd International Conference on Sustainable Construction Materials and Technologies. 2013. [Google Scholar]
- Zaki, A., et al., Evaluating Pre-Corrosion and Post-Corrosion of Oil Palm Shell Concrete with NonDestructive Testing. Key Engineering Materials, 2023. 942: p. 137–162. [CrossRef] [Google Scholar]
- Yan, Y., et al. A bibliometric analysis of research on acoustic emission for nondestructive testing. in IOP Conference Series: Materials Science and Engineering. 2021. IOP Publishing. [Google Scholar]
- Hornbostel, K., C.K. Larsen, and M.R. Geiker, Relationship between concrete resistivity and corrosion rate- A literature review. Cement and concrete composites, 2013. 39: p. 60–72. [CrossRef] [Google Scholar]
- Elices, M., et al., Failure analysis of prestressed anchor bars. Engineering Failure Analysis, 2012. 24: p. 57–66. [CrossRef] [Google Scholar]
- Luo, T., et al., A study on damage of steel fiber reinforced concrete (SFRC) under uniaxial compression based on the electrical resistivity method. Materials and Structures, 2022. 55(7): p. 173. [CrossRef] [Google Scholar]
- Nasional, B.S., Tata cara pembuatan rencana campuran beton normal. SK SNI, 2000. 3: p. 2834–2000. [Google Scholar]
- Testing, A.S.F. and Materials. ASTM G1-03: Standard Practice for Preparing, Cleaning, and Evaluating Corrosion Test Specimens. 2004. ASTM. [Google Scholar]
- Testing, A.S.F. and Materials. ASTM G31-72: standard practice for laboratory immersion corrosion testing of metals. 2004. ASTM. [Google Scholar]
- Nasional, B.S., Metode Pengujian Kuat Lentur Beton dengan Balok Uji Sederhana yang Debebani Terpusat Langsung (SNI 03-4154-1996). 1996, Jakarta. [Google Scholar]
- Gowers, K. and S. Millard, Measurement of concrete resistivity for assessment of corrosion. Aci Mater. J., 1999. 96(5): p. 536–541. [Google Scholar]
- Mendes, S.E., et al., Electrical resistivity as a durability parameter for concrete design: Experimental data versus estimation by mathematical model. Construction and Building Materials, 2018. 192: p. 610–620. [CrossRef] [Google Scholar]
- Wu, F., J.-H. Gong, and Z. Zhang, Calculation of corrosion rate for reinforced concrete beams based on corrosive crack width. Journal of Zhejiang University SCIENCE A., 2014. 15(3): p. 197–207. [CrossRef] [Google Scholar]
- Morris, W., A. Vico, and M. Vázquez, Chloride induced corrosion of reinforcing steel evaluated by concrete resistivity measurements. Electrochimica acta, 2004. 49(25): p. 4447–4453. [CrossRef] [Google Scholar]
- Ahmad, S., An experimental study on correlation between concrete resistivity and reinforcement corrosion rate. Anti-Corrosion Methods and Materials, 2014. 61(3): p. 158–165. [CrossRef] [Google Scholar]
- Arredondo-Rea, S.P., et al., Electrochemical corrosion and electrical resistivity of reinforced recycled aggregate concrete. International Journal of Electrochemical Science, 2011. 6(2): p. 475–483. [CrossRef] [Google Scholar]
- Pacheco-Torgal, F., Introduction to carbon dioxide sequestration-based cementitious construction materials, in Carbon dioxide sequestration in cementitious construction materials. 2018, Elsevier. p. 3–12. [Google Scholar]
- Kosior-Kazberuk, M. and W. Jezierski, Evaluation of concrete resistance to chloride ions penetration by means of electric resistivity monitoring. Journal of Civil Engineering and Management, 2005. 11(2): p. 109–114. [CrossRef] [Google Scholar]
- Fares, M., et al., Determining chloride content profiles in concrete using an electrical resistivity tomography device. Cement and concrete composites, 2018. 94: p. 315–326. [CrossRef] [Google Scholar]
- Tayebani, B. and D. Mostofinejad, Penetrability, corrosion potential, and electrical resistivity of bacterial concrete. Journal of Materials in Civil Engineering, 2019. 31(3): p. 04019002. [CrossRef] [Google Scholar]
- Neville, A., Chloride attack of reinforced concrete: an overview. Materials and structures, 1995. 28: p. 63–70. [CrossRef] [Google Scholar]
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