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Journal of the Korea Concrete Institute

J Korea Inst. Struct. Maint. Insp.
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  • Korea Citation Index (KCI)
1 
Konsta-Gdoutos, M.S., Metaxa, Z.S., Shah, S.P. (2010), MultiScale Mechanical and Fracture Characteristics and Early-age Strain Capacity of High Performance Carbon Nanotube/Cement Nanocomposites, Cement and Concrete Composites, MultiScale Mechanical and Fracture Characteristics and Early-age Strain Capacity of High Performance Carbon Nanotube/Cement Nanocomposites, Cement and Concrete Composites, 32(2), 110-115. 10.1016/j.cemconcomp.2009.10.0070958-9465, 32(2), 110-115.DOI
2 
Colins, F., John, L., Duan, W. (2012), The influences of admixtures on the dispersion, workability, and strength of carbon nanotube-opc paste mixtures, Cement & Concrete Composites, The influences of admixtures on the dispersion, workability, and strength of carbon nanotube-opc paste mixtures, Cement & Concrete Composites, 34(2), 201-207. 10.1016/j.cemconcomp.2011.09.0130958-9465, 34(2), 201-207.DOI
3 
Jo, B. W., Kim, S. K., Choi, J. S., Kim, D., Kim, T. Y. (2013), Basic Study by Multi-Walled Carbon NanoTube(MWCNT) for Radiation shielding Concrete, Korea Society of Civil Enginerrs, 10, 16-18.Google Search
4 
Kang, S. T., Park, S. H. (2014), Experimental Study on Improving Compressive Strength of MWCNT Reinforced Cementitious Composites, Journal of the Korea Concrete Institute, Experimental Study on Improving Compressive Strength of MWCNT Reinforced Cementitious Composites, Journal of the Korea Concrete Institute, 26(1), 63-70. 10.4334/JKCI.2014.26.1.063, 26(1), 63-70.DOI
5 
Xun, Y., Eil, K. (2009), Carbon nanotube/cement Composite with piezoresistive properties, Smart Mater Structures, Carbon nanotube/cement Composite with piezoresistive properties. Smart Mater Structures, 18(5), 1-5.0964-1726, 18(5), 1-5.Google Search
6 
Musso, S., Tulliani, J.M., Ferro, G. (2009), Influence of carbon nanotubes structure on the mechanical behavior of cement composites, 69(11-12), 1985-1990.Google Search
7 
Ha, S. J., Kang, S. T. (2016), Flowability and Strength of Cement Composites with Different Dosages of Multi-Walled CNTs, Journal of the Korea Concrete Institute, Flowability and Strength of Cement Composites with Different Dosages of Multi-Walled CNTs, Journal of the Korea Concrete Institute, 28(1), 67-74. 10.4334/JKCI.2016.28.1.067, 28(1), 67-74.DOI
8 
Chaipanich, A., Nochaiya, T., Wongkeo, W., Torkittikul, P. (2010), Compressive strength and microstructure of carbon nanotubes–fly ash cement composites, Materials Science and Engineering A, Compressive strength and microstructure of carbon nanotubes–fly ash cement composites, Materials Science and Engineering A, 527, 1063-1067. 10.1016/j.msea.2009.09.0390921-5093, 527, 1063-1067.DOI
9 
Xu, S., Liu, J., Li, Q. (2015), Mechanical properties and microstructure of multi-walled carbon nanotube-reinforced cement paste, 76, 16-23.4.Google Search
10 
Lee, H., Kang, D., Song, Y., Chung, W. (2017), Heating experiment of CNT cementitous composites with single-walled and multiwalled carbon nanotubes, Journal of Nanomaterials, 2017, 3691509,Google Search
11 
Oh, S. (2017), Journal of the Korea Institute for Structural Maintenance and Inspection, Effects of CNT additions on mechanical properties and microstructures of cement, Journal of the Korea Institute for Structural Maintenance and Inspection, 21(6), 162-168., 21(6), 162-168.Google Search
12 
Oh, S., Choi, Y.C. (2018), Superabsorbent polymers as internal curing agents in alkali activated slag mortars, Construction and Building Materials, Superabsorbent polymers as internal curing agents in alkali activated slag mortars, Construction and Building Materials, 159, 1-8. 10.1016/j.conbuildmat.2017.10.1210950-0618, 159, 1-8.DOI
13 
Jang, S., Hochstein, D., Kawashima, S., Yin, H. (2017), Experiments and micromechanical modeling of electrical conductivity of carbon nanotube/cement composites with moisture, Cement and Concrete Composites, Experiments and micromechanical modeling of electrical conductivity of carbon nanotube/cement composites with moisture, Cement and Concrete Composites, 77, 49-59. 10.1016/j.cemconcomp.2016.12.0030958-9465, 77, 49-59.DOI
14 
Kim, G., Naeem, F., Kim, H., Lee, H. (2016), Heating and heatdependent mechanical characteristics of CNT-embedded cementitious composites, Composite Structures, Heating and heatdependent mechanical characteristics of CNT-embedded cementitious composites, Composite Structures, 136, 162-170. 10.1016/j.compstruct.2015.10.0100263-8223, 136, 162-170.DOI
15 
Kim, G.M., Park, S.M., Ryu, G.U., Lee, H. K. (2017), Electrical characteristics of hierarchical conductive pathways in cementitious composites incorporating CNT and carbon fiber, Cement and Concrete Composites, Electrical characteristics of hierarchical conductive pathways in cementitious composites incorporating CNT and carbon fiber, Cement and Concrete Composites, 82, 165-175 10.1016/j.cemconcomp.2017.06.0040958-9465, 82, 165-175.DOI
16 
Jang, S., Hochstein, D. P., Kawashima, S., Yin, H. (2017), Experiments and micromechanical modeling of electrical conductivity of carbon nanotube/cement composites with moisture, Cement and Concrete Composites, Experiments and micromechanical modeling of electrical conductivity of carbon nanotube/cement composites with moisture, Cement and Concrete Composites, 77, 49-59 10.1016/j.cemconcomp.2016.12.0030958-9465, 77, 49-59.DOI