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Journal of the Korea Concrete Institute

J Korea Inst. Struct. Maint. Insp.
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  • Korea Citation Index (KCI)

References

1 
Oh, S., Jung, S. H., Chung, W., and Choi, Y. C. (2018), Investigation of the Effects of CNT Dosages on the Hydration and Heating Properties of Cement Composites with Low Water-to-binder Ratio, Journal of the Korea institute for structural maintenance and inspection, 22(6), 182-188 (in Korean).DOI
2 
Gwon, S., Moon, J., and Shin, M. (2022), Self-heating capacity of electrically conductive cement composites: Effects of curing conditions, Construction and Building Materials, 353, 129087.DOI
3 
Choi, B. G., and Heo, G. H. (2024), Analysis of Heat-generating Performance, Flexural Strength and Microstructure of Conductive Mortar Mixed with Micro Steel Fiber and MWCNT, Journal of the Korea institute for structural maintenance and inspection, 28(3), 47-58 (in Korean).DOI
4 
Hong, G., Choi, S., Yoo, D. Y., Oh, T., Song, Y., and Yeon, J. H. (2022), Moisture dependence of electrical resistivity in under-percolated cement-based composites with multi-walled carbon nanotubes, Journal of Materials Research and Technology, 16, 47-58.DOI
5 
Oumer, A., Ji, K., Ahn, E., and Gwon, S. (2025), Efficient heat curing of alkali-activated binder using self-heating cement composites, Case Studies in Construction Materials, 22, e04416.DOI
6 
Abolhasani, A., Pachenari, A., Razavian, S. M., and Abolhasani, M. M. (2022), Towards new generation of electrode-free conductive cement composites utilizing nano carbon black, Construction and Building Materials, 323, 126576.DOI
7 
Zhao, H. M., Wang, S. G., Wu, Z. M., and Che, G. J. (2010), Concrete slab installed with carbon fiber heating wire for bridge deck deicing, Journal of Transportation Engineering, 136(6), 500-509.DOI
8 
Wang, F., Fu, C., Liu, K., Huang, S., Gao, Y., and Xie, H. (2024), Experimental study and numerical simulation of concrete pavement electrical heating for snow melting, Construction and Building Materials, 442, 137611.DOI
9 
Song, H., Yum, W. S., Sim, S., Jeon, D., Yoon, S., and Oh, J. E. (2022), Proposed specific heat capacity model for a concrete wall containing phase change material (PCM) under field experiment conditions, Construction and Building Materials, 336, 127381.DOI
10 
Wu, D., Rahim, M., Li, W., El Ganaoui, M., Bennacer, R., Hu, K., and Zhang, Y. (2023), Hygrothermal and energy performance assessment of a passive building wall integrating PCM and bio-based hygroscopic material, Building and Environment, 245, 110908.DOI
11 
Mao, N., Jin, C., Gao, Y., Jiang, J., Liu, T., Wu, Y., and Liu, C. (2024), Expanded titanium-bearing blast furnace slag phase change aggregate: Preparation, performance and phase change energy storage mortar application, Journal of Building Engineering, 83, 108306.DOI
12 
Deb, R., Shrestha, N., Phan, K., Cissao, M., Namakiaraghi, P., Alqenai, Y., ... and Farnam, Y. A. (2024), Development of self-heating concrete using low-temperature phase change materials: Multiscale and in situ real-time evaluation of snow-melting and freeze–thaw performance, Journal of materials in civil engineering, 36(6), 04024102.DOI
13 
Deb, R., Iqbal, M. I., and Farnam, Y. (2025), Evaluating long-term thermal and chemical stability and leaching potential of low-temperature phase change materials in concrete slabs exposed to outdoor environmental conditions, Materials and Structures, 58(1), 23.DOI
14 
Ji, K., Kim, M., Ju, S., and Yoon, J. (2025), Thermal and Rheological Framework for PCM‑Infused Paint Coatings on High‑Speed Rail Profiles, Case Studies in Construction Materials, e04808.DOI