Mobile QR Code QR CODE

Journal of the Korea Concrete Institute

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

References

1 
Abbas, A. A., Thapa, S. J. (2025), Experimental Investigation of Low-Carbon Concrete Using Biochar as Partial Cement Replacement, Sustainability, 17(23), 10744DOI
2 
Barbhuiya, S., Das, B. B., Kanavaris, F. (2024), Biochar-concrete: A comprehensive review of properties, production and sustainability, Case Studies in Construction Materials, 20, e02859DOI
3 
Chaudhury, R., Sharma, U., Thapliyal, P. C., Singh, L. P. (2023), Low-CO2 emission strategies to achieve net zero target in cement sector, Journal of Cleaner Production, 417, 137466DOI
4 
Chen, L., Zhou, T., Yang, J., Qi, J., Zhang, L., Liu, T., Li, B. (2023), A review on the roles of biochar incorporated into cementitious materials: Mechanisms, application and perspectives, Construction and Building Materials, 409, 134204DOI
5 
Choi, W., Yun, H.D., Lee, J. Y. (2012), Mechanical Properties of Mortar Containing Bio-Char From Pyrolysis, Journal of the Korea Institute for Structural Maintenance and Inspection, 16(3), 67-74.DOI
6 
Gupta, S., Krishnan, P., Kashani, A., Kua, H. W. (2020), Application of biochar from coconut and wood waste to reduce shrinkage and improve physical properties of silica fume-cement mortar, Construction and Building Materials, 262, 120688DOI
7 
Gupta, S., Kua, H. W., Low, C. Y. (2018), Use of biochar as carbon sequestering additive in cement mortar, Cement and concrete composites, 87, 110-129.DOI
8 
Gupta, S., Kua, H. W., Dai Pang, S. (2018), Biochar-mortar composite: Manufacturing, evaluation of physical properties and economic viability, Construction and Building Materials, 167, 874-889.DOI
9 
Gupta, S., Kua, H. W. (2018), Effect of water entrainment by pre-soaked biochar particles on strength and permeability of cement mortar, Construction and Building Materials, 159, 107-125.DOI
10 
Hamidi, F., Tunstall, L. E. (2025), Insights into the influence of biochar powder on the fresh state properties and strength development of concrete, Construction and Building Materials, 498, 144006DOI
11 
Han, S., Choi, W. (2023), Evaluation of the Mechanical Properties of Cement Mortar Containing Wood-Based Bio-Char, Journal of the Korea Concrete Institute, 35(3), 285-292.DOI
12 
Jeon, D., Oh, H. S., Kwon, S., Kim, D. J., Pyo, S., Yoon, S. (2024), A Comprehensive Review of Inherent Cracking Mechanisms in Concrete Structures: A State-of-the-Art Study, Journal of the Korea Concrete Institute, 36(3), 255-266.DOI
13 
Kang, S. B., Yun, H. D., Choi, W. (2025), Feasibility on diverse biochars as supplementary cementitious materials, Scientific Reports, 15(1), 40732DOI
14 
Kang, S.B., Kim, N.H., Kim, S.H., Choi, W. (2025), Evaluation of the Material Properties of Cementitious Mixtures Containing Biochar, Journal of the Korean Society for Advanced Composite Structures, 16(4), 1-7.DOI
15 
Kim, K., Lim, G., Son, M., Ryu, G., Koh, K., Kang, J. (2022), Effect of Concrete Containing the Biochar on Properties and Thermal Insulation Performance, Journal of the Korean Recycled Construction Resources Institute, 10(4), 428-434.Google Search
16 
KS F 2402 (2022), Standard Test Method for Concrete Slump, Seoul, South Korea: Korea Standards AssociationGoogle Search
17 
KS F 2403 (2019), Standard Test Method for Making Concrete Specimens, Seoul, South Korea: Korea Standards AssociationGoogle Search
18 
KS F 2421 (2016), Standard Test Method for Air Content of Fresh Concrete by The Pressure Method(Air Receiver Method), Seoul, South Korea: Korea Standards AssociationGoogle Search
19 
KS F 2424 (2025), Standard Test Method for Length Change of Mortar and Concrete, Seoul, South Korea: Korea Standards AssociationGoogle Search
20 
KS L 5122 (2024), Standard Guide for Evaluation of Alternative Supplementary Cementitious Materials (ASCM) for Use in Cement and Concret, Seoul, South Korea: Korea Standards AssociationGoogle Search
21 
Kwon, S.H., Kim, J.K. (2016), Understanding of Drying Shrinkage and Autogeneous Shrinkage in Concrete, Magazine of the Korea Concrete Institute, 28(6), 22-26.Google Search
22 
Lin, X., Li, W., Guo, Y., Dong, W., Castel, A., Wang, K. (2023), Biochar-cement concrete toward decarbonisation and sustainability for construction: characteristic, performance and perspective, Journal of Cleaner Production, 419, 138219DOI
23 
Lin, X., Nguyen, Q. D., Castel, A., Tam, V. W. (2026), Effect of biochar on the shrinkage deformation of ground granulated blast-furnace slag-cement mortars, Construction and Building Materials, 506, 144734DOI
24 
Ling, Y., Wu, X., Tan, K., Zou, Z. (2023), Effect of biochar dosage and fineness on the mechanical properties and durability of concrete, Materials, 16(7), 2809DOI
25 
Liu, B. D., Lv, W. J., Li, L., Li, P. F. (2014), Effect of moisture content on static compressive elasticity modulus of concrete, Construction and Building Materials, 69, 133-142.DOI
26 
Muthukrishnan, S., Gupta, S., Kua, H. W. (2019), Application of rice husk biochar and thermally treated low silica rice husk ash to improve physical properties of cement mortar, Theoretical and Applied Fracture Mechanics, 104, 102376DOI
27 
Park, S. S., Kwon, S. J., Song, H. W. (2011), Analysis technique for restrained shrinkage of concrete containing chlorides, Materials and Structures, 44(2), 475-486.DOI
28 
Patel, R., Stobbs, J., Acharya, B. (2025), Study of biochar in cementitious materials for developing green concrete composites, Scientific Reports, 15(1), 22192DOI
29 
Rasoolinejad, M., Rahimi-Aghdam, S., Bažant, Z. P. (2019), Prediction of autogenous shrinkage in concrete from material composition or strength calibrated by a large database, as update to model B4, Materials and Structures, 52(2), 33DOI
30 
Sirico, A., Belletti, B., Bernardi, P., Malcevschi, A., Pagliari, F., Fornoni, P., Moretti, E. (2022), Effects of biochar addition on long-term behavior of concrete, Theoretical and Applied Fracture Mechanics, 122, 103626DOI
31 
Spokas, K. A. (2010), Review of the stability of biochar in soils: predictability of O: C molar ratios, Carbon Management, 1(2), 289-303.DOI
32 
Suarez-Riera, D., Falliano, D., Carvajal, J. F., Celi, A. C. B., Ferro, G. A., Tulliani, J. M., Restuccia, L. (2023), The effect of different biochar on the mechanical properties of cement-pastes and mortars, Buildings, 13(12), 2900DOI
33 
Tang, S., Huang, D., He, Z. (2021), A review of autogenous shrinkage models of concrete, Journal of Building Engineering, 44, 103412DOI
34 
Volaity, S. S., Aylas-Paredes, B. K., Han, T., Huang, J., Sridhar, S., Sant, G., Neithalath, N. (2025), Towards decarbonization of cement industry: a critical review of electrification technologies for sustainable cement production, npj Materials Sustainability, 3(1), 23DOI
35 
Wang, D., Jantwal, A., Kaynak, E., Sas, G., Das, O. (2025), Promoting internal curing in concrete by replacing sand with sustainable biochar, Case Studies in Construction Materials, 22, e04542DOI
36 
Wu, F., Zhang, Q., Dong, S., Cai, Y., Yang, S., Xu, F., Jiang, J. (2025), Biochar modification enhances mechanical and durability properties of cement-based materials, Scientific Reports, 15(1), 22174DOI
37 
Zhou, Q., Wu, D., Ye, C., Du, J., Qiu, L., Jin, M., Wu, W. (2025), Carbon Sequestration Potential of Biochar-Modified Building Materials: A Critical Review, Journal of Building Engineering, 114687Google Search