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Original Articles

Strength and durability properties of recycled aggregate concrete blended with hydrated lime and brick powder

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Pages 1259-1283 | Received 10 Mar 2023, Accepted 08 Aug 2023, Published online: 21 Aug 2023

References

  • Abd El Fattah, A. M., & Al-Duais, I. N. A. (2022). Modeling of chloride binding capacity in cementitious matrices including supplementary cementitious materials. Crystals, 12(2), 153. https://doi.org/10.3390/cryst12020153
  • Abidine Tahar, Z. e., Ngo, T. T., Kadri, E. H., Bouvet, A., Debieb, F., & Aggoun, S. (2017). Effect of cement and admixture on the utilization of recycled aggregates in concrete. Construction and Building Materials, 149, 91–102. https://doi.org/10.1016/j.conbuildmat.2017.04.152
  • Ahmed Shaikh, F. U., Nath, P., Hosan, A., John, M., & Biswas, W. K. (2019). Sustainability assessment of recycled aggregates concrete mixes containing industrial by-products. Materials Today Sustainability, 5, 100013. https://doi.org/10.1016/j.mtsust.2019.100013
  • Al Martini, S., Sabouni, R., Khartabil, A., Wakjira, T. G., & Shahria Alam, M. (2023). Development and strength prediction of sustainable concrete having binary and ternary cementitious blends and incorporating recycled aggregates from demolished UAE buildings: Experimental and machine learning-based studies. Construction and Building Materials, 380, 131278. https://doi.org/10.1016/j.conbuildmat.2023.131278
  • Alhaji, M. A., & Sharma, P. K. (2023). Studies on strength characteristic of recycled aggregate concrete using supplementary cementitious materials and hybrid fibres. Lecture Notes in Civil Engineering, 285, 69–83. https://doi.org/10.1007/978-981-19-5077-3_6/COVER
  • Alhawat, M., Ashour, A., Yildirim, G., Aldemir, A., & Sahmaran, M. (2022). Properties of geopolymers sourced from construction and demolition waste: A review. Journal of Building Engineering, 50, 104104. https://doi.org/10.1016/j.jobe.2022.104104
  • Alnahhal, M. F., Alengaram, U. J., Jumaat, M. Z., Abutaha, F., Alqedra, M. A., & Nayaka, R. R. (2018). Assessment on engineering properties and CO2 emissions of recycled aggregate concrete incorporating waste products as supplements to Portland cement. Journal of Cleaner Production, 203, 822–835. https://doi.org/10.1016/j.jclepro.2018.08.292
  • Amin, M., Hakeem, I. Y., Zeyad, A. M., Tayeh, B. A., Maglad, A. M., & Agwa, I. S. (2022). Influence of recycled aggregates and carbon nanofibres on properties of ultra-high-performance concrete under elevated temperatures. Case Studies in Construction Materials, 16, e01063. https://doi.org/10.1016/j.cscm.2022.e01063
  • Arif, R., Khitab, A., Kırgız, M. S., Khan, R. B. N., Tayyab, S., Khan, R. A., Anwar, W., & Arshad, M. T. (2021). Experimental analysis on partial replacement of cement with brick powder in concrete. Case Studies in Construction Materials, 15, e00749. https://doi.org/10.1016/j.cscm.2021.e00749
  • Arora, S., & Singh, S. P. (2018). Probability of flexural fatigue failure of concrete made with recycled concrete aggregates. IOP Conference Series: Materials Science and Engineering, 431(10), 102004. https://doi.org/10.1088/1757-899X/431/10/102004
  • Bagheri, A., Zanganeh, H., Alizadeh, H., Shakerinia, M., & Marian, M. A. S. (2013). Comparing the performance of fine fly ash and silica fume in enhancing the properties of concretes containing fly ash. Construction and Building Materials, 47, 1402–1408. https://doi.org/10.1016/j.conbuildmat.2013.06.037
  • Bakr, M. A., & Singh, B. K. (2023). Effect of biomineralized Bacillus subtilis on recycled aggregate concrete containing blended hydrated lime and brick powder. Case Studies in Construction Materials, 18, e02137. https://doi.org/10.1016/j.cscm.2023.e02137
  • Benli, A. (2019). Mechanical and durability properties of self-compacting mortars containing binary and ternary mixes of fly ash and silica fume. Structural Concrete, 20(3), 1096–1108. https://doi.org/10.1002/suco.201800302
  • Benli, A., Karatas, M., & Anil Toprak, H. (2020). Mechanical characteristics of self-compacting mortars with raw and expanded vermiculite as partial cement replacement at elevated temperatures. Construction and Building Materials, 239, 117895. https://doi.org/10.1016/j.conbuildmat.2019.117895
  • Berndt, M. L. (2009). Properties of sustainable concrete containing fly ash, slag and recycled concrete aggregate. Construction and Building Materials, 23(7), 2606–2613. https://doi.org/10.1016/j.conbuildmat.2009.02.011
  • Bui, N. K., Satomi, T., & Takahashi, H. (2018). Effect of mineral admixtures on properties of recycled aggregate concrete at high temperature. Construction and Building Materials, 184, 361–373. https://doi.org/10.1016/j.conbuildmat.2018.06.237
  • Bureau of Indian Standards (1959). IS 516. Method of tests for strength of concrete.
  • Bureau of Indian Standards (1963a). IS 2386-1. Methods of test for aggregates for concrete, Part I: Particle size and shape.
  • Bureau of Indian Standards (1963b). IS 2386-3. Methods of test for aggregates for concrete, Part 3: Specific gravity, density, voids, absorption and bulking.
  • Bureau of Indian Standards (1963c). IS 2386-4. Methods of test for aggregates for concrete, Part 4: Mechanical properties.
  • Bureau of Indian Standards (1988a). IS 4031-3. Methods of physical tests for hydraulic cement, Part 3: Determination of soundness.
  • Bureau of Indian Standards (1988b). IS 4031-4. Methods of physical tests for hydraulic cement, Part 4: Determination of consistency of standard cement paste.
  • Bureau of Indian Standards (1988c). IS 4031-5. Methods of physical tests for hydraulic cement, Part 5: Determination of initial and final setting times.
  • Bureau of Indian Standards (1988d). IS 4031-6. Methods of physical tests for hydraulic cement, Part 6: Determination of compressive strength of hydraulic cement (other than masonry cement).
  • Bureau of Indian Standards (1996). IS 5516. Specification variable flow type air-permeability apparatus (Blaine type).
  • Bureau of Indian Standards (2009). IS 10262. Guidelines for concrete mix design proportioning.
  • Bureau of Indian Standards (2022a). IS 8112: Specification for 43 grade ordinary Portland cement: Bureau of Indian Standards: Free download, borrow, and streaming: Internet Archive. Retrieved October 8, 2022, from https://archive.org/details/gov.in.is.8112.2013
  • Bureau of Indian Standards (2022b). IS 383: Coarse and fine aggregate for concrete – Specification: Bureau of Indian Standards: Free download, borrow, and streaming: Internet Archive. Retrieved June 22, 2022, from https://archive.org/details/gov.in.is.383.2016
  • Bureau of Indian Standards (2022c). Standard test method for electrical indication of concrete’s ability to resist chloride ion penetration. Retrieved June 25, 2022, from https://www.astm.org/c1202-19.html
  • Bureau of Indian Standards (2022d). IS 13311-1: Method of non-destructive testing of concrete, Part 1: Ultrasonic pulse velocity: Bureau of Indian Standards: Free download, borrow, and streaming: Internet Archive. Retrieved June 26, 2022, from https://archive.org/details/gov.in.is.13311.1.1992
  • Bureau of Indian Standards (2022e). Standard test method for electrical indication of concrete’s ability to resist chloride ion penetration. Retrieved November 15, 2022, from https://www.astm.org/c1202-19.html
  • Cantero, B., Bravo, M., de Brito, J., Sáez del Bosque, I. F., & Medina, C. (2020). Mechanical behaviour of structural concrete with ground recycled concrete cement and mixed recycled aggregate. Journal of Cleaner Production, 275, 122913. https://doi.org/10.1016/j.jclepro.2020.122913
  • Chakradhara Rao, M. (2018). Properties of recycled aggregate and recycled aggregate concrete: Effect of parent concrete. Asian Journal of Civil Engineering, 19(1), 103–110. https://doi.org/10.1007/S42107-018-0011-X/METRICS
  • Chakradhara Rao, M. (2021). Influence of brick dust, stone dust, and recycled fine aggregate on properties of natural and recycled aggregate concrete. Structural Concrete, 22(S1), E105–E120. https://doi.org/10.1002/suco.202000103
  • Chao-Lung, H., Anh-Tuan, B. L., & Chun-Tsun, C. (2011). Effect of rice husk ash on the strength and durability characteristics of concrete. Construction and Building Materials, 25(9), 3768–3772. https://doi.org/10.1016/j.conbuildmat.2011.04.009
  • Chen, X., Zhang, D., Cheng, S., Xu, X., Zhao, C., Wang, X., Wu, Q., & Bai, X. (2022). Sustainable reuse of ceramic waste powder as a supplementary cementitious material in recycled aggregate concrete: Mechanical properties, durability and microstructure assessment. Journal of Building Engineering, 52, 104418. https://doi.org/10.1016/j.jobe.2022.104418
  • Cong, P., Cheng, Y., Ge, W., & Zhang, A. (2022). Mechanical, microstructure and reaction process of calcium carbide slag-waste red brick powder based alkali-activated materials (CWAAMs). Journal of Cleaner Production, 331, 129845. https://doi.org/10.1016/j.jclepro.2021.129845
  • Corinaldesi, V., & Moriconi, G. (2009). Influence of mineral additions on the performance of 100% recycled aggregate concrete. Construction and Building Materials, 23(8), 2869–2876. https://doi.org/10.1016/j.conbuildmat.2009.02.004
  • Da Silva, F. B., De Belie, N., Boon, N., & Verstraete, W. (2015). Production of non-axenic ureolytic spores for self-healing concrete applications. Construction and Building Materials, 93, 1034–1041. https://doi.org/10.1016/j.conbuildmat.2015.05.049
  • Danish, A., & Mosaberpanah, M. A. (2022). A review on recycled concrete aggregates (RCA) characteristics to promote RCA utilization in developing sustainable recycled aggregate concrete (RAC). European Journal of Environmental and Civil Engineering, 26(13), 6505–6539. https://doi.org/10.1080/19648189.2021.1946721
  • Dilbas, H., Şimşek, M., & Çakir, Ö. (2014). An investigation on mechanical and physical properties of recycled aggregate concrete (RAC) with and without silica fume. Construction and Building Materials, 61, 50–59. https://doi.org/10.1016/j.conbuildmat.2014.02.057
  • Dimitriou, G., Savva, P., & Petrou, M. F. (2018). Enhancing mechanical and durability properties of recycled aggregate concrete. Construction and Building Materials, 158, 228–235. https://doi.org/10.1016/j.conbuildmat.2017.09.137
  • Elsayed, M., Abd-Allah, S. R., Said, M., & El-Azim, A. A. (2023). Structural performance of recycled coarse aggregate concrete beams containing waste glass powder and waste aluminum fibers. Case Studies in Construction Materials, 18, e01751. https://doi.org/10.1016/j.cscm.2022.e01751
  • Fernando, A., Selvaranjan, K., Srikanth, G., & Gamage, J. C. P. H. (2022). Development of high strength recycled aggregate concrete-composite effects of fly ash, silica fume and rice husk ash as pozzolans. Materials and Structures, 55(185). https://doi.org/10.1617/s11527-022-02026-3
  • Gunasekara, C., Sandanayake, M., Zhou, Z., Law, D. W., & Setunge, S. (2020). Effect of nano-silica addition into high volume fly ash–hydrated lime blended concrete. Construction and Building Materials, 253, 119205. https://doi.org/10.1016/j.conbuildmat.2020.119205
  • Gupta, S., Jha, K. N., & Vyas, G. (2022). Construction and demolition waste causative factors in building projects: Survey of the Indian construction industry experiences. International Journal of Construction Management, 20, 1–11. https://doi.org/10.1080/15623599.2022.2111962
  • He, J., Bai, W., Zheng, W., He, J., & Sang, G. (2021). Influence of hydrated lime on mechanical and shrinkage properties of alkali-activated slag cement. Construction and Building Materials, 289, 123201. https://doi.org/10.1016/j.conbuildmat.2021.123201
  • Ismail, S., & Ramli, M. (2013). Engineering properties of treated recycled concrete aggregate (RCA) for structural applications. Construction and Building Materials, 44, 464–476. https://doi.org/10.1016/j.conbuildmat.2013.03.014
  • Jain, M. S., Sudarsan, J. S., & Parija, P. P. (2023). Managing construction and demolition waste using lean tools to achieve environmental sustainability: An Indian perspective. Environmental Science and Pollution Research International, 30(19), 57188–57200. https://doi.org/10.1007/S11356-023-26445-Z/FIGURES/10
  • Kapoor, K., & Bohroo, A. U. R. (2019). Study on the influence of attached mortar content on the properties of recycled concrete aggregate. Lecture Notes in Civil Engineering, 30, 337–347. https://doi.org/10.1007/978-981-13-6717-5_33/COVER
  • Kong, D., Lei, T., Zheng, J., Ma, C., Jiang, J., & Jiang, J. (2010). Effect and mechanism of surface-coating pozzalanics materials around aggregate on properties and ITZ microstructure of recycled aggregate concrete. Construction and Building Materials, 24(5), 701–708. https://doi.org/10.1016/j.conbuildmat.2009.10.038
  • Kou, S. C., & Poon, C. S. (2012). Enhancing the durability properties of concrete prepared with coarse recycled aggregate. Construction and Building Materials, 35, 69–76. https://doi.org/10.1016/j.conbuildmat.2012.02.032
  • Kou, S. C., & Poon, C. S. (2015). Effect of the quality of parent concrete on the properties of high performance recycled aggregate concrete. Construction and Building Materials, 77, 501–508. https://doi.org/10.1016/j.conbuildmat.2014.12.035
  • Kou, S. C., Poon, C. S., & Agrela, F. (2011). Comparisons of natural and recycled aggregate concretes prepared with the addition of different mineral admixtures. Cement and Concrete Composites. 33(8), 788–795. https://doi.org/10.1016/j.cemconcomp.2011.05.009
  • Likes, L., Markandeya, A., Haider, M. M., Bollinger, D., McCloy, J. S., & Nassiri, S. (2022). Recycled concrete and brick powders as supplements to Portland cement for more sustainable concrete. Journal of Cleaner Production, 364, 132651. https://doi.org/10.1016/j.jclepro.2022.132651
  • Limbachiya, M., Meddah, M. S., & Ouchagour, Y. (2011). Use of recycled concrete aggregate in fly-ash concrete. Construction and Building Materials, 27(1), 439–449. https://doi.org/10.1016/j.conbuildmat.2011.07.023
  • Liu, C., Zhang, W., Liu, H., Zhu, C., Wu, Y., He, C., & Wang, Z. (2022). Recycled aggregate concrete with the incorporation of rice husk ash: Mechanical properties and microstructure. Construction and Building Materials, 351, 128934. https://doi.org/10.1016/j.conbuildmat.2022.128934
  • Liu, H., Zhang, Y., Liu, J., Feng, Z., & Kong, S. (2020). Comparative study on chloride binding capacity of cement-fly ash system and cement-ground granulated blast furnace slag system with diethanol-isopropanolamine. Materials, 13(18), 4103. https://doi.org/10.3390/MA13184103
  • Lotfi, S., Eggimann, M., Wagner, E., Mróz, R., & Deja, J. (2015). Performance of recycled aggregate concrete based on a new concrete recycling technology. Construction and Building Materials, 95, 243–256. https://doi.org/10.1016/j.conbuildmat.2015.07.021
  • Majhi, R. K., Nayak, A. N., & Mukharjee, B. B. (2018). Development of sustainable concrete using recycled coarse aggregate and ground granulated blast furnace slag. Construction and Building Materials, 159, 417–430. https://doi.org/10.1016/j.conbuildmat.2017.10.118
  • Medina, C., Zhu, W., Howind, T., Sánchez De Rojas, M. I., & Frías, M. (2014). Influence of mixed recycled aggregate on the physical – mechanical properties of recycled concrete. Journal of Cleaner Production, 68, 216–225. https://doi.org/10.1016/j.jclepro.2014.01.002
  • Meena, A., Singh, N., & Singh, S. P. (2023). High-volume fly ash self-consolidating concrete with coal bottom ash and recycled concrete aggregates: Fresh, mechanical and microstructural properties. Journal of Building Engineering, 63, 105447. https://doi.org/10.1016/j.jobe.2022.105447
  • Momotaz, H., Rahman, M. M., Karim, M. R., Zhuge, Y., Ma, X., & Levett, P. (2023). Comparative study on properties of kerb concrete made from recycled materials and related carbon footprint. Journal of Building Engineering, 72, 106484. https://doi.org/10.1016/j.jobe.2023.106484
  • Muduli, R., & Mukharjee, B. B. (2019). Effect of incorporation of metakaolin and recycled coarse aggregate on properties of concrete. Journal of Cleaner Production, 209, 398–414. https://doi.org/10.1016/j.jclepro.2018.10.221
  • Muduli, R., & Mukharjee, B. B. (2020). Performance assessment of concrete incorporating recycled coarse aggregates and metakaolin: A systematic approach. Construction and Building Materials, 233, 117223. https://doi.org/10.1016/j.conbuildmat.2019.117223
  • Navrátilová, E., & Rovnaníková, P. (2016). Pozzolanic properties of brick powders and their effect on the properties of modified lime mortars. Construction and Building Materials, 120, 530–539. https://doi.org/10.1016/j.conbuildmat.2016.05.062
  • Nawaz, A., Chen, J., & Su, X. (2023). Exploring the trends in construction and demolition waste (C&DW) research: A scientometric analysis approach. Sustainable Energy Technologies and Assessments, 55, 102953. https://doi.org/10.1016/j.seta.2022.102953
  • Ouldkhaoua, Y., Benabed, B., Abousnina, R., Kadri, E. H., & Khatib, J. (2020). Effect of using metakaolin as supplementary cementitious material and recycled CRT funnel glass as fine aggregate on the durability of green self-compacting concrete. Construction and Building Materials, 235, 117802. https://doi.org/10.1016/j.conbuildmat.2019.117802
  • Padhi, R. S., Patra, R. K., Mukharjee, B. B., & Dey, T. (2018). Influence of incorporation of rice husk ash and coarse recycled concrete aggregates on properties of concrete. Construction and Building Materials, 173, 289–297. https://doi.org/10.1016/j.conbuildmat.2018.03.270
  • Past, V., Yaghmaeian, K., Naderi, M., & Naderi, N. (2023). Management of the construction and demolition waste (CDW) and determination of the best disposal alternative by FAHP (fuzzy analytic hierarchy process): A case study of Tehran, Iran. Journal of the Air & Waste Management Association, 73(4), 271–284. https://doi.org/10.1080/10962247.2023.2178542
  • Pavlů, T., Khanapur, N. V., Fořtová, K., Mariaková, D., Tripathi, B., Chandra, T., & Hájek, P. (2022). Design of performance-based concrete using sand reclaimed from construction and demolition waste–Comparative study of Czechia and India. Materials, 15(22), 7873. https://doi.org/10.3390/ma15227873
  • Poon, C. S., Shui, Z. H., & Lam, L. (2004). Effect of microstructure of ITZ on compressive strength of concrete prepared with recycled aggregates. Construction and Building Materials, 18(6), 461–468. https://doi.org/10.1016/j.conbuildmat.2004.03.005
  • Rais, M. S., & Khan, R. A. (2020). Strength and durability characteristics of binary blended recycled coarse aggregate concrete containing microsilica and metakaolin. Innovative Infrastructure Solutions, 5(3), 1–13. https://doi.org/10.1007/S41062-020-00365-0/METRICS
  • Sargam, Y., Melugiri Shankaramurthy, B., & Wang, K. (2020). Characterization of RCAs and their concrete using simple test methods. Journal of Sustainable Cement-Based Materials, 9(2), 61–77. https://doi.org/10.1080/21650373.2019.1692093
  • Shah, M. U., Usman, M., Hanif, M. U., Naseem, I., & Farooq, S. (2021). Utilization of solid waste from brick industry and hydrated lime in self-compacting cement pastes. Materials, 14(5), 1109. https://doi.org/10.3390/ma14051109
  • Shaikh, F. U. A. (2017). Mechanical properties of recycled aggregate concrete containing ternary blended cementitious materials. International Journal of Sustainable Built Environment, 6(2), 536–543. https://doi.org/10.1016/j.ijsbe.2017.10.005
  • Silva, C. M. M. A., Pereira, M. M. L., Capuzzo, V. M. S., & de Brito, J. (2023). Concrete produced with recycled concrete aggregate exposed to treatment methods. Case Studies in Construction Materials, 18, e01938. https://doi.org/10.1016/j.cscm.2023.e01938
  • Singh, N., & Singh, S. P. (2016). Carbonation and electrical resistance of self-compacting concrete made with recycled concrete aggregates and metakaolin. Construction and Building Materials, 121, 400–409. https://doi.org/10.1016/j.conbuildmat.2016.06.009
  • Singh, N., Singh, A., Ankur, N., Kumar, P., Kumar, M., & Singh, T. (2022). Reviewing the properties of recycled concrete aggregates and iron slag in concrete. Journal of Building Engineering, 60, 105150. https://doi.org/10.1016/j.jobe.2022.105150
  • Sinkhonde, D. (2023). Modeling and experimental studies on energy consumption and properties of concrete containing waste brick powder and waste tire rubber for sustainable construction. Cleaner Engineering and Technology, 13, 100631. https://doi.org/10.1016/j.clet.2023.100631
  • Sobuz, M. H. R., Datta, S. D., & Akid, A. S. M. (2022). Investigating the combined effect of aggregate size and sulphate attack on producing sustainable recycled aggregate concrete. Australian Journal of Civil Engineering, 22, 1–16. https://doi.org/10.1080/14488353.2022.2088646
  • Su-Cadirci, T. B., Calabria-Holley, J., Ince, C., & James, R. (2023). Freeze-thaw resistance of pozzolanic hydrated lime mortars. Construction and Building Materials, 394(June), 131993. https://doi.org/10.1016/j.conbuildmat.2023.131993
  • Tam, V. W. Y., & Tam, C. M. (2008). Diversifying two-stage mixing approach (TSMA) for recycled aggregate concrete: TSMAs and TSMAsc. Construction and Building Materials, 22(10), 2068–2077. https://doi.org/10.1016/j.conbuildmat.2007.07.024
  • Tong, S., Yuqi, Z., & Qiang, W. (2021). Recent advances in chemical admixtures for improving the workability of alkali-activated slag-based material systems. Construction and Building Materials, 272, 121647. https://doi.org/10.1016/j.conbuildmat.2020.121647
  • Wang, J., Che, Z., Zhang, K., Fan, Y., Niu, D., & Guan, X. (2023). Performance of recycled aggregate concrete with supplementary cementitious materials (fly ash, GBFS, silica fume, and metakaolin): Mechanical properties, pore structure, and water absorption. Construction and Building Materials, 368, 130455. https://doi.org/10.1016/j.conbuildmat.2023.130455
  • Wu, H., Liang, C., Wang, C., & Ma, Z. (2022). Properties of green mortar blended with waste concrete-brick powder at various components, replacement ratios and particle sizes. Construction and Building Materials, 342, 128050. https://doi.org/10.1016/j.conbuildmat.2022.128050
  • Wu, H., Zuo, J., Yuan, H., Zillante, G., & Wang, J. (2023). Investigation of the social and economic impacts of cross-regional mobility of construction and demolition waste in Australia. Resources, Conservation and Recycling, 190, 106814. https://doi.org/10.1016/j.resconrec.2022.106814
  • Xie, J., Huang, L., Guo, Y., Li, Z., Fang, C., Li, L., & Wang, J. (2018). Experimental study on the compressive and flexural behaviour of recycled aggregate concrete modified with silica fume and fibres. Construction and Building Materials, 178, 612–623. https://doi.org/10.1016/j.conbuildmat.2018.05.136
  • Yavuz Bayraktar, O., Salem Taher Eshtewı, S., Benli, A., Kaplan, G., Toklu, K., & Gunek, F. (2021). The impact of RCA and fly ash on the mechanical and durability properties of polypropylene fibre-reinforced concrete exposed to freeze-thaw cycles and MgSO4 with ANN modeling. Construction and Building Materials, 313, 125508. https://doi.org/10.1016/j.conbuildmat.2021.125508
  • Zega, C. J., & Di Maio, Á. A. (2011). Use of recycled fine aggregate in concretes with durable requirements. Waste Management, 31(11), 2336–2340. https://doi.org/10.1016/J.WASMAN.2011.06.011
  • Zhou, X., Zheng, K., Chen, L., Prateek, G., & Yuan, Q. (2023). An approach to improve the reactivity of basic oxygen furnace slag: Accelerated carbonation and the combined use of metakaolin. Construction and Building Materials, 379, 131218. https://doi.org/10.1016/j.conbuildmat.2023.131218

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