Open Access

High Temperature Performance of Self-Compacting Concrete Containing Boron Active Belite Cement


Cite

Gonzalez, A., Parraguez, A., Corvalan, L., Correa, N., Castro, J., Stuckrath, C., & Gonzalez, M. (2020). Evaluation of Portland and Pozzolanic cement on the self-healing of mortars with calcium lactate and bacteria. Construction and Building Materials, 257, 119558. Gonzalez A. Parraguez A. Corvalan L. Correa N. Castro J. Stuckrath C. Gonzalez M. 2020 Evaluation of Portland and Pozzolanic cement on the self-healing of mortars with calcium lactate and bacteria Construction and Building Materials 257 119558 10.1016/j.conbuildmat.2020.119558 Search in Google Scholar

Aydın, A. C., Nasl, V. J., & Kotan, T. (2018). The synergic influence of nano-silica and carbon nano tube on self-compacting concrete. Journal of Building Engineering, 20, 467–475. Aydın A. C. Nasl V. J. Kotan T. 2018 The synergic influence of nano-silica and carbon nano tube on self-compacting concrete Journal of Building Engineering 20 467 475 10.1016/j.jobe.2018.08.013 Search in Google Scholar

Türkmen, İ., A. Öz, & A.C. Aydın, (2010). Characteristics of workability, strength, and ultrasonic pulse velocity of SCC containing zeolite and slag. Scientific Research and Essays, 5(15), 2055–2064. Türkmen İ. Öz A. Aydın A.C. 2010 Characteristics of workability, strength, and ultrasonic pulse velocity of SCC containing zeolite and slag Scientific Research and Essays 5 15 2055 2064 Search in Google Scholar

Mahmood, W., Mohammed, A., & Ghafor, K. (2019). Viscosity, yield stress and compressive strength of cement-based grout modified with polymers. Results in materials, 4, 100043. Mahmood W. Mohammed A. Ghafor K. 2019 Viscosity, yield stress and compressive strength of cement-based grout modified with polymers Results in materials 4 100043 10.1016/j.rinma.2019.100043 Search in Google Scholar

Mohammed, A., Rafiq, S., Mahmood, W., Noaman, R., Ghafor, K., Qadir, W., & Kadhum, Q. (2020). Characterization and modeling the flow behavior and compression strength of the cement paste modified with silica nano-size at different temperature conditions. Construction and Building Materials, 257, 119590. Mohammed A. Rafiq S. Mahmood W. Noaman R. Ghafor K. Qadir W. Kadhum Q. 2020 Characterization and modeling the flow behavior and compression strength of the cement paste modified with silica nano-size at different temperature conditions Construction and Building Materials 257 119590 10.1016/j.conbuildmat.2020.119590 Search in Google Scholar

Qadir, W., Ghafor, K., & Mohammed, A. (2019). Characterizing and modeling the mechanical properties of the cement mortar modified with fly ash for various water-to-cement ratios and curing times. Advances in Civil Engineering. Qadir W. Ghafor K. Mohammed A. 2019 Characterizing and modeling the mechanical properties of the cement mortar modified with fly ash for various water-to-cement ratios and curing times Advances in Civil Engineering 10.1155/2019/7013908 Search in Google Scholar

Sarwar, W., Ghafor, K., & Mohammed, A. (2019). Modeling the rheological properties with shear stress limit and compressive strength of ordinary Portland cement modified with polymers. Journal of Building Pathology and Rehabilitation, 4(1), 1–12. Sarwar W. Ghafor K. Mohammed A. 2019 Modeling the rheological properties with shear stress limit and compressive strength of ordinary Portland cement modified with polymers Journal of Building Pathology and Rehabilitation 4 1 1 12 10.1007/s41024-019-0064-6 Search in Google Scholar

Abdalla, L. B., Ghafor, K., & Mohammed, A. (2019). Testing and modeling the young age compressive strength for high workability concrete modified with PCE polymers. Results in Materials, 1, 100004. Abdalla L. B. Ghafor K. Mohammed A. 2019 Testing and modeling the young age compressive strength for high workability concrete modified with PCE polymers Results in Materials 1 100004 10.1016/j.rinma.2019.100004 Search in Google Scholar

Aydın, A. C., Öz, A., Polat, R., & Mindivan, H. (2015). Effects of the different atmospheric steam curing processes on the properties of self-compacting-concrete containing microsilica. Sadhana, 40(4), 1361–1371. Aydın A. C. Öz A. Polat R. Mindivan H. 2015 Effects of the different atmospheric steam curing processes on the properties of self-compacting-concrete containing microsilica Sadhana 40 4 1361 1371 10.1007/s12046-015-0338-x Search in Google Scholar

Kurt, M., Kotan, T., Gül, M. S., Gül, R., & Aydın, A. C. (2016). The effect of blast furnace slag on the self-compactability of pumice aggregate lightweight concrete. Sadhana, 41(2), 253–264. Kurt M. Kotan T. Gül M. S. Gül R. Aydın A. C. 2016 The effect of blast furnace slag on the self-compactability of pumice aggregate lightweight concrete Sadhana 41 2 253 264 10.1007/s12046-016-0462-2 Search in Google Scholar

Oğuz, E., & Aydın, A. C. (2003). Prediction of adsorption rate of phosphate removal from wastewater with gas concrete. International journal of environment and pollution, 19(6), 603–614. Oğuz E. Aydın A. C. 2003 Prediction of adsorption rate of phosphate removal from wastewater with gas concrete International journal of environment and pollution 19 6 603 614 10.1504/IJEP.2003.004345 Search in Google Scholar

Al-Martini, S., & Nehdi, M. (2007). Effect of chemical admixtures on rheology of cement paste at high temperature. Journal of ASTM international, 4(3), 1–17. Al-Martini S. Nehdi M. 2007 Effect of chemical admixtures on rheology of cement paste at high temperature Journal of ASTM international 4 3 1 17 Search in Google Scholar

Berriel, S. S., Ruiz, Y., Sánchez, I. R., Martirena, J. F., Rosa, E., & Habert, G. (2018). Introducing Low Carbon Cement in Cuba-A Life Cycle Sustainability Assessment Study. In Calcined Clays for Sustainable Concrete, 415-421. Berriel S. S. Ruiz Y. Sánchez I. R. Martirena J. F. Rosa E. Habert G. 2018 Introducing Low Carbon Cement in Cuba-A Life Cycle Sustainability Assessment Study In Calcined Clays for Sustainable Concrete 415421 10.1007/978-94-024-1207-9_67 Search in Google Scholar

Gökçe, H. S. (2019). High temperature resistance of boron active belite cement mortars containing fly ash. Journal of Cleaner Production, 211, 992–1000. Gökçe H. S. 2019 High temperature resistance of boron active belite cement mortars containing fly ash Journal of Cleaner Production 211 992 1000 10.1016/j.jclepro.2018.11.273 Search in Google Scholar

Kunt, K., Dur, F., Ertınmaz, B., Yıldırım, M., Derun, E. M., & Pişkin, S. (2015). Utilization of boron waste as an additive for cement production. CBU J Sci, 11(3), 383–389. Kunt K. Dur F. Ertınmaz B. Yıldırım M. Derun E. M. Pişkin S. 2015 Utilization of boron waste as an additive for cement production CBU J Sci 11 3 383 389 10.18466/cbujos.72356 Search in Google Scholar

Saglık, A., Sumer, O., Tunc, E., Kocabeyler, M. F., & Celik, R. S. (2008, May). The characteristics of Boron modified active belite cement and its utilization in mass and conventional concrete. In Proceedings of the 11th International Conference on Durability of Building Materials and Components, Istanbul, Turkey, 585–594. Saglık A. Sumer O. Tunc E. Kocabeyler M. F. Celik R. S. 2008 May). The characteristics of Boron modified active belite cement and its utilization in mass and conventional concrete. In Proceedings of the 11th International Conference on Durability of Building Materials and Components Istanbul, Turkey 585 594 Search in Google Scholar

Yeşilmen, S., & Gürbüz, A. (2012). Evaluation of boron ore in cement production. Materials and Manufacturing Processes, 27(11), 1245–1250. Yeşilmen S. Gürbüz A. 2012 Evaluation of boron ore in cement production Materials and Manufacturing Processes 27 11 1245 1250 10.1080/10426914.2012.675538 Search in Google Scholar

Bullerjahn, F., Zajac, M., Skocek, J., & Haha, M. B. (2019). The role of boron during the early hydration of belite ye’elimite ferrite cements. Construction and Building Materials, 215, 252-263. Bullerjahn F. Zajac M. Skocek J. Haha M. B. 2019 The role of boron during the early hydration of belite ye’elimite ferrite cements Construction and Building Materials 215 252263 10.1016/j.conbuildmat.2019.04.176 Search in Google Scholar

Celik, A., Yilmaz, K., Canpolat, O., Al-Mashhadani, M. M., Aygörmez, Y., & Uysal, M. (2018). High-temperature behavior and mechanical characteristics of boron waste additive metakaolin based geopolymer composites reinforced with synthetic fibers. Construction and Building Materials, 187, 1190–1203. Celik A. Yilmaz K. Canpolat O. Al-Mashhadani M. M. Aygörmez Y. Uysal M. 2018 High-temperature behavior and mechanical characteristics of boron waste additive metakaolin based geopolymer composites reinforced with synthetic fibers Construction and Building Materials 187 1190 1203 10.1016/j.conbuildmat.2018.08.062 Search in Google Scholar

Hasar, U. C., Simsek, O., & Aydın, A. C. (2010). Application of varying frequency amplitude only technique for electrical characterization of hardened cement based materials. Microwave and Optical Technology Letters, 52(4), 801–805. Hasar U. C. Simsek O. Aydın A. C. 2010 Application of varying frequency amplitude only technique for electrical characterization of hardened cement based materials Microwave and Optical Technology Letters 52 4 801 805 10.1002/mop.25057 Search in Google Scholar

Aydın, A. C., Aras, Ü. G. H., Kotan, T., & Öz, A. (2018). Effect of boron active belite cement on the compressive strength of concrete exposed to high temperatures. Journal of Civil, Construction and Environmental Engineering, 3(3), 47. Aydın A. C. Aras Ü. G. H. Kotan T. Öz A. 2018 Effect of boron active belite cement on the compressive strength of concrete exposed to high temperatures Journal of Civil, Construction and Environmental Engineering 3 3 47 10.11648/j.jccee.20180303.11 Search in Google Scholar

Güyagüler, T. (2001). The Boron Potential of Turkey. In 4th Industrial Minerals Symposium, 118–19. Güyagüler T. 2001 The Boron Potential of Turkey. In 4th Industrial Minerals Symposium 118 19 Search in Google Scholar

Smith, R. and R. McBroom, (1992). Boron compounds. Kirk Othmer Encyclopedia of Chemical Technology, 4th ed., John Wiley & Sons, 365. Smith R. McBroom R. 1992 Boron compounds. Kirk Othmer Encyclopedia of Chemical Technology 4th ed., John Wiley & Sons 365 Search in Google Scholar

Ozturk, M., Sevim, U. K., Akgol, O., Unal, E., & Karaaslan, M. (2020). Investigation of the mechanic, electromagnetic characteristics and shielding effectiveness of concrete with boron ores and boron containing wastes. Construction and Building Materials, 252, 119058. Ozturk M. Sevim U. K. Akgol O. Unal E. Karaaslan M. 2020 Investigation of the mechanic, electromagnetic characteristics and shielding effectiveness of concrete with boron ores and boron containing wastes Construction and Building Materials 252 119058 10.1016/j.conbuildmat.2020.119058 Search in Google Scholar

Kaman, D. Ö., Köroğlu, L., Ayas, E., & Güney, Y. (2017). The effect of heat-treated boron derivative waste at 600° C on the mechanical and microstructural properties of cement mortar. Construction and Building Materials, 154, 743–751. Kaman D. Ö. Köroğlu L. Ayas E. Güney Y. 2017 The effect of heat-treated boron derivative waste at 600° C on the mechanical and microstructural properties of cement mortar Construction and Building Materials 154 743 751 10.1016/j.conbuildmat.2017.07.209 Search in Google Scholar

Hewlett, P., & Liska, M. (Eds.). (2019). Lea’s chemistry of cement and concrete. Butterworth-Heinemann. Hewlett P. Liska M. (Eds.). 2019 Lea’s chemistry of cement and concrete Butterworth-Heinemann Search in Google Scholar

Liu, Y. J., & Zheng, Y. C. (2013). Active belite cement clinker produced with mineral waste. In Advanced Materials Research, 610, 2378–2385. Liu Y. J. Zheng Y. C. 2013 Active belite cement clinker produced with mineral waste In Advanced Materials Research 610 2378 2385 10.4028/www.scientific.net/AMR.610-613.2378 Search in Google Scholar

Afshoon, I., & Sharifi, Y. (2020). Utilization of micro copper slag in SCC subjected to high temperature. Journal of Building Engineering, 29, 101128. Afshoon I. Sharifi Y. 2020 Utilization of micro copper slag in SCC subjected to high temperature Journal of Building Engineering 29 101128 10.1016/j.jobe.2019.101128 Search in Google Scholar

Aydın, A. C., & Bayrak, B. (2019). The torsional behavior of reinforced self-compacting concrete beams. Advances in concrete construction, 8(3), 187–198. Aydın A. C. Bayrak B. 2019 The torsional behavior of reinforced self-compacting concrete beams Advances in concrete construction 8 3 187 198 Search in Google Scholar

Okamura, H., Ozawa, K., & Ouchi, M. (2000). Self-compacting concrete. Structural concrete, 1(1), 3–17. Okamura H. Ozawa K. Ouchi M. 2000 Self-compacting concrete Structural concrete 1 1 3 17 10.1680/stco.2000.1.1.3 Search in Google Scholar

Raisi, E. M., Amiri, J. V., & Davoodi, M. R. (2018). Mechanical performance of self-compacting concrete incorporating rice husk ash. Construction and Building Materials, 177, 148–157. Raisi E. M. Amiri J. V. Davoodi M. R. 2018 Mechanical performance of self-compacting concrete incorporating rice husk ash Construction and Building Materials 177 148 157 10.1016/j.conbuildmat.2018.05.053 Search in Google Scholar

Aydın, A. C., Alcan, H. G., Bayrak, B., Kılıç, M., & Maali, M. (2020). The mechanical behavior of thermally enhanced polypropylene concrete. Construction and Building Materials, 262, 120578. Aydın A. C. Alcan H. G. Bayrak B. Kılıç M. Maali M. 2020 The mechanical behavior of thermally enhanced polypropylene concrete Construction and Building Materials 262 120578 10.1016/j.conbuildmat.2020.120578 Search in Google Scholar

Khodair, Y., & Raza, M. (2017). Sustainable self-consolidating concrete using recycled asphalt pavement and high volume of supplementary cementitious materials. Construction and building materials, 131, 245-253. Khodair Y. Raza M. 2017 Sustainable self-consolidating concrete using recycled asphalt pavement and high volume of supplementary cementitious materials Construction and building materials 131 245253 10.1016/j.conbuildmat.2016.11.044 Search in Google Scholar

Aydın, A. C., Karakoccedil, M. B., Duuml, O. A., & Bayraktutan, M. S. (2010). Effect of low quality aggregates on the mechanical properties of lightweight concrete. Scientific Research and Essays, 5(10), 1133–1140. Aydın A. C. Karakoccedil M. B. Duuml O. A. Bayraktutan M. S. 2010 Effect of low quality aggregates on the mechanical properties of lightweight concrete Scientific Research and Essays 5 10 1133 1140 Search in Google Scholar

Memon, M. A., Memon, N. A., & Memon, B. A. (2020). Effect of Fly Ash and Un-crushed Coarse Aggregates on Characteristics of SCC. Civil Engineering Journal, 6(4), 693–701. Memon M. A. Memon N. A. Memon B. A. 2020 Effect of Fly Ash and Un-crushed Coarse Aggregates on Characteristics of SCC Civil Engineering Journal 6 4 693 701 10.28991/cej-2020-03091501 Search in Google Scholar

Kurt, M., Aydın, A. C., Gül, M. S., Gül, R., & Kotan, T. (2015). The effect of fly ash to self-compactability of pumice aggregate lightweight concrete. Sadhana, 40(4), 1343–1359. Kurt M. Aydın A. C. Gül M. S. Gül R. Kotan T. 2015 The effect of fly ash to self-compactability of pumice aggregate lightweight concrete Sadhana 40 4 1343 1359 10.1007/s12046-015-0337-y Search in Google Scholar

EN, T., 197-1 (2012). Cement–Part 1: Composition, specifications and conformity criteria for common cements. Ankara: Turkish Standard Institution. EN, T., 197-1 2012 Cement–Part 1: Composition, specifications and conformity criteria for common cements Ankara Turkish Standard Institution Search in Google Scholar

Haecker, C. J., Garboczi, E. J., Bullard, J. W., Bohn, R. B., Sun, Z., Shah, S. P., & Voigt, T. (2005). Modeling the linear elastic properties of Portland cement paste. Cement and Concrete Research, 35(10), 1948–1960. Haecker C. J. Garboczi E. J. Bullard J. W. Bohn R. B. Sun Z. Shah S. P. Voigt T. 2005 Modeling the linear elastic properties of Portland cement paste Cement and Concrete Research 35 10 1948 1960 10.1016/j.cemconres.2005.05.001 Search in Google Scholar

Zohdi, T. I., Monteiro, P. J. M., & Lamour, V. (2002). Extraction of elastic moduli from granular compacts. International journal of fracture, 115(3), 49–54. Zohdi T. I. Monteiro P. J. M. Lamour V. 2002 Extraction of elastic moduli from granular compacts International journal of fracture 115 3 49 54 10.1023/A:1022688407937 Search in Google Scholar

Kotsay, G., & Jaskulski, R. (2019). Belite cement as an ecological alternative to Portland cement–a review, Materials Structures Technology, 2(1), 70–76. Kotsay G. Jaskulski R. 2019 Belite cement as an ecological alternative to Portland cement–a review Materials Structures Technology 2 1 70 76 Search in Google Scholar

El-Didamony, H., Heikal, M., El-Sokkary, T. M., KhaliL, K., & Ahmed, I. A. (2014). Active belite–C2S and the hydration of calcium sulfoaluminates prepared from nano-materials. Ceramics–Silikáty, 58(2), 165–171. El-Didamony H. Heikal M. El-Sokkary T. M. KhaliL K. Ahmed I. A. 2014 Active belite–C2S and the hydration of calcium sulfoaluminates prepared from nano-materials Ceramics–Silikáty 58 2 165 171 Search in Google Scholar

TS EN 932, (2009). Aggregates for concrete. TSE, Ankara, Turkey. TS EN 932 2009 Aggregates for concrete TSE Ankara, Turkey Search in Google Scholar

TS802, (2016). Design of concrete mixes. TSE, Ankara, Turkey. TS802 2016 Design of concrete mixes TSE Ankara, Turkey Search in Google Scholar

Standard, A., C192/C192M. (2007). Standard Practice for Making and Curing Concrete Test Specimens in the Laboratory, ASTM International, West Conshohocken PA. Standard A. C192/C192M 2007 Standard Practice for Making and Curing Concrete Test Specimens in the Laboratory ASTM International West Conshohocken PA Search in Google Scholar

EN, B., 12390-3, (2002). Testing hardened concrete-Part 3: Compressive strength of test specimens. British Standards Institution. EN, B., 12390-3 2002 Testing hardened concrete-Part 3: Compressive strength of test specimens British Standards Institution Search in Google Scholar

Standard, A., C597-09 (2003). Standard Test Method for Pulse Velocity Through Concrete, ASTM International, West Conshohocken, PA. Standard A. C597-09 2003 Standard Test Method for Pulse Velocity Through Concrete ASTM International West Conshohocken, PA Search in Google Scholar

EN, B.S., 12390-5, (2009). Testing hardened concrete–Part 5: flexural strength of test specimens. British Standards Institution-BSI and CEN European Committee for Standardization. EN, B.S., 12390-5 2009 Testing hardened concrete–Part 5: flexural strength of test specimens British Standards Institution-BSI and CEN European Committee for Standardization Search in Google Scholar

EFNARC, S., (2002). Guidelines for self-compacting concrete. EFNARC Publication, London, UK, 1–32. EFNARC S. 2002 Guidelines for self-compacting concrete EFNARC Publication London, UK 1 32 Search in Google Scholar

Davraz, M. E. T. İ. N., Pehlivanoğlu, H. E., & Kilinçarslan, Ş. (2017). Influence of High Temperature on Concrete Produced from Portland Cement with Boron Additives. Acta Physica Polonica A, 132(3), 872–874. Davraz M. E. T. İ. N. Pehlivanoğlu H. E. Kilinçarslan Ş. 2017 Influence of High Temperature on Concrete Produced from Portland Cement with Boron Additives Acta Physica Polonica A 132 3 872 874 10.12693/APhysPolA.132.872 Search in Google Scholar

Liu, Y. J., & Zheng, Y. C. (2013). Mineral Waste Coupled with Boron Oxide for Producing Active Belite Cement Clinker. In Applied Mechanics and Materials, 405, 2564–2575. Liu Y. J. Zheng Y. C. 2013 Mineral Waste Coupled with Boron Oxide for Producing Active Belite Cement Clinker In Applied Mechanics and Materials 405 2564 2575 10.4028/www.scientific.net/AMM.405-408.2564 Search in Google Scholar

Aygörmez, Y., Al-mashhadani, M. M., & Canpolat, O. (2020). High-temperature effects on white cement-based slurry infiltrated fiber concrete with metakaolin and fly ash additive. Revista de la construcción, 19(2), 324–333. Aygörmez Y. Al-mashhadani M. M. Canpolat O. 2020 High-temperature effects on white cement-based slurry infiltrated fiber concrete with metakaolin and fly ash additive Revista de la construcción 19 2 324 333 10.7764/rdlc.19.2.324-333 Search in Google Scholar

Tang, J., Li, P., Chen, X., & Bai, Y. (2020). Experimental study of strength, pore structure and phase evolution characteristics of iron tailings cemented paste backfill under high-temperature. Cement Wapno Beton, 25(2), 78–94. Tang J. Li P. Chen X. Bai Y. 2020 Experimental study of strength, pore structure and phase evolution characteristics of iron tailings cemented paste backfill under high-temperature Cement Wapno Beton 25 2 78 94 10.32047/CWB.2020.25.2.1 Search in Google Scholar

Cao, M., Li, L., Yin, H., & Ming, X. (2019). Microstructure and strength of calcium carbonate (CaCO 3) whisker reinforced cement paste after exposed to high temperatures. Fire Technology, 55(6), 1983–2003. Cao M. Li L. Yin H. Ming X. 2019 Microstructure and strength of calcium carbonate (CaCO 3) whisker reinforced cement paste after exposed to high temperatures Fire Technology 55 6 1983 2003 10.1007/s10694-019-00839-3 Search in Google Scholar

Abid, M., Hou, X., Zheng, W., & Hussain, R. R. (2017). High temperature and residual properties of reactive powder concrete–A review. Construction and Building Materials, 147, 339–351. Abid M. Hou X. Zheng W. Hussain R. R. 2017 High temperature and residual properties of reactive powder concrete–A review Construction and Building Materials 147 339 351 10.1016/j.conbuildmat.2017.04.083 Search in Google Scholar

Öz, A., Bayrak, B., & Aydın, A. C. (2021). The effect of trio-fiber reinforcement on the properties of self-compacting fly ash concrete. Construction and Building Materials, 274, 121825. Öz A. Bayrak B. Aydın A. C. 2021 The effect of trio-fiber reinforcement on the properties of self-compacting fly ash concrete Construction and Building Materials 274 121825 10.1016/j.conbuildmat.2020.121825 Search in Google Scholar

Akyuncu, V., Uysal, M., Tanyildizi, H., & Sumer, M. (2019). Modeling the weight and length changes of the concrete exposed to sulfate using artificial neural network. Journal of Construction, 17(3), 337–353. Akyuncu V. Uysal M. Tanyildizi H. Sumer M. 2019 Modeling the weight and length changes of the concrete exposed to sulfate using artificial neural network Journal of Construction 17 3 337 353 10.7764/RDLC.17.3.337 Search in Google Scholar

eISSN:
1899-0142
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Architecture and Design, Architecture, Architects, Buildings