Research Article
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Year 2024, Volume: 9 Issue: 4, 327 - 334, 31.12.2024
https://doi.org/10.47481/jscmt.1608352

Abstract

References

  • 1. Stanton, T. E. (1942). Expansion of concrete through reaction between cement and aggregate. Trans Am Soc Civ Eng, 107(1), 54-84. [CrossRef]
  • 2. Daidai, T., Torii, K. (2008). A proposal for rehabilitation of ASR-affected bridge piers with fractured steel bars. Proc. of 13th Inter. Conf. on Alkali-aggregate Reaction in Concrete.
  • 3. Daidai, T., Andrade, O., Torii, K. (2012). The maintenance and rehabilitation techniques for ASR-affected bridge piers with fracture of steel bars. Proc. 14th Inter. Conf. on Alkali-aggregate Reaction in Concrete, Austin, Texas.
  • 4. Torii, K., Prasetia, I., Minato, T., Ishii, K. (2012). The feature of cracking in prestressed concrete bridge girders deteriorated by alkali-silica reaction. Proc. 14th Inter. Conf. on Alkali-aggregate Reaction in Concrete, Austin, Texas.
  • 5. Nomura, M., Komastubara, A., Fujimoto, K., Torii, K. (2013). Evaluation of maintenance methods for ASR-damaged structures in Hokuriku district, Japan. Proceedings, Third International Conference on Sustainable Construction Materials and Technologies, Kyoto, Japan.
  • 6. Luan, Y., Arasawa, T., Mutsuyoshi, H., & Kawana, R. (2021). Repair of alkali-silica reaction-induced cracks using bacteria: Crack recovery and other properties. ACI Mater J, 118(4), 133-142. [CrossRef]
  • 7. Bakker, J. D. (2008). Control of ASR related risks in the Netherlands. Proceedings of the 13th International Conference on Alkali-Aggregate Reaction in Concrete, Trondheim, Norway, (pp. 16-20).
  • 8. Multon, S., & Toutlemonde, F. (2010). Effect of moisture conditions and transfers on alkali silica reaction damaged structures. Cement Concr Res, 40(6), 924-934. [CrossRef]
  • 9. ASTM International. (2019). Standard specification for coal fly ash and raw or calcined natural pozzolan for use in concrete. ASTM-C618.
  • 10. Yüksel, C., Mardani-Aghabaglou, A., Beglarigale, A., Yazıcı, H., Ramyar, K., & Andiç-Çakır, Ö. (2017). Alkali-silica reaction expansions and the extent of alkali leaching in concretes containing basalt and waste glass as aggregate. Teknik Derg, 28(2), 7865-7882. [CrossRef]
  • 11. Yüksel, C., Mardani-Aghabaglou, A., Beglarigale, A., Yazıcı, H., Ramyar, K., & Andiç-Çakır, Ö. (2016). Influence of water/powder ratio and powder type on alkali-silica reactivity and transport properties of self-consolidating concrete. Mater Struct, 49, 289-299. [CrossRef]
  • 12. Andiç-Çakır, Ö. (2007). Investigation of test methods on alkali aggregate reaction, [Doctoral dissertation], Ege University.
  • 13. Beglarigale, A., Yazıcı, H. (2013). The effect of alkali-silica reaction on steel fiber-matrix bond characteristics of cement based mortars. Constr Build Mater, 47, 845-860. [CrossRef]
  • 14. Beglarigale, A., & Yazici, H. (2014). Mitigation of detrimental effects of alkali-silica reaction in cement-based composites by combination of steel microfibers and ground-granulated blast-furnace slag. J Mater Civ Engin, 26(12), 04014091. [CrossRef]
  • 15. Çopuroğlu, O., Andiç-Çakir, Ö., Broekmans, M. A., & Kühnel, R. (2009). Mineralogy, geochemistry and expansion testing of an alkali-reactive basalt from western Anatolia, Turkey. Mater Charact, 60(7), 756-766. [CrossRef]
  • 16. ASTM International. (2007). 1260 Standard test method for potential alkali reactivity of aggregates (Mortar-Bar Method). ASTM C1260-07.
  • 17. ASTM International. (2007). Standard test method for determining the potential alkali-silica reactivity of combinations of cementitious materials and aggregate (Accelerated Mortar-Bar Method). ASTM C1567-07.
  • 18. Turkish Standards Institution. (2012). Complementary Turkish Standard for the implementation of TS EN 206. TS 13515.
  • 19. ASTM International. (2020). Standard guide for reducing the risk of deleterious alkali-aggregate reaction in concrete. ASTM C1778-20.
  • 20. Bérubé, M. A., Duchesne, J., & Chouinard, D. (1995). Why the accelerated mortar bar method ASTM C1260 is reliable for evaluating the effectiveness of supplementary cementing materials in suppressing expansion due to alkali-silica reactivity. Cement Concrete Aggregates, 17(1), 26-34. [CrossRef]
  • 21. Shon, C. S., Sarkar, S. L., & Zollinger, D. G. (2004). Testing the effectiveness of Class C and Class F fly ash in controlling expansion due to alkali-silica reaction using modified ASTM C1260 test method. J Mater Civ Eng, 16(1), 20-27. [CrossRef]
  • 22. Johnson, R., & Shehata, M. H. (2016). The efficacy of accelerated test methods to evaluate alkali silica reactivity of recycled concrete aggregates. Constr Build Mater, 112, 518-528. [CrossRef]
  • 23. Piersanti, M., & Shehata, M. H. (2022). A study into the alkali-silica reactivity of recycled concrete aggregates and the role of the extent of damage in the source structures: Evaluation, accelerated testing, and preventive measures. Cem Concr Compos, 129, 104512. [CrossRef]
  • 24. Piersanti, M. (2015). Testing recycled concrete aggregate suffering different levels of alkali-silica reaction for use in new structures [Doctoral dissertation], Toronto Metropolitan University.
  • 25. Xu, G. J., Watt, D. F., & Hudec, P. P. (1995). Effectiveness of mineral admixtures in reducing ASR expansion. Cem Concr Res, 25(6), 1225-1236. [CrossRef]
  • 26. Kawabata, Y., & Yamada, K. (2015). Evaluation of alkalinity of pore solution based on the phase composition of cement hydrates with supplementary cementitious materials and its relation to suppressing ASR expansion. J Adv Concr Technol, 13(11), 538-553. [CrossRef]

Accelerated alkali-silica reaction after a seven-year ASR-dormancy period

Year 2024, Volume: 9 Issue: 4, 327 - 334, 31.12.2024
https://doi.org/10.47481/jscmt.1608352

Abstract

The ongoing alkali-silica reaction (ASR) in concrete can be halted by dryness, which is important for repairing ASR-suffered concrete structures. Drying of the concrete establishes an ASR-dormancy period until the end of the dryness. The residual expansion of such concrete after the ingress of water—the end of the dormancy period is a significant risk, especially for repair works. In this experimental study, the post-dormancy expansion of various mixtures prepared by eight different Portland cement and three different supplementary cementitious materials (SCM) were tested using an accelerated mortar bar test. After accelerated ASR ex- pansions, an ASR-dormancy period was established by keeping the specimens dry for seven years; the residual ASR expansions of the specimens were tested by the same accelerated method. The effect of pre-dormancy reactions on the residual expansions was discussed through two perspectives. The post-dormancy expansion behavior of mixtures without or with insufficient SCM indicated that expansions were primarily driven by the swelling of old gel, whereas in specimens with sufficient SCM, the dominant mechanism was new gel formation, a result of lower pre-dormancy expansions due to the ASR-mitigating effect of SCMs.
Keywords: Alkali silica reaction, cement, durability, supplementary cementitious materials

References

  • 1. Stanton, T. E. (1942). Expansion of concrete through reaction between cement and aggregate. Trans Am Soc Civ Eng, 107(1), 54-84. [CrossRef]
  • 2. Daidai, T., Torii, K. (2008). A proposal for rehabilitation of ASR-affected bridge piers with fractured steel bars. Proc. of 13th Inter. Conf. on Alkali-aggregate Reaction in Concrete.
  • 3. Daidai, T., Andrade, O., Torii, K. (2012). The maintenance and rehabilitation techniques for ASR-affected bridge piers with fracture of steel bars. Proc. 14th Inter. Conf. on Alkali-aggregate Reaction in Concrete, Austin, Texas.
  • 4. Torii, K., Prasetia, I., Minato, T., Ishii, K. (2012). The feature of cracking in prestressed concrete bridge girders deteriorated by alkali-silica reaction. Proc. 14th Inter. Conf. on Alkali-aggregate Reaction in Concrete, Austin, Texas.
  • 5. Nomura, M., Komastubara, A., Fujimoto, K., Torii, K. (2013). Evaluation of maintenance methods for ASR-damaged structures in Hokuriku district, Japan. Proceedings, Third International Conference on Sustainable Construction Materials and Technologies, Kyoto, Japan.
  • 6. Luan, Y., Arasawa, T., Mutsuyoshi, H., & Kawana, R. (2021). Repair of alkali-silica reaction-induced cracks using bacteria: Crack recovery and other properties. ACI Mater J, 118(4), 133-142. [CrossRef]
  • 7. Bakker, J. D. (2008). Control of ASR related risks in the Netherlands. Proceedings of the 13th International Conference on Alkali-Aggregate Reaction in Concrete, Trondheim, Norway, (pp. 16-20).
  • 8. Multon, S., & Toutlemonde, F. (2010). Effect of moisture conditions and transfers on alkali silica reaction damaged structures. Cement Concr Res, 40(6), 924-934. [CrossRef]
  • 9. ASTM International. (2019). Standard specification for coal fly ash and raw or calcined natural pozzolan for use in concrete. ASTM-C618.
  • 10. Yüksel, C., Mardani-Aghabaglou, A., Beglarigale, A., Yazıcı, H., Ramyar, K., & Andiç-Çakır, Ö. (2017). Alkali-silica reaction expansions and the extent of alkali leaching in concretes containing basalt and waste glass as aggregate. Teknik Derg, 28(2), 7865-7882. [CrossRef]
  • 11. Yüksel, C., Mardani-Aghabaglou, A., Beglarigale, A., Yazıcı, H., Ramyar, K., & Andiç-Çakır, Ö. (2016). Influence of water/powder ratio and powder type on alkali-silica reactivity and transport properties of self-consolidating concrete. Mater Struct, 49, 289-299. [CrossRef]
  • 12. Andiç-Çakır, Ö. (2007). Investigation of test methods on alkali aggregate reaction, [Doctoral dissertation], Ege University.
  • 13. Beglarigale, A., Yazıcı, H. (2013). The effect of alkali-silica reaction on steel fiber-matrix bond characteristics of cement based mortars. Constr Build Mater, 47, 845-860. [CrossRef]
  • 14. Beglarigale, A., & Yazici, H. (2014). Mitigation of detrimental effects of alkali-silica reaction in cement-based composites by combination of steel microfibers and ground-granulated blast-furnace slag. J Mater Civ Engin, 26(12), 04014091. [CrossRef]
  • 15. Çopuroğlu, O., Andiç-Çakir, Ö., Broekmans, M. A., & Kühnel, R. (2009). Mineralogy, geochemistry and expansion testing of an alkali-reactive basalt from western Anatolia, Turkey. Mater Charact, 60(7), 756-766. [CrossRef]
  • 16. ASTM International. (2007). 1260 Standard test method for potential alkali reactivity of aggregates (Mortar-Bar Method). ASTM C1260-07.
  • 17. ASTM International. (2007). Standard test method for determining the potential alkali-silica reactivity of combinations of cementitious materials and aggregate (Accelerated Mortar-Bar Method). ASTM C1567-07.
  • 18. Turkish Standards Institution. (2012). Complementary Turkish Standard for the implementation of TS EN 206. TS 13515.
  • 19. ASTM International. (2020). Standard guide for reducing the risk of deleterious alkali-aggregate reaction in concrete. ASTM C1778-20.
  • 20. Bérubé, M. A., Duchesne, J., & Chouinard, D. (1995). Why the accelerated mortar bar method ASTM C1260 is reliable for evaluating the effectiveness of supplementary cementing materials in suppressing expansion due to alkali-silica reactivity. Cement Concrete Aggregates, 17(1), 26-34. [CrossRef]
  • 21. Shon, C. S., Sarkar, S. L., & Zollinger, D. G. (2004). Testing the effectiveness of Class C and Class F fly ash in controlling expansion due to alkali-silica reaction using modified ASTM C1260 test method. J Mater Civ Eng, 16(1), 20-27. [CrossRef]
  • 22. Johnson, R., & Shehata, M. H. (2016). The efficacy of accelerated test methods to evaluate alkali silica reactivity of recycled concrete aggregates. Constr Build Mater, 112, 518-528. [CrossRef]
  • 23. Piersanti, M., & Shehata, M. H. (2022). A study into the alkali-silica reactivity of recycled concrete aggregates and the role of the extent of damage in the source structures: Evaluation, accelerated testing, and preventive measures. Cem Concr Compos, 129, 104512. [CrossRef]
  • 24. Piersanti, M. (2015). Testing recycled concrete aggregate suffering different levels of alkali-silica reaction for use in new structures [Doctoral dissertation], Toronto Metropolitan University.
  • 25. Xu, G. J., Watt, D. F., & Hudec, P. P. (1995). Effectiveness of mineral admixtures in reducing ASR expansion. Cem Concr Res, 25(6), 1225-1236. [CrossRef]
  • 26. Kawabata, Y., & Yamada, K. (2015). Evaluation of alkalinity of pore solution based on the phase composition of cement hydrates with supplementary cementitious materials and its relation to suppressing ASR expansion. J Adv Concr Technol, 13(11), 538-553. [CrossRef]
There are 26 citations in total.

Details

Primary Language English
Subjects Construction Materials
Journal Section Research Articles
Authors

Ahsanollah Beglarigale

Early Pub Date December 30, 2024
Publication Date December 31, 2024
Submission Date May 24, 2024
Acceptance Date November 25, 2024
Published in Issue Year 2024 Volume: 9 Issue: 4

Cite

APA Beglarigale, A. (2024). Accelerated alkali-silica reaction after a seven-year ASR-dormancy period. Journal of Sustainable Construction Materials and Technologies, 9(4), 327-334. https://doi.org/10.47481/jscmt.1608352

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