Concrete Repair Durability
Abstract
:1. Introduction
- Overall, in construction, the linkage between theory and practice is of great importance.
- In the field of repair, it may happen at any moment that practice triumphs over modern theory. It is sufficient to say that concrete repair has been performed since the introduction of concrete into construction practice (Eddystone lighthouse, 1756), but the standard for concrete repair was established in USA through the ACI-1999 Concrete Repair Manual, and in Europe in 2004–2013 according to the volumes of European Standards EN 1504.1-10.
2. Question about Repair Durability
3. Repair as a Strategy of Managing Structure Durability
- the use potential is always restored back to the original condition
- the destruction rate does not change as a result of the repair
- the fact that the repair occurs in time is not taken into account (the repair arrows are oriented upwards)
4. Repair Durability Determinants
- adhesion—high; it is the prerequisite for successful repair: the higher the adhesion, the higher the tolerances for any potential compatibility errors [43]
- shrinkage—low; excessive shrinkage [44] is often the cause of unsuccessful repairs
- tensile strength—high
- fatigue strength—high [19]
- chloride penetration—low
- susceptibility to carbonation—low
- resistance to aggressive environmental impact—high
- Young’s modulus,
- creep factor,
- coefficient of thermal expansion,
- water absorbability.
5. Estimating Repair Durability
6. Conclusions
- A successful repair means that there are “no cracks” occurring throughout the estimated service life. This means that the adhesion, fA in the repair joints should be above tensile strength of the concrete, ftC and internal shrinkage stress, σt. Therefore, we arrive at: fA ≥ ftR ≥ ftC ≥ σt that should be maintained throughout the expected service life.
- The adhesion between repair materials and concrete structures is a decisive factor of radical concrete repairs. The answer to ensuring a high level of adhesion is the presence of the polymer in repair materials. This means that if a repaired concrete is of a higher class, we would need a repair material with a higher polymer content.
- Concrete repairing impact on the repair durability is acting according to the two mechanisms:
- -
- Restore the original (or even improved) application potential,
and/or- -
- The reduction of the rate of destruction process.
- The distribution function of the aforementioned repaired structural damages indicates that the durability of 50% of these repairs is less than 10 years. These poor results relate to historical structures and past attempts at repairing them. The expected repair durability median value is 25 years. Successful repairs are not only dependent on observing best practices in a given period, but also on the skills of people executing the repairs. There is an opportunity to manage repair strategy in a proactive way to assure expected durability of repaired concrete.
Author Contributions
Funding
Conflicts of Interest
References
- EN-206:2013. Concrete–Specification, Performance, Production and Conformity; European Committee for Standardization (CEN): Belgium, Brussels, 2013. [Google Scholar]
- Kaszyńska, M.; Nowak, A. Effect of Material Quality on Life-time Performance of Concrete Structures. In Life Cycle Performance of Deteriorating Structures; Frangopol, D., Brühwiler, E., Faber, M., Adey, B., Eds.; American Society of Civil Engineers: Reston, VA, USA, 2003; pp. 141–147. [Google Scholar]
- ACI 201 2R-01. Guide to Durable Concrete. Available online: http://icemeltnow.com/reference/ACI_201.2R01_Guide_to_Durable_Concrete.pdf (accessed on 16 April 2020).
- Levy, M.; Salvadori, M. Why Buildings Fall Down; W.W. Norton&Company: New York, NY, USA, 1994. [Google Scholar]
- Czarnecki, L. Praktyczne reguły napraw konstrukcji z betonu, cz. 1. Builder 2018, 22, 50–52. [Google Scholar]
- Czarnecki, L. Wymagania zrównoważonego wykorzystania zasobów naturalnych w odniesieniu do napraw i ochrony konstrukcji betonowych. Mater. Bud. 2016, 11, 140–142. [Google Scholar]
- Brencich, A.; Gambarotta, L.; Ghia, A. History-based Assesment of the Dome of the Basilica of S. Maria of Carignano in Genoa. Int. J. Archit. Herit. 2014, 8, 690–717. [Google Scholar]
- de Jong, T. Available online: https://mininglibrarytreasures.wordpress.com/1-2/ (accessed on 28 September 2020).
- López, G.M. Poleni’s Manuscripts about the Dome of Saint Peter’s. In Proceedings of the Second International Congress on Construction History, Cambridge, UK, 29 March–2 April 2006; Dunkeld, M., Campbell, J., Louw, H., Tutton, M., Addis, B., Thorne, R., Eds.; Second International Congress on Construction History, Queens’ College, Cambridge University: Cambridge, UK, 2006; Volume 2. [Google Scholar]
- Como, M. Thrust evaluations of masonry domes. An application to the St. Peter’s dome. Int. J. Mason. Res. Innov. 2019, 4, 32–49. [Google Scholar] [CrossRef]
- Mainstone, R.J. The Dome of St Peter’s: Structural Aspects of its Design and Construction, and Inquires into its Stability. AA Files 1999, 39, 21–39. [Google Scholar]
- Mainstone, R.J. Saving the dome of St Peter’s. Constr. Hist. 2003, 19, 3–18. [Google Scholar]
- Shehu, R. Methods of Analysis and Innovative Strategies for Seismic Assessment and Retrofitting of Existing Masonry Structures. Ph.D. Thesis, Politechnico Milano, Milan, Italy, 2019. [Google Scholar]
- Whiteley, D.L.; Goethert, K.; Goodwin, F.; Golter, H.P.; Kennedy, J.; Wattenburg Komas, T.; Meyer, J.; Petree, M.; Smith, B.; Trepanier, S.; et al. Sustainability for Repairing and Maintaining Concrete and Masonry Buildings; ICRI Committee: Rosemont, IL, USA, 2014; Available online: http://www.icri.org/resource/collection/1023A08D-21D0-4AE9-8F9A-5C0A111D4AC9/ICRICommittee160-Sustainability_whitepaper.pdf (accessed on 17 July 2016).
- Neville, A.M. Why We Have Concrete Durability Problems? ACI Symp. Pap. 1987, 100, 21–30. [Google Scholar]
- Czarnecki, L.; Justnes, H. Sustainable and durable concrete. Cem. Lime Concr. 2012, 6, 341–360. [Google Scholar]
- Emmons, P.H.; Czarnecki, L.; McDonald, J.E.; Vaysburd, A.M. Durability of repair materials: Current practice and challenges. In Brittle Matrix Composites 6; Woodhead Publ.: Cambridge, UK; Warsaw, Poland, 2000; pp. 263–274. [Google Scholar]
- Czarnecki, L.; Vaysburd, A.M.; Mailvaganam, N.P.; Emmons, P.H.; McDonald, J.E. Repair and rehabilitation of structures-some random thoughts. Indian Concr. J. 2000, 74, 13–21. [Google Scholar]
- Suryawanshi, C.S. Structural Concrete Repair–Durability based revised approach is needed. Indian Concr. J. 2012, 2, 37–42. [Google Scholar]
- Vogel, T. Operational succesful, patient died–the assessment of structures as an enginnering (or a medical) problem. In Concrete Durability and Repair Technology; Dhir, R.K., McCarthy, M.J., Eds.; Thomas Telford Ltd.: Londyn, UK, 1999; pp. 549–562. [Google Scholar]
- Tilly, G. The Durability of Repaired Concrete Structures. In Failure, Distress and Repair in Civil and Structural Engineering, Proceedings of the IABSE Symposium: Weimar, Germany, 19–21 September 2007; IABSE: Zurich, Switzerland, 2007; pp. 146–147. [Google Scholar]
- Pigeon, M.; Saucier, F. Durability of Repaired Concrete Structure. In Advances in Concrete Technology; Malhotra, V.M., Ed.; CANMET-Publications: Athens, Greece, 1992; pp. 741–774. [Google Scholar]
- Bissonnette, B.; Garbacz, A.; Modjabi_Sangnier, F.; Courard, L.; Vaysburd, A.M. Quantitative approaches to concrete repair compatibility. Mater. Bud. 2017, 6, 58–61. [Google Scholar]
- Czarnecki, L. Repair Systems; Searching Towards Compatibility Measure; RILEM Workshop on Bonded Concrete Overlays: Stockholm, Sweden, 2004. [Google Scholar]
- Raupach, M.; Büttner, T. Concrete Repair to EN 1504. Diagnosis, Design, Principles and Practice; CRC Press: London, UK, 2014. [Google Scholar]
- Runkiewicz, L.; Sieczkowski, J. Ocena Bezpieczeństwa Istniejących Konstrukcji Żelbetowych. Poradnik; Instytut Techniki Budowlanej: Warszawa, Poland, 2019. [Google Scholar]
- Heyman, J. The Stone Skeleton: Structural Engineering of Masonry Architecture; Cambridge University Press: Cambridge, UK, 1995. [Google Scholar]
- EN 1504-9:2008. Products and Systems for the Protection and Repair of Concrete Structures-Definitions, Requirements, Quality Control and Evaluation of Conformity-Part 9: General Principles for the Use of Products and Systems; European Committee for Standardization (CEN): Belgium, Brussels, 2008. [Google Scholar]
- Frangopol, D.M. Bridge Health Monitoring and Life Prediction based on Reliability and Economy. In Proceedings of the International Workshop on the Present and Future in Health Monitoring, Bauhaus-University Weimar, Weimar, Germany, 3–6 September 2000; Schwesinger, P., Wittmann, F.H., Eds.; ADIFICATIO: Freiburg, Germany, 2000; pp. 9–20. [Google Scholar]
- Li, M. Multiscale Design for Durable Repair of Concrete Structures. Ph.D. Thesis, University of Michigan, Ann Arbor, MI, USA, 2009. [Google Scholar]
- Cusson, D. Durability of Reinforced Concrete Structures. In Failure, Distress and Repair of Concrete Structures; Woodhead Publishing: Cambridge, UK, 2009; pp. 296–321. [Google Scholar]
- Zanotti, C.; Talukdar, S.; Banthia, N. A State-of-the-Art. On Concrete Repairs and some Thoughts on Ways to Achieve Durability in Repairs. In Infrastructure Coprrosion and Durability–A Sustainability Study; Yang, L., Ed.; OMICS Group e-Books: Foster City, CA, USA, 2014; pp. 3–17. [Google Scholar]
- Zewdu, W.; Sistonen, T.E. Service Life Prediction of Repaired Structures using Concrete Recasting Method: State-of-the Art. Procedia Eng. 2013, 57, 1138–1144. [Google Scholar]
- Cabrera, J.G. Performance Properties of Concrete Repair Materials. Constr. Build. Mater. 1997, 11, 283–290. [Google Scholar]
- Emmons, P.H.; Vaysburd, A.M. Factors affecting the durability of concrete repair: The contrator’s viewpoint. Constr. Build. Mater. 1994, 8, 5–16. [Google Scholar] [CrossRef]
- Wang, B. Durability Evaluation of Cement-Based Repair Materials Used for Corrosion-Damaged Steel-Reinforced Concrete Structures. Master’s Thesis, Victoria University, Victoria, BC, Canada, 2018. [Google Scholar]
- Gebregziabhier, T.T. Durability Problems of 20th Century Reinforced Concrete Heritage Structures and their Restorations. Master’s Thesis, Catalonia Technical University, Barcelona, Spain, 2008. [Google Scholar]
- Decter, M.H. Durable Concrete Repair Importance of Compatibility and low Shrinkage. Constr. Build. Mater. 1997, 11, 267–273. [Google Scholar] [CrossRef]
- Parbhoo, P.; Lyimo, H.; Ekolu, S.O. Effect of Repair Materials on Durability Indexes of Concrete. In Concrete Repair Rehabilitation and Retrofiting III; Alexander, M.G., Ed.; Taylor&Francis: Cape Town, South Africa, 2012. [Google Scholar]
- Ueda, H.; Tamai, Y.; Kudo, T. Evaluation of the Durability of Cement-based Repair Materials. QR RTRI 2001, 52, 92–96. [Google Scholar] [CrossRef]
- Wang, R.; Zhang, L. Mechanism and Durability of Repair Systems in Polymer-Modified Cement Mortars. In Advances in Materials Science and Engineering; Hindawi Publishing: London, UK, 2015; pp. 1–8. [Google Scholar]
- Tilly, G.P.; Jacobs, J. Concrete Repairs: Performance in Service and Current Practice; Brepress: Garton, UK, 2007. [Google Scholar]
- Czarnecki, L. Polymer-Concrete Composites for the Repair of Concrete Structures. MATEC-ICCRRR 2018. [Google Scholar] [CrossRef]
- Flaga, F. The Influence of Concrete Shrinkage on Durability of Reinforced Structural Members. Bull. Pol. Acad. Sci. Technol. Sci. 2015, 63, 15–22. [Google Scholar] [CrossRef] [Green Version]
- Carino, N.J. Prediction of Cracking in Reinforced Concrete Structures; National Institute of Standards and Technology: Gaithersburg, MD, USA, 1995. [Google Scholar]
- Czarnecki, L. Adhesion in Interfaces of Building Materials–a Multi-scale Approach. Adv. Mater. Sci. Restor. Amsr 2007, 2, 21–28. [Google Scholar]
- Matthews, S.; Sharkikinen, M.; Morlidge, J. Achieving Durable Repaired Concrete Structures: Adopting a Performance-Based Intervention Strategy; Brepress: Garston, UK, 2007. [Google Scholar]
- Matthews, S. CONREPNET: Performance-based approach to the remediation of reinforced concrete structures: Achieving durable repaired concrete structures. J Build Apprais 2007, 3, 6–20. [Google Scholar] [CrossRef] [Green Version]
- Courard, L.; Bissonnette, B.; Garbacz, A. Fundamental approach for the concept of concrete repair compatibility. In Concrete Repair, Rehabilitation and Retrofitting IV, Proceedings of the ICCRRR-4, Leipzig, Germany, 5–7 October 2015; Dehn, F., Beushausen, H.-D., Alexander, M.G., Moyo, P., Eds.; Taylor & Francis Group: London, UK, 2016. [Google Scholar]
- Czarnecki, L.; Głodkowska, W.; Piątek, Z. Estimation of compatibility of polymer and polymer-cement composites with ordinary concrete under short-time load conditions. Arch. Civ. Eng. 2004, 50, 133–150. [Google Scholar]
- Luković, M.; Ye, G.; Van Breugel, K. Reliable concrete repair: A critical review. In Proceedings of the 14th International Conference Structural Faults and Repair, Edinburgh, UK, 3–5 July 2012; Available online: http://resolver.tudelft.nl/uuid:0bb2bee0-027c-4384-a1fc-c995c9bba1c0 (accessed on 28 September 2020).
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Czarnecki, L.; Geryło, R.; Kuczyński, K. Concrete Repair Durability. Materials 2020, 13, 4535. https://doi.org/10.3390/ma13204535
Czarnecki L, Geryło R, Kuczyński K. Concrete Repair Durability. Materials. 2020; 13(20):4535. https://doi.org/10.3390/ma13204535
Chicago/Turabian StyleCzarnecki, Lech, Robert Geryło, and Krzysztof Kuczyński. 2020. "Concrete Repair Durability" Materials 13, no. 20: 4535. https://doi.org/10.3390/ma13204535