Assessment of Crack Spacing and Crack Width Formulations in RC Elements Externally Strengthened with FRP Materials

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Title: Assessment of Crack Spacing and Crack Width Formulations in RC Elements Externally Strengthened with FRP Materials

Author(s): C. Barris, F. Ceroni, A. Perez Caldentey

Publication: Symposium Paper

Volume: 360

Issue:

Appears on pages(s): 691-708

Keywords: Reinforced Concrete (RC), Beams, Ties, Fiber Reinforced Polymer (FRP), EBR, NSM, Crack width, Crack spacing.

DOI: 10.14359/51740657

Date: 3/1/2024

Abstract:

Serviceability checks in Reinforced Concrete (RC) elements involves the verification of crack width mainly aimed to limit the exposure of the steel reinforcement to corrosion and chemical attack and, thus, improve durability. Classical approaches for assessing the crack width in RC elements provide the calculation of two terms: 1) the average crack spacing, and 2) the average difference between the strain in the steel reinforcement and in the concrete in tension referred to the average crack spacing. A similar approach can be assumed valid also for RC elements strengthened with externally bonded Fiber Reinforced Polymer (FRP) materials, taking into account the additional tension stiffening effect provided by the external reinforcement.

This paper presents the comparisons of some existing code formulations for predicting crack spacing and crack width in RC elements with the experimental results of a database collected by the Authors and concerning tests on RC beams and ties externally bonded with different types and configurations of FRP materials. The paper is mainly aimed to check the reliability of the existing equations provided by codes in order to address the future assessment of reliable design provisions for cracking verifications in RC elements strengthened with FRP materials. The comparisons have evidenced, indeed, some useful issues for the design provisions: 1) larger scatter in the predictions of crack width than in crack spacing and, in particular, for ties, 2) limited effect of shrinkage on crack width, 3) necessity of taking into account the external reinforcement in crack spacing formulations, 4) good reliability of mechanical models for calculating cracks width.

Related References:

1. CEB-FIP. 2023. fib Model code for concrete structures 2020, Final draft. 1256 pp.

2. CEN. 2004. Eurocode 2: Design of concrete structures - Part 1-1: General rules and rules for buildings.

3. ACI Committee 318. ACI CODE-318-19(22): Building code requirements for structural concrete and commentary. American Concrete Institute, Farmington Hills, Mich., USA.

4. Smith, S.T. and Teng, J.G. 2002. FRP-strengthened RC beams. I: Review of debonding strength models, Engineering Structures, 24(4), 385-395.

5. El-Hacha, R. and Rizkalla S. 2004. Near-surface-mounted fiber-reinforced polymer reinforcements for flexural strengthening of concrete structures, ACI Structural Journal, 101(5), 717-726.

6. Matthys, S. 2000. Structural behaviour and design of concrete members strengthened with externally bonded FRP reinforcement, Doctoral thesis, Ghent University.

7. Ceroni, F., Pecce M., and Matthys. S. 2004 Tension stiffening of RC ties Strengthened with externally bonded FRP Sheets, Journal of Composites for Constructions, 8(1): 22-32.

8. Ueda, T., Yamaguchi, R., Shoji, K., and Sato, Y. 2002. Study on behavior in tensión of reinforced concrete members strengthened by carbon fiber sheet, Journal of Composites for Construction, 6(3), 168-172.

9. Ceroni F., Pecce M. (2004): Modelling of Tension Stiffening behaviour of RC ties strengthened with FRP sheets, ASCE Journal of Composites for Constructions, 8 (6): 510-518.

10. Pérez Caldentey, A., Jones, T, Goodchild, C. 2022. Background document to clause 9.2.3(4). Consideration of shrinkage strain in cracking calculations

11. Pérez Caldentey, A., García, R., Gribniak, V., and Rimkus, A. 2020. Tension versus flexure: Reasons to modify the formulation of MC 2010 for cracking. Structural Concrete, 21, 2101-2123.

12. Pérez Caldentey, A 2022. Background documents to 9.2.3. Refined Control of cracking. In Background to EN 1992-1-1:2023

Eurocode 2 - Design of concrete structures - Part 1-1: General rules and rules for buildings, bridges and civil engineering structures.

13. fib bulletin 90. 2019. Externally applied FRP reinforcement for concrete structures, Technical Report, Task Group 5.1, ISSN 1562-3610.

14. Ceroni, F. and Pecce, M. 2009. Design provisions for crack spacing and width in RC elements externally bonded with FRP, Composites: Part B, 40, 17-28.

15. García, R. and Pérez Caldentey, A. 2022. Influence of casting position on cracking behavior of reinforced concrete elements and evaluation of latest proposal for EN-1992 and MC2020: Experimental study, Structural Concrete, 23, 2910-2927.

16. Al-Saawani, M.A., El-Sayed A.K., and Al-Negheimish, A.I. 2017. Crack width prediction for concrete beams strengthened with Carbon FRP composites, Journal of Composites for Construction, 21(5), 02017023.

17. Barris, C., Baena, M., Jahani, Y., Codina, A., and Torres, L. 2023. Experimental study on the flexural cracking and deformational behavior of reinforced concrete beams strengthened with NSM FRP reinforcement, Journal of Composites for Construction, 27(2), 04023006.

18. Ceroni, F. and Pecce, M. 2007. Cracking behaviour of RC beams externally strengthened with emerging materials, Construction and Building Materials, 21, 736-745.