Numerical Modelling of Concrete-to-UHPC Bond Strength
Abstract
:1. Introduction
2. Materials and Methods
2.1. Material and Mixing
2.2. Quality Control and Curing
3. Bond Strength Test
4. Modelling Assumptions
5. Material Modelling Calibration
5.1. Compression Test
5.2. Direct Tension and Flexural Tests
6. Results of Bond Strength Modelling
7. Summary and Conclusions
- In ambient conditions and after 28-day, the compressive strength and tensile strength of UHPC reached 126 MPa (18 ksi) and 6.5 Mpa (0.95 kips), respectively, which nominates UHPC as an efficient repair material for damaged structures.
- The bi-surface shear test results showed an average bond strength of 2.9 MPa (420 psi) for specimens with smooth interface surfaces, whereas this value increased by 134% for specimens with rough interface surfaces by sandblasting with an average surface roughness between 1.2–2.2 mm (0.05–0.08 in.).
- The plastic-fracture model could predict the tensile and compressive behaviours of UHPC with acceptable accuracy, which makes it a practical tool for modelling structures, including UHPC.
- For modelling the interface between UHPC and normal strength concrete, the result from the bi-surface test could be directly used as the interface cohesion parameter; however, the only calibrated parameters were the normal stiffness Knn and tangential stiffness Ktt.
- Modelling of the interface using a fixed contact for the surface model cannot distinguish the effect of surface preparation on bond strength between normal strength concrete and UHPC, which might lead to erroneous numerical results.
- By comparing the fixed contact model and the zero thickness volume model with experimental results, the error of simulation for smooth and rough surface dropped from 182% and 25% to around 1%, respectively.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Azmee, N.M.; Shafiq, N. Ultra-high performance concrete: From fundamental to applications. Case Stud. Constr. Mater. 2018, 9, e00109. [Google Scholar] [CrossRef]
- Valikhani, A.; Azizinamini, A. Experimental Investigation of High-Performing Protective Shell Used for Retrofitting Bridge Elements. Presented at Transportation research board 97th Annual meeting, Washington, DC, USA, 7–11 January 2018. [Google Scholar]
- Graybeal, B.A. Material Property Characterization of Ultra-High Performance Concrete; Office of Infrastructure Research and Development: McLean, VA, USA, 2006.
- Russell, H.G.; Graybeal, B.A.; Russell, H.G. Ultra-High Performance Concrete: AS-of-the-Art Report for the Bridge Community; Office of Infrastructure Research and Development: McLean, VA, USA, 2013.
- De Larrard, F.; Sedran, T. Optimization of ultra-high-performance concrete by the use of a packing model. Cem. Concr. Res. 1994, 24, 997–1009. [Google Scholar] [CrossRef]
- Graybeal, B. Ultra-High Performance Concrete; FHWA-HRT-11-038; U.S. Department of Transpotation Federal Highway Administration: McLean, VA, USA, 2011.
- Richard, P.; Cheyrezy, M. Composition of reactive powder concretes. Cem. Concr. Res. 1995, 25, 1501–1511. [Google Scholar] [CrossRef]
- Yu, R.; Przemek, S.; Brouwers, H.J.H. Mix design and properties assessment of ultra-high performance fibre reinforced concrete (UHPFRC). Cem. Concr. Res. 2014, 56, 29–39. [Google Scholar] [CrossRef]
- Lohaus, L.; Peter, R. Robustness of UHPC-A new approach for mixture proportioning. In Proceedings of the 2nd International Symposium on Ultra High Performance Concrete, Kassel, Germany, 5–7 March 2008; pp. 113–120. [Google Scholar]
- Fennis, S.A.; Walraven, J.C.; Den Uijl, J.A. The use of particle packing models to design ecological concrete. Heron 2009, 54, 185–204. [Google Scholar]
- Geisenhansluke, C. Methods for modeling and calculation of high density packing for cement and filler in UHPC. In Proceedings of the International Symposium on Ultra-High Performance Concrete, Kassel, Germany, 13–15 September 2004; pp. 303–312. [Google Scholar]
- Schmidt, M.; Ekkehard, F. Ultra-high-performance concrete: Research, development and application in Europe. ACI Spec. Publ. 2005, 228, 51–78. [Google Scholar]
- Ghafari, E.; Hugo, C.; Eduardo, J. Critical review on eco-efficient ultra-high performance concrete enhanced with nano-materials. Constr. Build. Mater. 2015, 101, 201–208. [Google Scholar] [CrossRef]
- Vernet, C.P. Ultra-durable concretes: Structure at the micro-and nanoscale. MRS Bull. 2004, 29, 324–327. [Google Scholar] [CrossRef]
- Wille, K.; Antoine, N.E.; Parra-Montesinos, G.J. Ultra-High Performance Concrete with Compressive Strength Exceeding 150 MPa (22 ksi): A Simpler Way. ACI Mater. J. 2011, 108, 1. [Google Scholar]
- Shi, C.; Wu, Z.; Xiao, J.; Wang, D.; Huang, Z.; Fang, Z. A review on ultra-high performance concrete: Part I. Raw materials and mixture design. Constr. Build. Mater. 2015, 101, 741–751. [Google Scholar] [CrossRef]
- Abbas, S.; Soliman, A.M.; Nehdi, M.L. Exploring mechanical and durability properties of ultra-high performance concrete incorporating various steel fiber lengths and dosages. Constr. Build. Mater. 2015, 75, 429–441. [Google Scholar] [CrossRef]
- Schmidt, M.; Ekkehard, F.; Geisenhanslüke, C. Ultra high performance concrete (UHPC). In Proceedings of the International Symposium on Ultra High Performance Concrete, Kassel, Germany, 13–15 September 2004. [Google Scholar]
- Talebinejad, I.; Seyed, A.B.; Amirhossein, I.; Mohammad, S. Optimizing mix proportions of normal weight reactive powder concrete with strengths of 200–350 MPa. In Proceedings of the International Symposium on UHPC, Kassel, Germany, 13–15 September 2004; pp. 133–141. [Google Scholar]
- Ghoddousi, P.; Armin, M.B.; Esmail, S.; Mohammad, A. Prediction of Plastic Shrinkage Cracking of Self-Compacting Concrete. Adv. Civ. Eng. 2019, 2019, 1–7. [Google Scholar] [CrossRef] [Green Version]
- Yazıcı, H. The effect of curing conditions on compressive strength of ultra-high strength concrete with high volume mineral admixtures. Build. Environ. 2007, 42, 2083–2089. [Google Scholar] [CrossRef]
- Abbas, S.M.L.N.; Saleem, M.A. Ultra-high performance concrete: Mechanical performance, durability, sustainability and implementation challenges. Int. J. Concr. Struct. Mater. 2016, 10, 271. [Google Scholar] [CrossRef] [Green Version]
- Nicolaides, D.; Antonios, K.; Michael, F.P.; Marios, S. Mix design, mechanical properties and impact resistance of UHPFRCCs. In Proceedings of the 3rd International Conference on Concrete Repair, Rehabilitation and Retrofitting, ICCRRR-3, Alexander, MG, USA, 3–5 September 2012; pp. 181–186. [Google Scholar]
- Gao, R.; Liu, Z.M.; Zhang, L.Q.; Stroeven, P. Static properties of plain reactive powder concrete beams. Key Eng. Mater. 2006, 302, 521–527. [Google Scholar] [CrossRef]
- Wen-yu, J.; Ming-zhe, A.; Gui-ping, Y.; Jun-min, W. Study on reactive powder concrete used in the sidewalk system of the Qinghai-Tibet railway bridge. In Proceedings of the International Workshop on Sustainable Development and Concrete Technology, Beijing, China, 20–21 May 2004; pp. 333–338. [Google Scholar]
- Rougeau, P.; Béatrice, B. Ultra high performance concrete with ultrafine particles other than silica fume. In Proceedings of the International Symposium on Ultra High Performance Concrete, Kassel, Germany, 13–15 September 2004; Volume 932, pp. 213–225. [Google Scholar]
- Tue, N.V.; Ma, J.; Marko, O. Influence of addition method of superplasticizer on the properties of fresh UHPC. In Proceedings of the 2nd International Symposium on Ultra-High Performance Concrete, Kassel, Germany, 5–7 March 2008; pp. 93–100. [Google Scholar]
- Schmidt, M.; Ekkehard, F.; Christoph, G.; Susanne, F.; Siemon, P. Ultra-High Performance Concrete and Nanotechnology in Construction. In Proceedings of the Hipermat 2012 3rd International Symposium on UHPC and Nanotechnology for High Performance Construction Materials, Kassel, Germany, 7–9 March 2012. [Google Scholar]
- Droll, K. Influence of additions on ultra high performance concretes–grain size optimisation. In Proceedings of the International Symposium on Ultra-High Performance Concrete, Kassel, Germany, 13–15 September 2004; Volume 915, pp. 285–301. [Google Scholar]
- Xing, F.; Li, D.H.; Zheng, L.C.; Liang, P.D. Study on preparation technique for low-cost green reactive powder concrete. Key Eng. Mater. 2006, 302, 405–410. [Google Scholar] [CrossRef]
- Chan, Y.-W.; Chu, S.-H. Effect of silica fume on steel fiber bond characteristics in reactive powder concrete. Cem. Concr. Res. 2004, 34, 1167–1172. [Google Scholar] [CrossRef]
- Matte, V.; Moranville, M. Durability of reactive powder composites influence of silica fume on the leaching properties of very low water/binder pastes. Cem. Concr. Compos. 1999, 21, 1–9. [Google Scholar] [CrossRef]
- Bayard, O.; Plé, O. Fracture mechanics of reactive powder concrete: Material modelling and experimental investigations. Eng. Fract. Mech. 2003, 70, 839–851. [Google Scholar] [CrossRef]
- Momayez, A.; Ehsani, M.R.; Ramezanianpour, A.A.; Rajaie, H. Comparison of methods for evaluating bond strength between concrete substrate and repair materials. Cem. Concr. Res. 2005, 35, 748–757. [Google Scholar] [CrossRef]
- Jaberi, J.; Alireza, V.; Islam, M.; Atorod, A. Service Life Design of Deck Closure Joints in ABC Bridges: Guidelines and Practical Implementation. Front. Built Environ. 2019, 5, 152. [Google Scholar] [CrossRef]
- Graybeal, B. Design and Construction of Field-Cast UHPC Connections; Federal Highway Administration: Washington, DC, USA, 2014.
- Haber, Z.B.; Jose, F.M.; Igor, D.L.V.; Benjamin, A.G. Bond characterization of UHPC overlays for concrete bridge decks: Laboratory and field testing. Constr. Build. Mater. 2018, 190, 1056–1068. [Google Scholar] [CrossRef]
- Khayat, K.H.; Mahdi, V. Design of Ultra High Performance Concrete as an Overlay in Pavements and Bridge Decks; Missouri University of Science and Technology, Center for Transportation Infrastructure and Safety: Rolla, MO, USA, 2014. [Google Scholar]
- Valikhani, A.; Azadeh, J.J.; Islam, M.M.; Atorod, A. Experimental evaluation of concrete-to-UHPC bond strength with correlation to surface roughness for repair application. Constr. Build. Mater. 2020, 238, 117753. [Google Scholar] [CrossRef]
- Tayeh, B.A.; Abu Bakar, B.H.; Megat Johari, M.A.; Yen, L.O. Mechanical and permeability properties of the interface between normal concrete substrate and ultra high performance fiber concrete overlay. Constr. Build. Mater. 2012, 36, 538–548. [Google Scholar] [CrossRef]
- Harris, D.K.; Jayeeta, S.; Theresa, M.A. Characterization of interface bond of ultra-high-performance concrete bridge deck overlays. Transp. Res. Rec. 2011, 2240, 40–49. [Google Scholar] [CrossRef]
- Banta, T.E. Horizontal Shear Transfer between Ultra High Performance Concrete and Lightweight Concrete. Ph.D. Thesis, Virginia Tech, Blacksburg, VA, USA, 2005. [Google Scholar]
- Crane, C.K. Shear and Shear Friction of Ultra-High Performance Concrete Bridge Girders. Ph.D. Thesis, Georgia Institute of Technology, Atlanta, GA, USA, 2010. [Google Scholar]
- Aaleti, S.; Sri, S. Quantifying bonding characteristics between UHPC and normal-strength concrete for bridge deck application. J. Bridge Eng. 2019, 24, 04019041. [Google Scholar] [CrossRef] [Green Version]
- Harris, D.K.; Miguel, A.C.M.; Amir, G.; Theresa, M.A.; Sarah, V.R. The challenges related to interface bond characterization of ultra-high-performance concrete with implications for bridge rehabilitation practices. Adv. Civ. Eng. Mater. 2015, 4, 75–101. [Google Scholar] [CrossRef]
- Azizinamini, A.; Sheharyar, R.; Sadeghnejad, A. Enhancing resiliency and delivery of bridge elements using ultra-high performance concrete as formwork. Transp. Res. Rec. 2019, 2673, 443–453. [Google Scholar] [CrossRef]
- Valikhani, A.; Azadeh, J.J.; Azizinamini, A. Retrofitting Damaged Bridge Elements Using Thin Ultra High Performance Shell Elements. Presented at Transportation Research Board 96th Annual Meeting, Washington, DC, USA, 8–12 January 2017. [Google Scholar]
- ASTM International. C1437-15 Standard Test Method for Flow of Hydraulic Cement Mortar; ASTM International: West Conshohocken, PA, USA, 2015. [Google Scholar]
- Cortes, D.D.; Kim, H.-K.; Palomino, A.M.; Santamarina, J.C. Rheological and mechanical properties of mortars prepared with natural and manufactured sands. Cem. Concr. Res. 2008, 38, 1142–1147. [Google Scholar] [CrossRef]
- ASTM International. C1856/C1856M-17 Standard Practice for Fabricating and Testing Specimens of Ultra-High Performance Concrete; ASTM International: West Conshohocken, PA, USA, 2017. [Google Scholar]
- Habel, K.; Charron, J.-P.; Shadi, B.; Douglas, R.H.; Paul, G.; Bruno, M. Ultra-high performance fibre reinforced concrete mix design in central Canada. Can. J. Civ. Eng. 2008, 35, 217–224. [Google Scholar] [CrossRef]
- Park, J.-S.; Young, J.K.; Jeong, R.C.; Jeon, S.-J. Early-age strength of ultra-high performance concrete in various curing conditions. Materials 2015, 8, 5537–5553. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Jahromi, A.J.; Alireza, V.; Azizinamini, A. Toward Development of Best Practices for Closure Joints in ABC Projects; paper numbers 18-05330, Association Number: 01657436; Transportation Research Board 97th Annual Meeting: Washington, DC, USA, January 2018. [Google Scholar]
- Jahromi, A.J.; Morgan, D.; Alireza, V.; Azizinamini, A. Assessing Structural Integrity of Closure Pours in ABC Projects; paper numbers 18-05307, Association Number: 01657435; Transportation Research Board 97th Annual Meeting: Washington, DC, USA, January 2018. [Google Scholar]
- Zhang, Y.; Shukun, C.; Zhu, Y.; Liang, F.; Shao, X. Flexural responses of steel-UHPC composite beams under hogging moment. Eng. Struct. 2020, 206, 110134. [Google Scholar] [CrossRef]
- Momayez, A.; Ramezanianpour, A.A.; Rajaie, H.; Ehsani, M.R. Bi-surface shear test for evaluating bond between existing and new concrete. Mater. J. 2004, 101, 99–106. [Google Scholar]
- Lee, H.S.; Jang, H.-O.; Cho, K.-H. Evaluation of bonding shear performance of ultra-high-performance concrete with increase in delay in formation of cold joints. Materials 2016, 9, 362. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- ASTM International. C39/C39M-18 Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens; ASTM International: West Conshohocken, PA, USA, 2018. [Google Scholar]
- Verre, S.; Luciano, O. Numerical modelling approaches of FRCMs/SRG confined masonry columns. Front. Built Environ. 2019, 5, 143. [Google Scholar]
- Menetrey, P.; Willam, K.J. Triaxial failure criterion for concrete and its generalization. Struct. J. 1995, 92, 311–318. [Google Scholar]
- Cervenka, V.; Jan, C.; Radomir, P. ATENA—A tool for engineering analysis of fracture in concrete. Sadhana 2002, 27, 485–492. [Google Scholar] [CrossRef]
- Cervenka, V.; Libor, J.; Jan, C. ATENA program documentation part 1 theory. Cervenka Consult. Prague 2007, 231, 43–65. [Google Scholar]
- Sajdlová, T.; Kabele, P. Finite Element Analyasis of Test Configuration Identification of Interface Parameters in Layered FRCC Systems; High performance Fiber Reinforced Cement Composits (HPFRCC7): Stuttgart, Germany, 2015. [Google Scholar]
- ASTM International. C109/C109M-13 Standard Test Method for Compressive Strength of Hydraulic Cement Mortars (Using 2-in. or [50-mm] Cube Specimens); ASTM International: West Conshohocken, PA, USA, 2013. [Google Scholar]
- Li, C.; Zheng, F.; Ke, L.; Pan, R.; Nie, J. Experimental Study on Shear Performance of Cast-In-Place Ultra-High Performance Concrete Structures. Materials 2019, 12, 3254. [Google Scholar] [CrossRef] [Green Version]
- Aboukifa, M.; Mohamed, A.M.; Ahmad, M.I.; Negar, N. Durable UHPC Columns with High-Strength Steel; Accelerated Bridge Construction University Transportation Center (ABC-UTC), University of Nevada Reno: Reno, NV, USA, 2019. [Google Scholar]
- Khosravani, M.R.; Peter, W.; Dirk, F.; Kerstin, W. Dynamic fracture investigations of ultra-high performance concrete by spalling tests. Eng. Struct. 2019, 201, 109844. [Google Scholar] [CrossRef]
- Fan, L.; Weina, M.; Le, T.; Kamal, H.K. Effects of lightweight sand and steel fiber contents on the corrosion performance of steel rebar embedded in UHPC. Constr. Build. Mater. 2020, 238, 117709. [Google Scholar] [CrossRef]
- Tazarv, M.; Saiid, M. Design and construction of UHPC-filled duct connections for precast bridge columns in high seismic zones. Struct. Infrastruct. Eng. 2017, 13, 743–753. [Google Scholar] [CrossRef]
- Haber, Z.B.; Benjamin, A.G. Lap-spliced rebar connections with UHPC closures. J. Bridge Eng. 2018, 23, 04018028. [Google Scholar] [CrossRef]
- AASHTO T132. Standard Method of Test for Tensile Strength of Hydraulic Cement Mortars; America Association of State Highway and Transportation Officials (AASHTO): Washington, DC, USA, 2013. [Google Scholar]
- ASTM International. Standard Test Method for Flexural Toughness and First-Crack Strength of Fiber-Reinforced Concrete (Using Beam with Third-Point Loading), ASTM C1018; ASTM International: West Conshohocken, PA, USA, 1997. [Google Scholar]
- AASHTO. LRFD Bridge Design Specifications, Part I: Sections 1–6, 8th ed.; American Association of State Highway and Transportation Officials: Washington, DC, USA, 2017. [Google Scholar]
Constituent | Portion Based on Each Premix Bag (Kg) | Percentage by Weight (%) | |
---|---|---|---|
Ductal® JS1000 | Portland cement | 7.43 | 28.5 |
Fine sand | 10.64 | 40.8 | |
Ground quartz | 2.2 | 8.4 | |
Silica fume | 2.41 | 9.3 | |
Accelerator | 0.31 | 1.2 | |
Total weight of premix | 23 | 88.2 | |
Water | 1.2 | 4.4 | |
Steel fiber 2% | 1.6 | 6.2 | |
Superplasticizer | 0.32 | 1.2 |
Procedure | Start Time (min) |
---|---|
Mixing UHPC dry premix | 0 |
Adding water | 4 |
Adding half superplasticizer | 4 |
Adding the other half superplasticizer | 19 |
Adding steel fibers | 21 |
Mixing until complete uniformity | ≃30 |
Spread Diameter after 20 Drops (mm) | Mix Rheology |
---|---|
<200 | Stiff |
200–250 | Fluid |
>250 | Highly Fluid |
Specimen Type | Property | Average (MPa) | Standard Deviation (MPa) | Coefficient of Variance % |
---|---|---|---|---|
Cylinderical Specimen after 28 days | Compressive strength | 126 | 3 | 7.3 |
Strain at peak stress | 0.00353 | 0.000510 | 0.007 | |
Secant elastic modulus, E0 | 36,016 | 3153.5 | 8.8 | |
Tangent elastic modulus, E | 52,081 | 4136.9 | 7.9 | |
Cubical Specimen after 28 days | Compressive strength | 173 | 5.0 | 12.45 |
Strain at peak stress | 0.00408 | 0.000258 | 0.002 | |
Secant elastic modulus, E0 | 42,560 | 4095.0 | 9.6 | |
Tangent elastic modulus, E | 61,191 | 3909.3 | 8.1 |
Elastic Zone | |||
---|---|---|---|
Modulus of elasticity | 52,081 MPa | Poisson’s ratio | 0.2 |
Compressive strength | −126 MPa | Tensile strength | 5.8 MPa |
Plastic Zone | |||
Compression characteristic size | 1.27 mm | Tension characteristic size | 1.27 mm |
Compression localization onset | −0.001 | Tension localization onset | 0.002 |
Compressive behavior | Tensile behavior | ||
Yield strain | Compressive stress | Crack strain | Tensile stress |
0 | −126 MPa | 0 | 1.1 MPa |
−0.001 | −126 MPa | 0.002 | 6 MPa |
−0.01 | −38 MPa | 0.1 | 1 MPa |
C MPa | ft MPa | Friction Coefficient | Ktt (MN/m3) | Knn (MN/m3) | Ktt(min) (MN/m3) | Knn(min) (MN/m3) | |
---|---|---|---|---|---|---|---|
Sand blasted surface | 6.28 | 2 | 1 | 2.2 × 108 | 2.2 × 108 | 2.2 ×106 | 2.2 × 106 |
Smooth surface | 2.8 | 0.5 | 0.5 | 106 | 106 | 104 | 104 |
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Valikhani, A.; Jaberi Jahromi, A.; Mantawy, I.M.; Azizinamini, A. Numerical Modelling of Concrete-to-UHPC Bond Strength. Materials 2020, 13, 1379. https://doi.org/10.3390/ma13061379
Valikhani A, Jaberi Jahromi A, Mantawy IM, Azizinamini A. Numerical Modelling of Concrete-to-UHPC Bond Strength. Materials. 2020; 13(6):1379. https://doi.org/10.3390/ma13061379
Chicago/Turabian StyleValikhani, Alireza, Azadeh Jaberi Jahromi, Islam M. Mantawy, and Atorod Azizinamini. 2020. "Numerical Modelling of Concrete-to-UHPC Bond Strength" Materials 13, no. 6: 1379. https://doi.org/10.3390/ma13061379
APA StyleValikhani, A., Jaberi Jahromi, A., Mantawy, I. M., & Azizinamini, A. (2020). Numerical Modelling of Concrete-to-UHPC Bond Strength. Materials, 13(6), 1379. https://doi.org/10.3390/ma13061379