Concrete Compressive Strength under Changing Environmental Conditions during Placement Processes
Abstract
:1. Introduction
2. Materials and Methods
2.1. Concrete Mixing and Fabrication of Specimens
2.2. Concrete Superstrength
2.3. Meteorological Data
2.4. Laboratory Tests
- The mean strength of non-overlapping consecutive results (criterion 1);
- Each test result (criterion 2);
- mean of three or four results for a single-family member or (criterion 3).
3. Results and Discussion
4. Summary and Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- CEN. EN 1992-1-1. Eurocode 2: Design of Concrete Structures—Part 1-1: General Rules and Rules for Buildings; CEN: Brussels, Belgium, 2004. [Google Scholar]
- ACI. ACI 318-19. Building Code Requirements for Structural Concrete; ACI: Farmington Hills, MI, USA, 2019. [Google Scholar] [CrossRef]
- Kurpinska, M.; Grzyl, B.; Pszczola, M.; Kristowski, A. The application of granulated expanded glass aggregate with cement grout as an alternative solution for sub-grade and frost-protection sub-base layer in road construction. Materials 2019, 12, 3528. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kaszynska, M.; Nowak, A.S. Effect of Material Quality on Life-Time Performance of Concrete Structures. Life-Cycle Performance of Deteriorating Structures; Routledge: Abingdon, UK, 2003; pp. 141–147. [Google Scholar] [CrossRef]
- Trawiński, W.; Tejchman, J.; Bobiński, J. A three-dimensional meso-scale approach with cohesive elements to concrete fracture based on X-ray μCT images. Eng. Fract. Mech. 2018, 189, 27–50. [Google Scholar] [CrossRef]
- Skarżyński, L.; Tejchman, J. Experimental investigations of damage evolution in concrete during bending by continuous micro-CT scanning. Mater. Charact. 2019, 154, 40–52. [Google Scholar] [CrossRef]
- Ambroziak, A.; Haustein, E.; Kondrat, J. Chemical and mechanical properties of 70-year-old concrete. J. Mater. Civ. Eng. 2019, 31, 4019159. [Google Scholar] [CrossRef]
- CEN. EN 13670. Execution of Concrete Structures; CEN: Brussels, Belgium, 2009. [Google Scholar]
- Ziolkowski, P.; Niedostatkiewicz, M. Machine learning techniques in concrete mix design. Materials 2019, 12, 1256. [Google Scholar] [CrossRef] [Green Version]
- Abdelgader, H.S.; Suleiman, R.E.; El-Baden, A.S.; Fahema, A.H.; Angelescu, N. Concrete mix proportioning using three equations method (Laboratory Study). In Proceedings of the UKIERI Concrete Congress Innovations in Concrete Construction, Jalandhar, Punjab, India, 5–8 March 2013. [Google Scholar]
- Abdelgader, H.S.; Saud, A.F.; Othman, A.M.; Fahema, A.H.; El-Baden, A.S. Concrete mix design using the double-coating method. Betonw. Fert. Plant Precast. Technol. 2014, 80, 66–74. [Google Scholar]
- Abdelgader, H.S.; Fediuk, R.S.; Kurpinska, M.; Khatib, J.; Murali, G.; Baranov, A.V.; Timokhin, R.A. Mechanical properties of two-stage concrete modified by silica fume. Mag. Civ. Eng. 2019, 89, 26–38. [Google Scholar] [CrossRef]
- Tran, Q.H.; Han, D.; Kang, C.; Haldar, A.; Huh, J. Effects of ambient temperature and relative humidity on subsurface defect detection in concrete structures by active thermal imaging. Sensors 2017, 17, 1718. [Google Scholar] [CrossRef]
- Chen, D.; Zou, J.; Zhao, L.; Xu, S.; Xiang, T.; Liu, C. Degradation of dynamic elastic modulus of concrete under periodic temperature-humidity action. Materials 2020, 13, 611. [Google Scholar] [CrossRef] [Green Version]
- Bai, Y.; Wang, Y.; Xi, Y. Modeling the effect of temperature gradient on moisture and ionic transport in concrete. Cem. Concr. Compos. 2020, 106, 926. [Google Scholar] [CrossRef]
- Price, W.H. Factors influencing concrete strength. ACI J. Proc. 1951, 47, 417–432. [Google Scholar] [CrossRef]
- Escalante-Garcia, J.I.; Sharp, J.H. Effect of temperature on the hydration of the main clinker phases in Portland cements: Part I, neat cements. Cem. Concr. Res. 1998, 28, 1245–1257. [Google Scholar] [CrossRef]
- Escalante-Garcıa, J.I.; Sharp, J.H. Effect of temperature on the hydration of the main clinker phases in Portland cements: Part II, blended cements. Cem. Concr. Res. 1998, 28, 1259–1274. [Google Scholar] [CrossRef]
- Escalante-García, J.I.; Sharp, J.H. The microstructure and mechanical properties of blended cements hydrated at various temperatures. Cem. Concr. Res. 2001, 31, 695–702. [Google Scholar] [CrossRef]
- Komonen, J.; Penttala, V. Effects of high temperature on the pore structure and strength of plain and polypropylene fiber reinforced cement pastes. Fire Technol. 2003, 39, 23–34. [Google Scholar] [CrossRef]
- Thomas, J.J.; Rothstein, D.; Jennings, H.M.; Christensen, B.J. Effect of hydration temperature on the solubility behavior of Ca-, S-, Al-, and Si-bearing solid phases in Portland cement pastes. Cem. Concr. Res. 2003, 33, 2037–2047. [Google Scholar] [CrossRef]
- Soudki, K.A.; El-Salakawy, E.F.; Elkum, N.B. Full factorial of optimisation of concrete mix design for hot climates. J. Mater. Civ. Eng. 2001, 13, 427–433. [Google Scholar] [CrossRef]
- Cygan, G.; Gołaszewski, J.; Drewniok, M. The effect of temperature on the properties of fresh self-compacting concrete. Arch. Civ. Eng. 2016, 62, 23–32. [Google Scholar] [CrossRef]
- CEN. EN 206:2013+A1:2016. Concrete—Specification, Performance, Production and Conformity; CEN: Brussels, Belgium, 2016. [Google Scholar]
- CEN. EN 197-1. Cement—Part 1: Composition, Specifications and Conformity Criteria for Common Cements; CEN: Brussels, Belgium, 2000. [Google Scholar]
- Müller, C. Use of cement in concrete according to European standard EN 206-1. HBRC J. 2012, 8, 1–7. [Google Scholar] [CrossRef] [Green Version]
- PKN. PN-EN 12390-2. Testing Hardened Concrete—Part 2: Making and Curing Specimens for Strength Tests; Polish Committee for Standardization: Warsaw, Poland, 2019. [Google Scholar]
- Kępniak, M.; Woyciechowski, P. The statistical analysis of relation between compressive and tensile/flexural strength of high performance concrete. Arch. Civ. Eng. 2016, 62, 95–107. [Google Scholar] [CrossRef] [Green Version]
- Jasiczak, J. “Concrete postlimiting behaviour” concept in tendering procedure for concrete facilities of communications infrastructure. Bud. Technol. Archit. 2017, 1, 64–68. [Google Scholar]
- Kepinska-Kasprzak, M.; Struzik, P. Agrometeorological service provided by Institute of Meteorology and Water Management–National Research Institute. Biol. Rhythm Res. 2019, 50, 327–334. [Google Scholar] [CrossRef]
- Public data of IMWM-PIB. Available online: https://danepubliczne.imgw.pl/datastore (accessed on 13 October 2020).
- Szymanowski, M.; Kryza, M.; Spallek, W. Regression-based air temperature spatial prediction models: An example from Poland. Meteorol. Z. 2013, 22, 577–585. [Google Scholar] [CrossRef]
- CEN. EN 12390-3. Testing Hardened Concrete. Compressive Strength of Test Specimens; CEN: Brussels, Belgium, 2019. [Google Scholar]
- Neville, A. Properties of Concrete, 4th ed.; Wiley: Hoboken, NJ, USA, 1996. [Google Scholar]
- Lothenbach, B.; Winnefeld, F.; Alder, C.; Wieland, E.; Lunk, P. Effect of temperature on the pore solution, microstructure and hydration products of Portland cement pastes. Cem. Concr. Res. 2007, 37, 483–491. [Google Scholar] [CrossRef]
- Regulation (EU). No 305/2011 of The European Parliament and of The Council of 9 March 2011. Off. J. Eur. Union 2011, L 88, 5–43. Available online: https://eur-lex.europa.eu/eli/reg/2011/305/oj (accessed on 14 October 2020).
- Regulation of the Minister of Infrastructure and Construction of 17 November 2016 on the Method of Declaring the Performance of Construction Products and the Method of Marking Them with a Construction Mark. 2016. Available online: http://isap.sejm.gov.pl/isap.nsf/DocDetails.xsp?id=WDU20160001966 (accessed on 14 October 2020).
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Concrete Mix Type | CM_A | CM_Aw | CM_B |
---|---|---|---|
Designed compressive strength class [MPa], according to [24] | C30/37 | C30/37 | C50/60 |
Slump class [-], according to [24] | S3 | S3 | S3 |
Concrete mix density [kg/m3] | 2322 | 2328 | 2397 |
Maximum size of aggregate [mm] | 16 | 16 | 16 |
CEM I-Portland cement [kg], according to [25] | 300 | 310 | 410 |
Type II addition (fly ash) [kg], according to [24] | 70 | 65 | 40 |
Fine aggregate (sand) [kg] | 640 | 640 | 600 |
Coarse aggregate 1 [kg] | 480 | 500 | 520 |
Coarse aggregate 2 [kg] | 650 | 650 | 670 |
Water reducing and plasticising admixture [kg] | 1.95 | – | 2.67 |
Water reducing, plasticising and accelerating hardening admixture [kg] | – | 3.1 | – |
Set-retarding, water-reducing and plasticising admixture [kg] | – | – | 0.82 |
Water [1] | 180 | 160 | 153 |
Concrete Mix Type | Time Period | Days Number of Applicability Concrete Mix | Total Number of Concrete Samples |
---|---|---|---|
CM_A | from 2016-01-22 to 2016-02-24 from 2016-04-05 to 2016-10-04 | 141 | 482 |
CM_Aw | from 2016-01-30 to 2016-05-05 | 40 | 152 |
CM_B | from 2016-02-25 to 2016-05-04 | 50 | 152 |
Meteorological Data | Min | Max | Mean | Median |
---|---|---|---|---|
Average daily air temperature [°C] | −6.1 | +25.8 | +11.35 | +12.50 |
Daily rainfall [mm] | 0.0 | 139.5 | 2.08 (1.31) 1 | 0.0 |
Concrete Mix Type | Specimens Number | Min [MPa] | Max [MPa] | Mean [MPa] | Stddev [MPa] | CV [−] | Median [MPa] |
---|---|---|---|---|---|---|---|
CM_A | 141 daily means | 39.2 | 60.3 | 46.60 | 4.36 | 0.09 | 45.70 |
482 concrete specimens | 35.1 | 65.6 | 46.82 | 4.68 | 0.10 | 45.80 | |
CM_Aw | 40 daily means | 48.7 | 60.4 | 53.02 | 2.85 | 0.05 | 52.85 |
152 concrete specimens | 46.6 | 61.6 | 53.10 | 3.42 | 0.06 | 53.30 | |
CM_B | 50 daily means | 64.7 | 82.1 | 74.44 | 3.96 | 0.05 | 74.15 |
152 concrete specimens | 63.4 | 87.9 | 74.36 | 4.83 | 0.06 | 74.10 |
Concrete Mix Type | CM_A | CM_Aw | CM_B | |||
---|---|---|---|---|---|---|
Criterion 3 | Criterion 1 | Criterion 3 | Criterion 1 | Criterion 3 | Criterion 1 | |
C25/30 | 0 (0%) | 2 (1.4%) | 0 (0%) | 0 (0%) | – | – |
C30/37 | 72 (51.1%) | 97 (68.8%) | 0 (0%) | 1 (2.5%) | – | – |
C35/45 | 44 (31.2%) | 32 (22.7%) | 9 (22.5%) | 27 (67.5%) | – | – |
C40/50 | 20 (14.2%) | 8 (5.7%) | 23 (57.5%) | 11 (27.5%) | – | – |
C45/55 | 5 (3.5%) | 2 (1.4%) | 8 (20%) | 1 (2.5%) | 0 (0%) | 0 (0%) |
C50/60 | – | – | – | – | 4 (8%) | 7 (14%) |
C55/67 | – | – | – | – | 28 (56%) | 36 (72%) |
C60/75 | – | – | – | – | 18 (36%) | 7 (14%) |
Total sum | 141 (100%) | 40 (100%) | 50 (100%) |
Concrete Mix Type | [MPa] | [MPa] | [MPa] |
---|---|---|---|
CM_A | 42.0 | 52.6 | 65.7 |
CM_Aw | |||
CM_B | 65.0 | 75.6 | 94.5 |
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Ambroziak, A.; Ziolkowski, P. Concrete Compressive Strength under Changing Environmental Conditions during Placement Processes. Materials 2020, 13, 4577. https://doi.org/10.3390/ma13204577
Ambroziak A, Ziolkowski P. Concrete Compressive Strength under Changing Environmental Conditions during Placement Processes. Materials. 2020; 13(20):4577. https://doi.org/10.3390/ma13204577
Chicago/Turabian StyleAmbroziak, Andrzej, and Patryk Ziolkowski. 2020. "Concrete Compressive Strength under Changing Environmental Conditions during Placement Processes" Materials 13, no. 20: 4577. https://doi.org/10.3390/ma13204577
APA StyleAmbroziak, A., & Ziolkowski, P. (2020). Concrete Compressive Strength under Changing Environmental Conditions during Placement Processes. Materials, 13(20), 4577. https://doi.org/10.3390/ma13204577