Capillary Water Absorption and Micro Pore Connectivity of Concrete with Fractal Analysis
Abstract
:1. Introduction
2. Materials and Mixture Proportions
3. Water Absorption Test of Concrete
4. Pore Fractal Dimension
4.1. MIP Test
4.2. Calculation of Pore Fractal Dimension
5. Results and Discussion
6. Conclusions
- (1)
- The pore structure of different regions shows different fractal characteristics. Fractal theory can analyze and evaluate the pore structure characteristics of concrete, especially when evaluating the permeability of concrete, the complexity of pore structure can be described in detail and quantitatively.
- (2)
- With the extension of curing time, the water absorption value of all samples will decrease. Adding two mineral additives (fly ash and slag) can effectively reduce the water absorption of concrete, and the water absorption reduction effect of slag powder is more significant than that of fly ash.
- (3)
- Compared with the total pore fractal dimension, the pore fractal dimension of 50–550 nm can accurately describe the complex state of the pore, and the pore fractal dimension of 50–550 nm has a good linear relationship with the water absorption value.
- (4)
- Pore fractal dimension between 50 and 550 nm has a close correlation with connectivity probability of pores inside concrete. The fractal theory could be applied for researching the probability of pore distribution inside concrete. The pore fractal dimension of 50–550 nm is closely related to the probability of pore connectivity in concrete. Fractal theory can be used to study the internal probability of concrete.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Neville, A. Consideration of durability of concrete structures: Past, present, and future. Mater. Struct. 2001, 34, 114–118. [Google Scholar] [CrossRef]
- Basheer, L.; Cleland, D.J. Durability and water absorption properties of surface treated concretes. Mater. Struct. 2011, 44, 957–967. [Google Scholar] [CrossRef]
- Juenger, M.C.G.; Siddique, R. Recent advances in understanding the role of supplementary cementitious materials in concrete. Cem. Concr. Res. 2015, 78, 71–80. [Google Scholar] [CrossRef]
- Bremner, T.; Hover, K.; Poston, R.; Broomfield, J.; Joseph, T.; Price, R.; Clear, K.; Khan, M.; Reddy, D.; Clifton, J. ACI 222R-01 Protection of Metals in Concrete Against Corrosion; American Concrete Institute: Farmington Hills, MI, USA, 2001. [Google Scholar]
- Li, K.; Li, C. Modeling hydroionic transport in cement-based porous materials under drying-wetting actions. J. Appl. Mech. 2013, 80, 20904. [Google Scholar] [CrossRef]
- Bassuoni, M.T.; Nehdi, M.L. Durability of self-consolidating concrete to different exposure regimes of sodium sulfate attack. Mater. Struct. 2009, 42, 1039–1057. [Google Scholar] [CrossRef]
- Zhao, X.-l.; Wei, J.; Liu, Z.-k. Durability of concrete under multi-damage action. J. Wuhan Univ. Technol. Mater. Sci. Ed. 2004, 19, 73–75. [Google Scholar] [CrossRef]
- Safiuddin, M.; Mahmud, H.B.; Jumaat, M.Z. Efficacy of ASTM saturation techniques for measuring the water absorption of concrete. Arab. J. Sci. Eng. 2011, 36, 761. [Google Scholar] [CrossRef]
- Khan, M.I.; Mourad, S.M.; Charif, A. Utilization of supplementary cementitious materials in HPC: From rheology to pore structure. KSCE J. Civ. Eng. 2017, 21, 889–899. [Google Scholar] [CrossRef]
- Tang, M.; Li, X. Current situation and development of concrete fractal characteristic. Concrete 2004, 12, 8–11. [Google Scholar] [CrossRef]
- Dubuc, B.; Quiniou, J.F.; Roques, C.C.; Tricot, C.; Zucker, S.W. Evaluating the fractal dimension of profiles. Phys. Rev. A 1989, 39, 1500–1512. [Google Scholar] [CrossRef] [PubMed]
- Guo, W.; Qin, H.; Chen, H.; Sun, W. Fractal theory and its applications in the study of concrete materials. J. Chin. Ceram. Soc. 2010, 38, 1362–1368. [Google Scholar]
- Tang, M.; Chen, Z.; Yang, F. Research on characteristics of pore fractal and chloride diffusion in C50 pumped concrete. Concrete 2010, 92–95. [Google Scholar] [CrossRef]
- Yin, H.; Lv, H.; Zhao, Y. Fractal characteristics of cement paste by carbonation. Concrete 2009, 97–99. [Google Scholar] [CrossRef]
- Jin, S.; Zhang, J.; Huang, B. The relationship between freeze-thaw resistance and pore structure of concrete. Pavement Geotech. Eng. Transp. 2013, 60–67. [Google Scholar] [CrossRef]
- Chen, X.; Zhou, J.; Ding, N. Fractal characterization of pore system evolution in cementitious materials. KSCE J. Civ. Eng. 2015, 19, 719–724. [Google Scholar] [CrossRef]
- Xue, S.; Zhang, P.; Bao, j.; He, L.; Hu, Y.; Yang, S. Comparison of Mercury Intrusion Porosimetry and multi-scale X-ray CT on characterizing the microstructure of heat-treated cement mortar. Mater. Charact. 2020, 160, 110085. [Google Scholar] [CrossRef]
- Gummerson, R.J.; Hall, C.; Hoff, W.D. Water movement in porous building materials—II. Hydraulic suction and sorptivity of brick and other masonry materials. Build. Environ. 1980, 15, 101–108. [Google Scholar] [CrossRef]
- Tang, M.; Wang, J.; Li, L. Research on fractal characteristics of concrete materials pore with MIP. J. Shenyang Archit. Civ. Eng. Inst. 2001, 17, 272–275. [Google Scholar] [CrossRef]
- Xie, C.; Wang, Q.; Li, S.; Hui, B. Relations of pore fractral dimension to pore structure and compressive strength of concrete under different water to binder ratio and curing condition. Bulletin of the Chinese Ceramic Society 2015, 34, 3695–3702. [Google Scholar]
80 um Sieve Reside/% | Setting Time/Min | Soundness | Tensile Strength/MPa | Compressive Strength/MPa | |||
---|---|---|---|---|---|---|---|
Initial | Final | 3d | 28d | 3d | 28d | ||
1.4 | 160 | 220 | Qualified | 3.3 | 7.0 | 16.5 | 38.1 |
Chemical Composition | SiO2 | Al2O3 | CaO | MgO | Fe2O3 | SO3 |
---|---|---|---|---|---|---|
Slag | 31.73 | 13.84 | 40.76 | 7.87 | 2.01 | 1.52 |
Fly ash | 55.01 | 28.5 | 2.39 | 2.19 | 8.05 | -- |
Binder Types | Water | Cement | Sand | Slag | Fly Ash | Coarse Aggregate | Water Reducing Agent |
---|---|---|---|---|---|---|---|
OPC | 215 | 420 | 660 | - | - | 1264 | 4.5 |
OPC with slag | 180 | 340 | 798 | 100 | - | 1264 | 4.5 |
OPC with fly ash | 180 | 380 | 798 | - | 70 | 1264 | 4.5 |
OPC with slag and fly ash | 180 | 340 | 798 | 65 | 35 | 1264 | 4.5 |
Binder Types | Slump/mm | Compressive Strength/MPa |
---|---|---|
OPC | 225 | 35.9 |
OPC with slag | 200 | 41.5 |
OPC with fly ash | 250 | 39.1 |
OPC with compound admixture | 230 | 44.7 |
Binder Types | Porosity/% | Total Porosity/% | Connectivity Probability/% | |||
---|---|---|---|---|---|---|
>103 nm | 103–102 nm | 102–10 nm | <10 nm | |||
OPC | 14.34 | 46.40 | 37.14 | 2.12 | 21.54 | 56.22 |
OPC with slag | 33.82 | 13.82 | 49.20 | 3.17 | 14.78 | 37.01 |
OPC with fly ash | 22.20 | 24.20 | 48.69 | 4.91 | 16.13 | 46.00 |
OPC with compound admixture | 26.42 | 16.07 | 52.79 | 4.72 | 13.48 | 43.47 |
d1 (<50 nm) | d2 (50~550 nm) | d3 (>550 nm) | d | ||
---|---|---|---|---|---|
OPC | D | 2.9188 | 2.2584 | 2.8394 | 2.6651 |
R | 0.9432 | 0.9933 | 0.9947 | 0.9677 | |
OPC with slag | D | 2.8525 | 2.7553 | 2.7269 | 2.7693 |
R | 0.9632 | 0.8289 | 0.9762 | 0.9856 | |
OPC with fly ash | D | 2.8367 | 2.5721 | 2.8042 | 2.7327 |
R | 0.9722 | 0.9822 | 0.9954 | 0.9843 | |
OPC with compound admixture | D | 2.8118 | 2.6849 | 2.7244 | 2.7308 |
R | 0.9730 | 0.9473 | 0.9919 | 0.9939 |
© 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
Ding, X.; Liang, X.; Zhang, Y.; Fang, Y.; Zhou, J.; Kang, T. Capillary Water Absorption and Micro Pore Connectivity of Concrete with Fractal Analysis. Crystals 2020, 10, 892. https://doi.org/10.3390/cryst10100892
Ding X, Liang X, Zhang Y, Fang Y, Zhou J, Kang T. Capillary Water Absorption and Micro Pore Connectivity of Concrete with Fractal Analysis. Crystals. 2020; 10(10):892. https://doi.org/10.3390/cryst10100892
Chicago/Turabian StyleDing, Xiangqun, Xinyu Liang, Yichao Zhang, Yanfeng Fang, Jinghai Zhou, and Tianbei Kang. 2020. "Capillary Water Absorption and Micro Pore Connectivity of Concrete with Fractal Analysis" Crystals 10, no. 10: 892. https://doi.org/10.3390/cryst10100892
APA StyleDing, X., Liang, X., Zhang, Y., Fang, Y., Zhou, J., & Kang, T. (2020). Capillary Water Absorption and Micro Pore Connectivity of Concrete with Fractal Analysis. Crystals, 10(10), 892. https://doi.org/10.3390/cryst10100892