Significance of Vibration Time in Developing Properties of Precast Pervious Concrete
Abstract
:1. Introduction
2. Experimental Plan and Methods
2.1. Experimental Plan
2.2. Methods
2.2.1. Raw Material Characteristics
2.2.2. Concrete Samples Preparation and Curing
2.2.3. Consistency
- Form the slump’s cone into three layers, each compacted by rodding 25 times;
- Raise the slump’s cone and spread the fresh mix evenly in the vebe container;
- Adjust the weighted plastic disc on the top of the fresh mix and start vibration;
- Measure the time until the cement paste fills the bottom of the transparent plastic disk or starts to sag downwards visibly.
2.2.4. Fresh Mix Porosity
2.2.5. Effective Porosity and Effective Porosity Distribution with Height
2.2.6. Compressive Strength and the Modulus of Elasticity
2.2.7. Water Permeability
3. Materials and Mixture Composition
3.1. Materials
3.1.1. Cement
3.1.2. Aggregate
3.1.3. Water and Admixture
3.2. Mixture Composition
4. Results
4.1. Preliminary Research
4.1.1. Consistency
4.1.2. Fresh Mix’s Porosity
4.2. In-Depth Research
4.2.1. Consistency
4.2.2. Fresh Mix and Effective Porosity
4.2.3. Effective Porosity Distribution
4.2.4. Compressive Strength and Modulus of Elasticity
4.2.5. Water Permeability
5. Discussion
5.1. Usefulness of Modified Vebe Method to Determine the Optimal Vibration Time of Pervious Concrete
5.2. Shaping the Properties of Pervious Concrete through Its Porosity
6. Conclusions
- Properties of pervious concrete, mainly compressive strength, permeability coefficient, and modulus of elasticity, depend on the effective porosity of pervious concrete;
- The composition of the pervious concrete mix depends on the proportions between its different components and porosity—concrete of the same ratios between different components can be characterized by different overall composition due to differences in the porosity of fresh mix;
- The effective porosity of pervious concrete and the porosity of fresh concrete mix depends on the material composition of pervious concrete (mortar-to-aggregate ratio) and compaction time;
- The optimal compaction time to acquire designed effective porosity changes along with the material composition of pervious concrete;
- An increase in the content of mortar in the composition of pervious concrete results in a shortening of compaction time required to reach the designed effective porosity;
- The modified vebe method proposed by authors allowed to quantify the consistency of pervious concrete mixes with mortar-to-aggregate ratio varying from 0.41 to 0.43. The proposed method made it possible to identify even slight differences between the rheological parameters of examined mixes with the same mortar content;
- Authors suggest five classes of pervious concrete’s consistency measured by the modified vebe method: PV4 (1–4 s), PV3 (5–9 s), PV2 (10–16 s), PV1 (17–25 s), PV0 (>25 s). The suggested consistency classes are justified as analogous to, e.g., slump classes for conventional concrete and could help determine the optimal vibration time;
- A numerical model proposed by authors allows us to predict the desirable porosity of fresh mix based on the modified vebe time and vibration time on the vibration table.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Oxide/Compound | wt. % |
---|---|
MgO | 1.88 |
Al2O3 | 3.23 |
SiO2 | 18.99 |
P2O5 | 0.26 |
SO3 | 3.77 |
K2O | 0.89 |
CaO | 63.34 |
TiO2 | 0.28 |
MnO | 0.08 |
Fe2O3 | 2.83 |
CuO | 0.02 |
ZnO | 0.03 |
SrO | 0.07 |
LOI | 0.01 |
Property/ Composition | M1 | M2 | M3 |
---|---|---|---|
Mortar/ Aggregate, - | 0.41 | 0.43 | 0.45 |
Cement Paste/ Aggregate | 0.28 | 0.29 | 0.30 |
Water/ Cement, - | 0.30 | ||
Cement/ Fine aggregate - | 1.618 | ||
Superplasticizer content, %mass of cement | 0.58 | ||
Fine aggregate content, %mass of aggregate | 13.3 | 13.8 | 14.4 |
Mortar-to-Aggregate Ratio - | Vibration Time s | Fresh Mix Porosity % | CV % | Effective Porosity % | CV % |
---|---|---|---|---|---|
0.41 | 5 | 18.44 | 3.23 | 21.88 | 2.24 |
10 | 16.62 | 1.14 | 19.49 | 4.59 | |
15 | 15.26 | 5.20 | 17.70 | 7.20 | |
0.43 | 5 | 16.68 | 3.41 | 22.49 | 3.78 |
10 | 14.59 | 3.42 | 16.60 | 7.35 | |
15 | 10.57 | 5.62 | 15.85 | 2.08 | |
0.45 | 5 | 13.27 | 10.64 | 14.98 | 13.00 |
10 | 11.01 | 17.88 | 14.95 | 9.85 | |
15 | 10.35 | 32.32 | 11.84 | 7.45 |
Vibration Time s | Sample | Mortar-to-Aggregate Ratio - | |||||
---|---|---|---|---|---|---|---|
0.41 | 0.43 | 0.45 | |||||
Effective Porosity % | |||||||
5 | U | 24.47 | Average | 20.66 | Average | 15.61 | Average |
M | 24.81 | 26.48 | 23.88 | 23.43 | 20.63 | 19.39 | |
B | 30.17 | 25.74 | 21.94 | ||||
10 | U | 20.43 | Average | 17.65 | Average | 11.99 | Average |
M | 24.85 | 23.65 | 21.20 | 20.17 | 16.07 | 16.21 | |
B | 25.66 | 21.67 | 20.56 | ||||
15 | U | 17.98 | Average | 14.66 | Average | 10.18 | Average |
M | 21.65 | 20.29 | 14.66 | 16.19 | 11.22 | 11.72 | |
B | 21.24 | 19.24 | 13.76 |
Compact Time | Water-to-Cement | Cement-to-Sand | Mortar-to-Aggregate | Average Fresh Mix Porosity | Cement | Water | Fine Aggregate 0/2 | Coarse Aggregate 5/8 | SP |
---|---|---|---|---|---|---|---|---|---|
s | − | % | kg/m3 | ||||||
5 | 0.3 | 1.618 | 0.41 | 18.44 | 372 | 112 | 230 | 1504 | 2.2 |
10 | 16.62 | 380 | 114 | 235 | 1538 | 2.2 | |||
15 | 15.26 | 386 | 116 | 239 | 1563 | 2.2 | |||
5 | 0.43 | 16.68 | 380 | 114 | 235 | 1463 | 2.2 | ||
10 | 14.59 | 389 | 117 | 241 | 1500 | 2.3 | |||
15 | 10.57 | 408 | 122 | 252 | 1571 | 2.4 | |||
5 | 0.45 | 13.27 | 395 | 119 | 244 | 1454 | 2.3 | ||
10 | 11.01 | 406 | 122 | 251 | 1492 | 2.4 | |||
15 | 10.35 | 409 | 123 | 253 | 1503 | 2.4 |
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Chilmon, K.; Jaworska, B.; Kalinowski, M.; Jackiewicz-Rek, W.; Podkoń, A. Significance of Vibration Time in Developing Properties of Precast Pervious Concrete. Materials 2023, 16, 6239. https://doi.org/10.3390/ma16186239
Chilmon K, Jaworska B, Kalinowski M, Jackiewicz-Rek W, Podkoń A. Significance of Vibration Time in Developing Properties of Precast Pervious Concrete. Materials. 2023; 16(18):6239. https://doi.org/10.3390/ma16186239
Chicago/Turabian StyleChilmon, Karol, Beata Jaworska, Maciej Kalinowski, Wioletta Jackiewicz-Rek, and Aleksandra Podkoń. 2023. "Significance of Vibration Time in Developing Properties of Precast Pervious Concrete" Materials 16, no. 18: 6239. https://doi.org/10.3390/ma16186239
APA StyleChilmon, K., Jaworska, B., Kalinowski, M., Jackiewicz-Rek, W., & Podkoń, A. (2023). Significance of Vibration Time in Developing Properties of Precast Pervious Concrete. Materials, 16(18), 6239. https://doi.org/10.3390/ma16186239