Impact of Water Level Variation on Mechanical Properties of Porous Concrete
Abstract
:1. Introduction
2. Experimental Programs
2.1. Materials
2.2. Preparation of Specimens
2.3. Testing Programs
2.3.1. Compressive Strength
2.3.2. Determination of Physical and Hydraulic Properties
3. Results
3.1. Influence of Water Table on Compressive Strength of Porous Concrete
3.2. Influence of Porosity on the Physical and Hydraulic Properties of the Porous Concrete
3.2.1. Density
3.2.2. Permeability
3.2.3. Observed Porosity
4. Conclusions
- The oven-dried condition resulted in the highest compressive strength for both cubical and cylindrical specimens. Compressive strength peaked at 40% water level and decreased at 60% due to cementitious particle separation by the pore water. A slight increase was observed at the 100% water level, possibly due to pore closure and free water flow.
- Increasing porosity led to a decrease in both density and compressive strength. This may be attributed to the presence of a larger number of voids, reducing the effective load-carrying area. The observed porosity values were consistently higher than the target porosities, due to compaction limitations.
- Porosity directly impacts the permeability of porous concrete, showing a linear correlation. Higher porosity leads to increased permeability due to the presence of more open voids, offering a larger surface area for water to infiltrate.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
ACI | American Concrete Institute |
ACV | Aggregate Crushing Strength |
AIV | Aggregate Impact Value |
ASTM | American Society for Testing and Materials |
IS | Indian Standard |
PC | Porous Concrete |
SSD | Saturated Surface Dry |
UTM | Universal Testing Machine |
w/c | water to cement ratio |
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Aggregate Size | 10 mm–4.75 mm |
Sp. Gr | 2.64 |
Bulk Density | 1542.57 kg/m3 |
Water Absorption | 0.868% |
Percentage of Deleterious Materials | 4.702% |
Aggregate Impact Value (AIV) | 35.40% |
Aggregate Crushing Value (ACV) | 37.39% |
Void Percentage | 41.50% |
Description | Design Data-20% Porosity | Design Data-25% Porosity | Remarks |
---|---|---|---|
Percentage of Aggregates Voids () | 41.50 | 41.50 | (ASTM C29/C29M) [34] |
Adopted % of Void () | 20.00 | 25.00 | |
Cement Paste () | 21.50 | 16.50 | |
Specific Gravity of Cement | 0.32 | 0.32 | |
Adopted w/c considering workability | 0.40 | 0.40 | |
Cement Content () kg/m3 | 300.70 | 230.77 | (ACI Committee 522, 2010) [14] |
Water Content (kg/m3) | 120.28 | 92.30 | |
Coarse Aggregate (kg/m3) | 1542.57 | 1542.57 |
Type of Test | No. of Cube Specimens (150 mm × 150 mm × 150 mm) | Number of Cylindrical Specimens (150 mm × 300 mm) |
---|---|---|
Compressive Strength Test | 21 | 21 |
Normal Condition | ||
Oven Dried Condition | ||
Water Level at 20% of height | ||
Water Level at 40% of height | ||
Water Level at 60% of height | ||
Water Level at 80% of height | ||
Water Level at 100% of height | ||
Porosity and Permeability | 3 | 3 |
Normal Condition |
Sample | Mix Proportion (Cement: Aggregate) | w/c Ratio | Void Percentages |
---|---|---|---|
1:5.13 | 0.4 | 20% | |
1:6.69 | 0.4 | 25% | |
Target Porosity (%) | Observed Porosity Cylinder (%) | Observed Porosity Cube (%) |
---|---|---|
28.93 | 24.29 | |
20 | 29.97 | 27.26 |
33.85 | 28.6 | |
33.75 | 32.31 | |
25 | 34.698 | 32.31 |
35.45 | 32.46 |
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Lamichhane, R.; Motra, G.B.; Khadka, T.B.; Zhang, Y.X.; Pathak, P.; Pandit, S. Impact of Water Level Variation on Mechanical Properties of Porous Concrete. Sustainability 2024, 16, 3546. https://doi.org/10.3390/su16093546
Lamichhane R, Motra GB, Khadka TB, Zhang YX, Pathak P, Pandit S. Impact of Water Level Variation on Mechanical Properties of Porous Concrete. Sustainability. 2024; 16(9):3546. https://doi.org/10.3390/su16093546
Chicago/Turabian StyleLamichhane, Rabin, Gokarna Bahadur Motra, Thaman Bahadur Khadka, Y. X. Zhang, Prabin Pathak, and Shikhar Pandit. 2024. "Impact of Water Level Variation on Mechanical Properties of Porous Concrete" Sustainability 16, no. 9: 3546. https://doi.org/10.3390/su16093546
APA StyleLamichhane, R., Motra, G. B., Khadka, T. B., Zhang, Y. X., Pathak, P., & Pandit, S. (2024). Impact of Water Level Variation on Mechanical Properties of Porous Concrete. Sustainability, 16(9), 3546. https://doi.org/10.3390/su16093546