Performance of Plain Concrete and Cement Blocks with Cement Partially Replaced by Cement Kiln Dust
Abstract
:1. Introduction
2. Research Goal and Methodology
3. Experimental Work
CKD Materials
4. Procedures and Result Discussion
4.1. Concrete
4.1.1. Effect of CKD on Concrete Compressive Strength
4.1.2. Effect of CKD on Concrete Tensile Strength
4.1.3. Effect of CKD on Air Content
4.1.4. Water Cement Ratio and CKD Replacement Effects
4.2. Hollow Cement Blocks
4.2.1. Effect of CKD on Cement Block Compressive Strength
4.2.2. Effect of CKD on Cement Block Absorption
5. Assessment of the Application Tests
6. Summary and Conclusions
- CKD has a detrimental impact on compressive strength, as evidenced by the fact that as the amount increased, the compressive strength of the concrete and cement block specimens decreased. An equation corresponding to each was presented to anticipate this reduction.
- Regarding the concrete tensile strength, there was no significant difference between 0% and 5% CKD, which was only approximately 3%.
- In the concrete mix, the percentage of air content from 0% to 5% CKD replacements made no difference; however, when CKD was increased to 10%, 15%, and 20%, it increased by 24%, 33%, and 43%, respectively.
- The percentage of water absorption due to partial replacement by CKD in cement blocks can be increased up to 25% within the allowed limits.
- This research demonstrates that CKD can be used as a primary component in concrete (e.g., plain concrete, curbs, and cement tiles) and cement block products.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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No. | Test | Specimen Dimension | No. of Specimens |
---|---|---|---|
1 | Chemical analysis | Cement kiln dust (CKD) | 1 |
2 | Concrete compressive strength | Cube (150 mm × 150 mm × 150 mm) | 42 |
3 | Concrete tensile strength | Cylinder (15 mm in diameter; 30 mm in height) | 12 |
4 | Concrete air content | Gilson container | 15 |
5 | Blocks compressive strength | Hollow cement blocks (200 mm × 200 mm × 400 mm) | 30 |
6 | Block absorption | Hollow cement blocks (200 mm × 200 mm × 400 mm) | 20 |
Chemical Composition (%) | CKD (UK) [14] | CKD AL Madina Cement Factory (AL Madina KSA) | OPC |
---|---|---|---|
SiO2 | 11–16 | 18.20 | 22 |
Al2O3 | 3–6 | 4.52 | 5 |
Fe2O3 | 1–4 | 2.92 | 3 |
CaO | 38–50 | 49.40 | 64 |
MgO | 0–2 | 1.21 | 1 |
SO3 | 4–18 | 5.66 | 3 |
K2O | 3–13 | 2.38 | <1 |
Na2O | 0–2 | 3.84 | <1 |
Cl | 0–5 | 5.90 | <0.10 |
Loss on ignition | 5–25 | 17.10 | 1 |
Free Cao | 1–10 | 4.24 | 2 |
No. | Cube Compressive Strength after 28 Days (MPa) | |||||||
---|---|---|---|---|---|---|---|---|
% of CKD | 0% | 2% | 5% | 8% | 10% | 15% | 20% | |
1 | From cement portion in concrete mixes | 29 | 28.2 | 28 | 27.6 | 27 | 24.5 | 19.2 |
2 | 29.3 | 29 | 27.5 | 27.3 | 26.3 | 25 | 18.5 | |
3 | 28.45 | 28.1 | 27.6 | 26.5 | 26.5 | 23.8 | 18.2 | |
4 | 28.41 | 28.3 | 28 | 27 | 26.8 | 23.7 | 19 | |
5 | 28.66 | 28 | 27.5 | 26.4 | 26.2 | 24.2 | 18.4 | |
6 | 28.5 | 28.1 | 28.2 | 27.2 | 26.2 | 24 | 18.3 | |
Average (MPa) | 28.724 | 28.45 | 27.8 | 27 | 26.5 | 24.2 | 18.6 |
No | % of CKD | Tensile Strength (MPa) | Average (MPa) | |||||
---|---|---|---|---|---|---|---|---|
1 | 2 | 3 | 4 | 5 | 6 | |||
1 | 0% | 2.97 | 3.11 | 2.83 | 2.90 | 3.00 | 2.95 | 2.95 |
2 | 5% | 2.81 | 2.86 | 2.68 | 2.74 | 2.85 | 2.87 | 2.80 |
No. (1) | % CKD (2) | % Air Content (3) | % Air Content Average (4) |
---|---|---|---|
1 | 0 | 1.05 | 1.05 |
2 | 1.05 | ||
3 | 1.00 | ||
1 | 5 | 1.05 | 1.05 |
2 | 1.05 | ||
3 | 1.10 | ||
1 | 10 | 1.30 | 1.30 |
2 | 1.35 | ||
3 | 1.25 | ||
1 | 15 | 1.35 | 1.40 |
2 | 1.45 | ||
3 | 1.35 | ||
1 | 20 | 1.45 | 1.50 |
2 | 1.60 | ||
3 | 1.50 |
% of CKD | Crushing Load (kN) | Strength (MPa) Net Area | Strength (MPa) Gross Area | ||
---|---|---|---|---|---|
Per Specimen | Average | Per Specimen | Average | ||
0 | 55.5 | 12.31 | 11.89 | 7.30 | 7.05 |
56.00 | 12.42 | 7.36 | |||
52.30 | 11.60 | 6.88 | |||
50.50 | 11.20 | 6.64 | |||
52.75 | 11.70 | 6.94 | |||
54.56 | 12.10 | 7.18 | |||
10 | 48.25 | 10.70 | 10.50 | 6.34 | 6.22 |
47.80 | 10.60 | 6.29 | |||
45.70 | 10.14 | 6.01 | |||
47.50 | 10.54 | 6.25 | |||
48.00 | 10.65 | 6.32 | |||
46.64 | 10.35 | 6.14 | |||
15 | 37.82 | 8.39 | 9.50 | 4.97 | 5.62 |
46.7 | 10.36 | 6.14 | |||
42.2 | 9.36 | 5.55 | |||
44.3 | 9.83 | 5.83 | |||
43.17 | 9.58 | 5.68 | |||
42.59 | 9.45 | 5.60 | |||
20 | 35.11 | 7.79 | 7.80 | 4.62 | 4.63 |
35.98 | 7.98 | 4.73 | |||
34.24 | 7.6 | 4.50 | |||
35.41 | 7.85 | 4.66 | |||
35.27 | 7.82 | 4.64 | |||
35.00 | 7.76 | 4.61 | |||
25 | 27.34 | 6.06 | 6.15 | 3.60 | 3.65 |
28.2 | 6.26 | 3.71 | |||
27.56 | 6.11 | 3.62 | |||
27.82 | 6.17 | 3.66 | |||
27.73 | 6.15 | 3.65 | |||
27.59 | 6.12 | 3.63 |
% CKD | Weight (N) | Average Weight (N) | % Absorption | |||
---|---|---|---|---|---|---|
After Oven | After Submerged | Water Absorbed | Dry Weight | Water | ||
0 | 196.35 | 204.20 | 7.85 | 191.64 | 8.18 | 4.27 |
189.70 | 198.15 | 8.45 | ||||
191.00 | 198.90 | 7.90 | ||||
189.50 | 198.00 | 8.50 | ||||
10 | 196.80 | 205.90 | 9.10 | 190.13 | 9.48 | 4.98 |
186.20 | 196.10 | 9.90 | ||||
186.50 | 196.40 | 9.90 | ||||
191.00 | 200.00 | 9.00 | ||||
15 | 185.75 | 195.95 | 10.20 | 185.61 | 9.913 | 5.34 |
185.40 | 195.15 | 9.75 | ||||
185.20 | 195.00 | 9.80 | ||||
186.10 | 196.00 | 9.90 | ||||
20 | 186.75 | 197.95 | 11.20 | 187.01 | 11.53 | 6.16 |
187.60 | 199.40 | 11.80 | ||||
186.60 | 198.20 | 11.60 | ||||
187.10 | 198.60 | 11.50 | ||||
25 | 182.45 | 194.20 | 11.75 | 186.04 | 11.74 | 6.31 |
188.00 | 199.80 | 11.80 | ||||
188.30 | 200.00 | 11.70 | ||||
185.40 | 197.10 | 11.70 |
Test Type | % CKD | Mean | Standard Deviation | Min. | Max |
---|---|---|---|---|---|
Concrete compressive strength | 2 | 0.985 | 0.009 | 0.972 | 0.996 |
5 | 0.968 | 0.019 | 0.939 | 0.989 | |
8 | 0.940 | 0.014 | 0.921 | 0.954 | |
10 | 0.923 | 0.016 | 0.898 | 0.943 | |
15 | 0.843 | 0.007 | 0.834 | 0.853 | |
20 | 0.648 | 0.014 | 0.631 | 0.669 | |
Concrete tensile | 5 | 0.950 | 0.017 | 0.920 | 0.973 |
Concrete air content | 5 | 1.033 | 0.058 | 1.000 | 1.100 |
10 | 1.258 | 0.025 | 1.238 | 1.286 | |
15 | 1.339 | 0.049 | 1.286 | 1.381 | |
20 | 1.468 | 0.077 | 1.381 | 1.524 | |
Block compressive strength | 10 | 0.884 | 0.019 | 0.862 | 0.905 |
15 | 0.798 | 0.028 | 0.749 | 0.834 | |
20 | 0.657 | 0.017 | 0.638 | 0.679 | |
25 | 0.517 | 0.016 | 0.501 | 0.541 |
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Alharthi, Y.M.; Elamary, A.S.; Abo-El-Wafa, W. Performance of Plain Concrete and Cement Blocks with Cement Partially Replaced by Cement Kiln Dust. Materials 2021, 14, 5647. https://doi.org/10.3390/ma14195647
Alharthi YM, Elamary AS, Abo-El-Wafa W. Performance of Plain Concrete and Cement Blocks with Cement Partially Replaced by Cement Kiln Dust. Materials. 2021; 14(19):5647. https://doi.org/10.3390/ma14195647
Chicago/Turabian StyleAlharthi, Yasir M., Ahmed S. Elamary, and Waleed Abo-El-Wafa. 2021. "Performance of Plain Concrete and Cement Blocks with Cement Partially Replaced by Cement Kiln Dust" Materials 14, no. 19: 5647. https://doi.org/10.3390/ma14195647
APA StyleAlharthi, Y. M., Elamary, A. S., & Abo-El-Wafa, W. (2021). Performance of Plain Concrete and Cement Blocks with Cement Partially Replaced by Cement Kiln Dust. Materials, 14(19), 5647. https://doi.org/10.3390/ma14195647