Assessment of Limestone Waste Addition for Fired Clay Bricks
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Raw Materials
3.2. Brick Sample
3.3. Advantages and Disadvantages of Reusing Limestone Waste as Admixture in Clay Materials
4. Conclusions and Further Research Development
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- The limestone waste increased the carbonate content and CO2 release due to their decomposition, contributed to the waste circularity, and may improve the thermal performance of products;
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- The compressive strength of the samples with limestone waste was lower than that of the reference samples, with up to 55% (sample C3);
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- The sample density was reduced only by 17% for the sample with highest limestone content, so it can be recommended for use in dry environments; to avoid their damage, the color of the samples lightened as the limestone waste content increased.
Author Contributions
Funding
Conflicts of Interest
References
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Element | Mg | Al | Si | K | Ca | Fe |
---|---|---|---|---|---|---|
Content (wt.%) | 2.7 | 3.8 | 7.2 | 1.0 | 82.4 | 2.8 |
5% Limestone Waste | 10% Limestone Waste | 15% Limestone Waste | |
---|---|---|---|
Quartz | 80% | 82% | 75% |
Feldspar | 8% | 7% | 13% |
Calcium oxide | 5% | 6% | 7% |
Hematite | 4% | 2% | 2% |
Muscovite | 3% | 1% | 1% |
Gehlenite | 0% | 2% | 2% |
Total | 100% | 100% | 100% |
Advantages | Disadvantages |
---|---|
A1: limestone waste generated from stoned processing is a locally abundant resources that may partially substitute the clays in brick production or other materials A2: is a natural material that is not hazardous A3: stone processing companies may create durable partnerships with industries A4: materials industry can take advantage of financial support to sustain waste circularity and consequently limit waste disposal A5: may represent a valuable resource, especially in areas scarce in clays A6: facilitate new jobs in recycling process and revitalization of disposal areas | D1: limited knowledge about limestone recycling opportunities D2: tests on a real scale product have been insufficient performed D3: costs of primary resources are still low, which make waste processing cost-ineffective and less attractive D4: lower mechanical properties for high content in comparison with conventional materials D5: lack of chain for distribution of waste D6: may increase production cost due to waste transport and pretreatment D7: strong competition with other low-cost green materials D8: lack of guidelines for secondary raw materials |
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Thalmaier, G.; Cobȋrzan, N.; Balog, A.-A.; Constantinescu, H.; Ceclan, A.; Voinea, M.; Marinca, T.F. Assessment of Limestone Waste Addition for Fired Clay Bricks. Materials 2022, 15, 4263. https://doi.org/10.3390/ma15124263
Thalmaier G, Cobȋrzan N, Balog A-A, Constantinescu H, Ceclan A, Voinea M, Marinca TF. Assessment of Limestone Waste Addition for Fired Clay Bricks. Materials. 2022; 15(12):4263. https://doi.org/10.3390/ma15124263
Chicago/Turabian StyleThalmaier, Gyorgy, Nicoleta Cobȋrzan, Anca-Andreea Balog, Horia Constantinescu, Andrei Ceclan, Mirela Voinea, and Traian Florin Marinca. 2022. "Assessment of Limestone Waste Addition for Fired Clay Bricks" Materials 15, no. 12: 4263. https://doi.org/10.3390/ma15124263
APA StyleThalmaier, G., Cobȋrzan, N., Balog, A. -A., Constantinescu, H., Ceclan, A., Voinea, M., & Marinca, T. F. (2022). Assessment of Limestone Waste Addition for Fired Clay Bricks. Materials, 15(12), 4263. https://doi.org/10.3390/ma15124263