Study on Physical Properties of Mortar for Section Restoration Using Calcium Nitrite and CO2 Nano-Bubble Water
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Plan
2.2. Materials and CO2 Nanobubble Water
2.2.1. Materials
2.2.2. Equipment and Process to Generate CO2 Nanobubble Water
2.3. Experimental Parameters
2.3.1. Flow
2.3.2. Compressive and Flexural Strength
2.3.3. Length Change Rate
2.3.4. Carbonation Depth
2.3.5. Porosity and SEM Analysis
3. Results and Discussion
3.1. Flow
3.2. Compressive and Flexural Strength
3.3. Length Change Rate
3.4. Carbonation Depth
3.5. Porosity
3.6. SEM
4. Conclusions
- The flow values of the specimens with calcium nitrite tended to be high. No special tendency according to the type of mixing water and the calcium nitrite content was seen. When 5% calcium nitrite was added, the length change rate sharply decreased.
- As the calcium nitrite content increased, strength and durability also increased. In particular, the use of CO2 nanobubble water effectively increased the strength and reduced the carbonation depth and porosity.
- As the calcium nitrite content increased, the generation rate and generated amount of nitrite-based hydration products increased owing to the rapid reaction between the NO2− ions in calcium nitrite and the C3A(Al2O3) in cement.
- A large amount of Ca2+ ions from Ca(OH)2 and C-S-H gel, which were generated through the accelerated reaction between calcium nitrite and cement, reacted with the CO32− ions in the CO2 nanobubble water, thereby increasing the generation of calcite-based CaCO3 in the cement matrix. This appears to have affected the strength development and durability improvement via the densification of the structure. The densification of the matrix appears to reduce the pore volume and affect strength development as well as durability improvement.
Author Contributions
Funding
Conflicts of Interest
References
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Item | Values | |
---|---|---|
Experimental variables and level | W/M (%) | 16 |
Ca(NO2)2 dosage 1 | CN0 *, CN1, CN3, CN5 * | |
Mixing water type | Tap water (TW), Nanobubble water (NW) | |
Evaluation items |
|
W/M 1 (%) | B:S 2 | Binder (wt%) | ||||||
---|---|---|---|---|---|---|---|---|
Cement | CSA | Resin | Anhydrous Gypsum | PVA Fiber | Superplasticizer | Viscosity Agent | ||
16 | 1:1.45 | 89.5 | 6.6 | 1.5 | 1.2 | 0.6 | 0.58 | 0.04 |
Evaluation Items | Quality Criteria |
---|---|
Compressive strength (N/mm2) | More than 6.0 |
Flexural strength (N/mm2) | More than 20.0 |
Carbonation depth (mm) | More than 2.0 |
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Kim, H.-j.; Choi, H.; Choi, H.; Lee, B.; Lee, D.; Lee, D.-E. Study on Physical Properties of Mortar for Section Restoration Using Calcium Nitrite and CO2 Nano-Bubble Water. Materials 2020, 13, 3897. https://doi.org/10.3390/ma13173897
Kim H-j, Choi H, Choi H, Lee B, Lee D, Lee D-E. Study on Physical Properties of Mortar for Section Restoration Using Calcium Nitrite and CO2 Nano-Bubble Water. Materials. 2020; 13(17):3897. https://doi.org/10.3390/ma13173897
Chicago/Turabian StyleKim, Ho-jin, Hyeonggil Choi, Heesup Choi, Bokyeong Lee, Dongwoo Lee, and Dong-Eun Lee. 2020. "Study on Physical Properties of Mortar for Section Restoration Using Calcium Nitrite and CO2 Nano-Bubble Water" Materials 13, no. 17: 3897. https://doi.org/10.3390/ma13173897
APA StyleKim, H. -j., Choi, H., Choi, H., Lee, B., Lee, D., & Lee, D. -E. (2020). Study on Physical Properties of Mortar for Section Restoration Using Calcium Nitrite and CO2 Nano-Bubble Water. Materials, 13(17), 3897. https://doi.org/10.3390/ma13173897