Experimental Study on Bio-Reinforcement of Calcareous Sand through Hydrochloric Acid Solution Precipitation into Cementing Solution
Abstract
:1. Introduction
2. Materials
2.1. Bacterium
2.2. Calcareous Sand
2.3. Cementing Solution and Hydrochloric Acid
3. Methods
3.1. Sand Specimen Preparation
3.2. Aqueous Solution Test
3.3. Test Procedure
3.3.1. Carbonate Precipitation Content
3.3.2. UCS
3.3.3. pH
3.3.4. Bacterial Parameter Test
3.3.5. Microanalysis Test
4. Results
4.1. Sand Specimen
4.2. Aqueous Solution Test
4.3. Microanalysis Test
5. Discussion
6. Conclusions
- (1)
- Experimental tests were conducted to reinforce calcareous sand using MICP with a cementing solution prepared in a certain concentration of HCl solution. The findings revealed a notable enhancement in the reinforcement efficacy, as evidenced by the UCS reaching 1312.6 kPa following five treatment cycles. Notably, the UCS of the sand column exhibited a remarkable increase of 1357% compared to the control group. The inclusion of hydrochloric acid substantially amplified the reinforcement effect and facilitated the widespread implementation of MICP technology.
- (2)
- The reaction between HCl and calcareous sand leads to insufficient reinforcement in the upper section of the specimen. However, aqueous solution tests demonstrated that MICP can still occur at a pH value of 5.63. The lower pH value within the specimen resulted in a more uniform distribution of CaCO3 within the reinforced region of the specimen.
- (3)
- When HCl was involved in the reaction of MICP reinforced calcareous sand, it led to the dissolution of metal ions from the calcareous sand. These metal ions were transformed into flocculated precipitates that changed the distribution pattern of calcium carbonate in the sand column specimens. As a result, the sand particles were able to bond together more quickly, resulting in a rapid reinforcement of the specimen and an increase in UCS.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Element | C&O | Ca | Mg | Al | Si | Sr | F |
Content (%) | 41.827 | 50.85 | 2.291 | 0.695 | 1.101 | 0.902 | 0.581 |
Element | Na | P | S | Fe | Sm | Cl | K |
Content (%) | 0.541 | 0.383 | 0.377 | 0.19 | 0.165 | 0.098 | 0.04 |
Group | Treatment of Cementation Solution | Volume of Bacterial Solution/mL | Volume of Testing Solution per Injection /mL |
---|---|---|---|
A0 | 1 M CaCl2 + 1 M Urea | 100 | 100 |
A1 | 1 M CaCl2 + 1 M Urea + 0.2 M HCl | ||
A2 | The effluent obtained from the mixed solution composed of 1 M CaCl2, 1 M urea, and 0.2 M HCl as it flowed through the calcareous sand specimen |
Group | Testing Solution | Volume of Testing Solution/mL | Volume of Bacterial Solution/mL |
---|---|---|---|
S0 | Deionized water | 100 | 100 |
S1 | 0.2 M HCl | ||
S2 | The effluent obtained from 0.2 M HCl as it flowed through the calcareous sand specimen | ||
S3 | Deionized water at pH = 5.63 | ||
T0 | 1 M CaCl2 + 1 M urea | 100 | 100 |
T1 | 1 M CaCl2 + 1 M Urea + 0.2 M HCl | ||
T2 | The effluent obtained from the mixed solution composed of 1 M CaCl2, 1 M urea, and 0.2 M HClas it flowed through the calcareous sand specimen | ||
T3 | 1 M CaCl2 + 1 M urea at pH = 5.63 |
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Jiang, Z.; Wei, R.; Dai, D.; Li, L.; Shang, Z.; Tang, J.; Peng, J.; Li, P. Experimental Study on Bio-Reinforcement of Calcareous Sand through Hydrochloric Acid Solution Precipitation into Cementing Solution. Materials 2023, 16, 6348. https://doi.org/10.3390/ma16196348
Jiang Z, Wei R, Dai D, Li L, Shang Z, Tang J, Peng J, Li P. Experimental Study on Bio-Reinforcement of Calcareous Sand through Hydrochloric Acid Solution Precipitation into Cementing Solution. Materials. 2023; 16(19):6348. https://doi.org/10.3390/ma16196348
Chicago/Turabian StyleJiang, Zhao, Renjie Wei, Di Dai, Liangliang Li, Zhiyang Shang, Jiahui Tang, Jie Peng, and Ping Li. 2023. "Experimental Study on Bio-Reinforcement of Calcareous Sand through Hydrochloric Acid Solution Precipitation into Cementing Solution" Materials 16, no. 19: 6348. https://doi.org/10.3390/ma16196348
APA StyleJiang, Z., Wei, R., Dai, D., Li, L., Shang, Z., Tang, J., Peng, J., & Li, P. (2023). Experimental Study on Bio-Reinforcement of Calcareous Sand through Hydrochloric Acid Solution Precipitation into Cementing Solution. Materials, 16(19), 6348. https://doi.org/10.3390/ma16196348