Experimental Investigation on the Improvement of Dredged Sludge Using Air–Booster Vacuum Preloading with Polyacrylamide Addition
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Air–Booster Vacuum Preloading System
2.3. Test Procedures
3. Results and Discussion
3.1. Discharged Water in Drainage Test
3.2. Discharged Water in Model Test
3.3. Vacuum Pressure
3.4. Surface Settlement
3.5. Water Content
3.6. Shear Strength
3.7. Soil Particle
4. Conclusions
- (1)
- Cationic polyacrylamide (CPAM) was confirmed as the appropriate additive for consolidating dredged sludge, as it not only accelerated the water discharge process but also promoted the aggregation of fine soil particles through neutralization and adsorption. In comparison with APAM or NPAM, the addition of 0.075% CPAM increased water discharge efficiency by nearly 36.4%, leading to the faster consolidation of dredged sludge in the drainage test.
- (2)
- Air–booster vacuum preloading (AVP) consolidated dredged sludge more efficiently, as it provided an additional hydraulic gradient that accelerated water discharge. However, this positive effect was highly dependent on the pressurized air pressure. Excessive pressure caused soil fracturing and the formation of airflow channels, significantly reducing the effectiveness of air–booster vacuum preloading. Conversely, insufficient pressure failed to disrupt soil particle reorientation under vacuum pressure, limiting improvements in soil permeability.
- (3)
- The combination of AVP and the CPAM addition demonstrated superior effectiveness in improving the physical and mechanical properties of dredged sludge. The pressurized groups obtained much higher efficiency in water discharge and vacuum pressure transmission than the comparison groups during testing. Compared with soil treated with traditional vacuum preloading, the soil shear strength of the pressurized groups increased by 19.2% to 60.2%, the ultimate water content decreased by 3.6% to 13.3%, and the soil’s microscopic morphology became more compact and uniform. Notably, the synergistic application of 20 kPa pressurized air and 0.075% CPAM was recommended based on the aforementioned test results.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Initial Water Content | Density | Specific Gravity | Saturation | Void Ratio | Liquid Limit | Plastic Limit |
---|---|---|---|---|---|---|
w0/% | ρ/g·cm−3 | Gs | Sr/% | e0 | wL/% | wP/% |
70.8 | 1.62 | 2.71 | 100 | 1.92 | 42.6 | 20.2 |
Group ID | Consolidation Method | CPAM Dosage (by Dry Soil Mass) | Booster Pressure (kPa) | Pressurizing Time (h) |
---|---|---|---|---|
TVP | Vacuum preloading | / | / | / |
CVP | Vacuum preloading | 0.075% | / | / |
AVP-0 | Air–booster vacuum preloading | 0.075% | 0 | 2 |
AVP-20 | Air–booster vacuum preloading | 0.075% | 20 | 2 |
AVP-40 | Air–booster vacuum preloading | 0.075% | 40 | 2 |
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Zhang, H.; Guo, L.; Tu, C. Experimental Investigation on the Improvement of Dredged Sludge Using Air–Booster Vacuum Preloading with Polyacrylamide Addition. Materials 2025, 18, 2065. https://doi.org/10.3390/ma18092065
Zhang H, Guo L, Tu C. Experimental Investigation on the Improvement of Dredged Sludge Using Air–Booster Vacuum Preloading with Polyacrylamide Addition. Materials. 2025; 18(9):2065. https://doi.org/10.3390/ma18092065
Chicago/Turabian StyleZhang, Heng, Lingfeng Guo, and Chongzhi Tu. 2025. "Experimental Investigation on the Improvement of Dredged Sludge Using Air–Booster Vacuum Preloading with Polyacrylamide Addition" Materials 18, no. 9: 2065. https://doi.org/10.3390/ma18092065
APA StyleZhang, H., Guo, L., & Tu, C. (2025). Experimental Investigation on the Improvement of Dredged Sludge Using Air–Booster Vacuum Preloading with Polyacrylamide Addition. Materials, 18(9), 2065. https://doi.org/10.3390/ma18092065