Enhancing Pore-Water Drainage in Coastal Soft Soils: Enzymatic Degradation and Hydraulic Performance of Straw-PLA Vertical Drains
Abstract
1. Introduction
2. Enzymatic Degradation Characteristics Test of Straw Drainage Boards
2.1. Experimental Scheme
2.2. Test Apparatus and Materials
2.3. Results and Analysis
3. Engineering Application of Straw Drainage Boards
3.1. Project Overview
3.2. Layout of Monitoring Points
3.3. Analysis of Field Test Results
4. Limitations and Discussion
5. Conclusions
- (1)
- The application of cellulase significantly reduced the water flow capacity of straw drainage boards, confirming its efficacy in promoting material degradation.
- (2)
- Under the weakly alkaline conditions characteristic of soft soil environments, alkaline protease also proved effective in accelerating the degradation process, as evidenced by a substantial decrease in the boards’ water flow capacity.
- (3)
- The combined application of cellulase and alkaline protease exhibited a notable synergistic effect. The water flow capacity of the straw drainage boards was reduced to 37.1 cm3/s, substantially shortening the degradation time and achieving remarkable degradation performance. These results highlight the potential of a multi-enzyme approach to optimize degradation rates.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Test No. | Bio-Enzyme Type | Ratio |
|---|---|---|
| S1 | none | 0 |
| S2 | cellulase | 100% |
| S3 | neutral protease | 100% |
| S4 | alkaline protease | 100% |
| S5 | acid protease | 100% |
| S6 | cellulase/neutral protease | 1:1 |
| S7 | cellulase/alkaline protease | 1:1 |
| S8 | cellulase/acid protease | 1:1 |
| Soil | ω/% | γ/(kN·) | Gs | /% | /% | |
| silt | 98.5 | 16.4 | 2.75 | 51.5 | 27.3 | 24.2 |
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Liu, F.; Zhu, J.; Wang, Y.; Zhang, H.; Xie, X.; Guo, P. Enhancing Pore-Water Drainage in Coastal Soft Soils: Enzymatic Degradation and Hydraulic Performance of Straw-PLA Vertical Drains. Water 2026, 18, 2119. https://doi.org/10.3390/w18172119
Liu F, Zhu J, Wang Y, Zhang H, Xie X, Guo P. Enhancing Pore-Water Drainage in Coastal Soft Soils: Enzymatic Degradation and Hydraulic Performance of Straw-PLA Vertical Drains. Water. 2026; 18(17):2119. https://doi.org/10.3390/w18172119
Chicago/Turabian StyleLiu, Feng, Jiancai Zhu, Yan Wang, Haiqi Zhang, Xinyu Xie, and Panpan Guo. 2026. "Enhancing Pore-Water Drainage in Coastal Soft Soils: Enzymatic Degradation and Hydraulic Performance of Straw-PLA Vertical Drains" Water 18, no. 17: 2119. https://doi.org/10.3390/w18172119
APA StyleLiu, F., Zhu, J., Wang, Y., Zhang, H., Xie, X., & Guo, P. (2026). Enhancing Pore-Water Drainage in Coastal Soft Soils: Enzymatic Degradation and Hydraulic Performance of Straw-PLA Vertical Drains. Water, 18(17), 2119. https://doi.org/10.3390/w18172119

