A Confocal Ellipsoidal Densification Model for Estimating Improvement Effects on Soil Under Dynamic Compaction
Abstract
:1. Introduction
2. Confocal Ellipsoidal Densification Model (CEDM)
2.1. Description of CEDM
2.2. Ellipsoid Equation for CEDM
2.3. Mass Balance Equation for CEDM
2.4. Solution of Ellipsoid Parameters for Different Compacted Zones
3. Validation of Proposed CEDM
3.1. Model Test and Numerical Simulation
3.2. Results and Analysis
3.3. Proposed CEDM for Estimating Improvement Range
3.4. Discussion of Proposed CEDM for Future Research
4. Conclusions
- A CEDM composed of HCZ and WCZ was proposed for describing the subarea characteristics of improvement ranges of soil foundations under DC. Based on the confocal assumption of HCZ and WCZ ellipses, a mass balance equation considering variations in soil dry density in different compacted zones was established. Six available parameters, including radius of tamper, crater depth, initial dry density and its corresponding friction angle, and maximum dry density and its corresponding friction angle, were selected to solve the HCZ and WCZ ellipsoidal parameters (center point, major and minor axes).
- The development pattern of the crater depth obtained by FEM simulations was consistent with the measured results, and the relative errors between the simulated and measured values under different tamping times were within ±10%. In addition, the same attenuation laws for peak dynamic stresses in the vertical and horizontal directions were observed. The simulated peak dynamic stresses at specific positions were close to the measured values, and their relative errors remained consistently below 15%. These results demonstrated that the established FEM exhibits reliable capability for simulating the DC process and can be further used for verifying the applicability of the proposed CEDM.
- Because the edge of the densification ellipsoid was assumed to pass through the corner point of the tamper or crater, HCZ and WCZ ellipses tended to underestimate improvement in lateral extent in this area. However, the overall compacted zones corresponding to initial and maximum dry densities after the first, third, fifth, and seventh tampings obtained from simulations were well fitted by the predicted HCZ and WCZ ellipses, with fitting degrees of over 90%. These results indicated the feasibility of the proposed CEDM for estimating improvement ranges of soil foundations caused by DC.
- With increases in tamping times, the HCZ ellipse moved down in the vertical direction without volumetric expansion, while the WCZ ellipse expanded along both depth and lateral directions. Specifically, as the number of tampings increased from one to seven, the HCZ ellipse moved downward by 7 cm, while the major and minor axes remained unchanged. At the same time, the center point of WCZ ellipse moved downward by 10 cm, while the major axes increased from 20 cm to 23.5 cm and the minor axes increased from 12 cm to 14.5 cm. These findings indicated that successive tamping mainly contributed to WCZ expansion, with an average area expansion rate of approximately 7%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
DC | Dynamic Compaction |
CEDM | Confocal Ellipsoidal Densification Model |
HCZ | Heavy Compacted Zone |
WCZ | Weak Compacted Zone |
FEM | Finite Element Model |
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ω (%) | ρ (kg/m3) | E (kPa) | c (kPa) | φ | χ | A (kPa) | B |
---|---|---|---|---|---|---|---|
32.1 | 1850 | 5000 | 8 | 12.5 | 0.8 | 0.0002 | 0.4 |
ω (%) | ρ (kg/m3) | E (kPa) | c (kPa) | φ | Dense Degree |
---|---|---|---|---|---|
32.1 | 1850 | 5000 | 8 | 12.5 | Loose |
18.4 | 2100 | 10,000 | 8 | 30 | Dense |
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Shan, H.; Zhao, F.; Liu, X.; Sheng, K.; Xu, F. A Confocal Ellipsoidal Densification Model for Estimating Improvement Effects on Soil Under Dynamic Compaction. Appl. Sci. 2025, 15, 5292. https://doi.org/10.3390/app15105292
Shan H, Zhao F, Liu X, Sheng K, Xu F. A Confocal Ellipsoidal Densification Model for Estimating Improvement Effects on Soil Under Dynamic Compaction. Applied Sciences. 2025; 15(10):5292. https://doi.org/10.3390/app15105292
Chicago/Turabian StyleShan, Hao, Futian Zhao, Xin Liu, Ke Sheng, and Fenqiang Xu. 2025. "A Confocal Ellipsoidal Densification Model for Estimating Improvement Effects on Soil Under Dynamic Compaction" Applied Sciences 15, no. 10: 5292. https://doi.org/10.3390/app15105292
APA StyleShan, H., Zhao, F., Liu, X., Sheng, K., & Xu, F. (2025). A Confocal Ellipsoidal Densification Model for Estimating Improvement Effects on Soil Under Dynamic Compaction. Applied Sciences, 15(10), 5292. https://doi.org/10.3390/app15105292