Development of Soil Moisture Content and Soil Matric Suction Model Based on Field Instrumentation and Electrical Resistivity Imaging (ERI) for Highway Slopes Constructed on High Expansive Clay Soil
Abstract
:1. Introduction
2. Site Selection and Characteristics
HECS Soil (Yazoo Clay) Physical Properties
3. Methodology
4. Field Instrumentation
Soil Moisture Sensor Calibration
5. Electrical Resistivity Imaging (ERI)
6. Field Testing Results and Data Analysis
6.1. HWS 1
6.1.1. Instrumentation Layout
6.1.2. ERI Layout
6.1.3. Data Comparison
6.2. HWS 2
6.2.1. Instrumentation Layout
6.2.2. ERI Layout
6.2.3. Data Comparison
6.3. HWS 3
6.3.1. Instrumentation Layout
6.3.2. ERI Layout
6.3.3. Data Comparison
6.4. HWS 4
6.4.1. Instrumentation Layout
6.4.2. ERI Layout
6.4.3. Data Comparison
6.5. HWS 5
6.5.1. Instrumentation Layout
6.5.2. ERI Layout
6.5.3. Data Comparison
6.6. HWS 6
6.6.1. Instrumentation Layout
6.6.2. ERI Layout
6.6.3. Data Comparison
7. Data Analysis
Field Instrumentation and ERI Data
8. Model Analysis
8.1. Statistics
8.2. Validation
9. Discussion
10. Conclusions
- Based on the field instrumentation obtained results, it was observed that during the wet season, the SMS remained consistent, ranging around −208.8 psf (−10 kPa) at three depths. The soil body of the HWS is fully saturated once the SMS variation reaches an equilibrium condition with a low value.
- Based on the ERI testing results, it was observed that shallower depths had higher resistivity values due to the existence of cracks and displaced disturbed soils.
- For combined data with all the HWS, the determination coefficient was observed to be 0.66 between ERI and both SMS and VSMC (one-parameter model).
- Based on the 3D illustrative model (two-parameter model) of soil moisture and suction obtained from the field instrumentation and field ERI testing results, it was observed that the resistivity exhibited a compatible variation with soil SMS and inverse variation with VSMC.
- Based on the field data analysis, it was found that the performance of the proposed VSMC model was satisfactory (better than the SMS performance model) as the model predictions agreed well with the field instrumentation recorded data.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Nobahar, M.; Salunke, R.; Khan, M.S.; Amini, F. Development of Soil Moisture Content and Soil Matric Suction Model Based on Field Instrumentation and Electrical Resistivity Imaging (ERI) for Highway Slopes Constructed on High Expansive Clay Soil. Geotechnics 2022, 2, 671-705. https://doi.org/10.3390/geotechnics2030033
Nobahar M, Salunke R, Khan MS, Amini F. Development of Soil Moisture Content and Soil Matric Suction Model Based on Field Instrumentation and Electrical Resistivity Imaging (ERI) for Highway Slopes Constructed on High Expansive Clay Soil. Geotechnics. 2022; 2(3):671-705. https://doi.org/10.3390/geotechnics2030033
Chicago/Turabian StyleNobahar, Masoud, Rakesh Salunke, Mohammad Sadik Khan, and Farshad Amini. 2022. "Development of Soil Moisture Content and Soil Matric Suction Model Based on Field Instrumentation and Electrical Resistivity Imaging (ERI) for Highway Slopes Constructed on High Expansive Clay Soil" Geotechnics 2, no. 3: 671-705. https://doi.org/10.3390/geotechnics2030033
APA StyleNobahar, M., Salunke, R., Khan, M. S., & Amini, F. (2022). Development of Soil Moisture Content and Soil Matric Suction Model Based on Field Instrumentation and Electrical Resistivity Imaging (ERI) for Highway Slopes Constructed on High Expansive Clay Soil. Geotechnics, 2(3), 671-705. https://doi.org/10.3390/geotechnics2030033