Experimental Study on the Bearing Capacity of Gas Oil-Contaminated Coastal Sand
Abstract
:1. Introduction
2. Laboratory Investigation
2.1. Materials
2.2. Direct Shear Tests
2.3. Physical Modeling Tests
3. Test Program
4. Results and Discussion
4.1. Direct Shear Test Results
4.2. Physical Modeling Test Results
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
CBR | California bearing ratio | B | Foundation width |
USC | Unconfined compression strength | Minimum void ratio | |
Cu | Uniformity coefficient | Maximum void ratio | |
Cc | Coefficient of curvature | Maximum dry unit weight | |
CL | Lean clay | Minimum dry unit weight | |
ML | Silt | Maximum shear modulus | |
SM | Silty sand | LVDT | Linear variable differential transformer |
SP | Poorly graded sand | Bearing capacity factors | |
SC | Clayey sand | , | Shape factors |
Gs | Specific gravity |
References
- Kermani, M.; Ebadi, T. The effect of oil contamination on the geotechnical properties of fine-grained soils. Soil Sediment Contam. Int. J. 2012, 21, 655–671. [Google Scholar] [CrossRef]
- Al-Sanad, H.A.; Eid, W.K.; Ismael, N.F. Geotechnical properties of oil-contaminated Kuwaiti sand. J. Geotech. Eng. 1995, 121, 407–412. [Google Scholar] [CrossRef]
- Lee, M.; Jung, J.-Y. Pollution risk assessment of oil spill accidents in Garorim Bay of Korea. Mar. Pollut. Bull. 2015, 100, 297–303. [Google Scholar] [CrossRef] [PubMed]
- Yim, U.H.; Hong, S.; Lee, C.; Kim, M.; Jung, J.-H.; Ha, S.Y.; An, J.G.; Kwon, B.-O.; Kim, T.; Lee, C.-H.; et al. Rapid recovery of coastal environment and ecosystem to the Hebei Spirit oil spill’s impact. Environ. Int. 2019, 136, 105438. [Google Scholar] [CrossRef]
- National Geographic Information Institute. Environmental Issues and Actions. Available online: http://nationalatlas.ngii.go.kr/pages/page_2391.php (accessed on 25 September 2023).
- Kang, C.-U.; Kim, D.-H.; Khan, M.A.; Kumar, R.; Ji, S.-E.; Choi, K.-W.; Paeng, K.-J.; Park, S.; Jeon, B.-H. Pyrolytic remediation of crude oil-contaminated soil. Sci. Total. Environ. 2020, 713, 136498. [Google Scholar] [CrossRef]
- Shin, E.C.; Das, B.M. Bearing capacity of unsaturated oil-contaminated sand. Int. J. Offshore Polar Eng. 2001, 11, 220–226. [Google Scholar]
- Nasr, A.M.A. Experimental and Theoretical Studies for the Behavior of Strip Footing on Oil-Contaminated Sand. J. Geotech. Geoenviron. Eng. 2009, 135, 1814–1822. [Google Scholar] [CrossRef]
- Joukar, A.; Boushehrian, A.H. Experimental Study of Strip Footings Rested on Kerosene Oil- and Gas Oil-Contaminated Sand Slopes. Iran. J. Sci. Technol. Trans. Civ. Eng. 2020, 44, 209–217. [Google Scholar] [CrossRef]
- Abtahi, S.; Hajiani Boushehrian, A. Experimental behavior of circular foundations on oil-contaminated sand. Sci. Iran. 2020, 27, 80–87. [Google Scholar] [CrossRef]
- Al-Adly, A.I.F.; Fadhil, A.I.; Fattah, M.Y. Bearing Capacity of Isolated Square Footing Resting on Contaminated Sandy Soil. Egypt. J. Pet. 2019, 28, 281–288. [Google Scholar] [CrossRef]
- Puri, V.K. Geotechnical aspects of oil-contaminated sands. J. Soil Contam. 2000, 9, 359–374. [Google Scholar] [CrossRef]
- Nasehi, S.A.; Uromeihy, A.; Nikudel, M.R.; Javadi, A.A. Influence of Gas Oil Contamination on Geotechnical Properties of Fine and Coarse-Grained Soils. Geotech. Geol. Eng. 2016, 34, 333–345. [Google Scholar] [CrossRef]
- Ahmadi, M.; Ebadi, T.; Maknoon, R. Effects of crude oil contamination on geotechnical properties of sand-kaolinite mixtures. Eng. Geol. 2021, 283, 106021. [Google Scholar] [CrossRef]
- Khosravi, E.; Ghasemzadeh, H.; Sabour, M.R.; Yazdani, H. Geotechnical properties of gas oil-contaminated kaolinite. Eng. Geol. 2013, 166, 11–16. [Google Scholar] [CrossRef]
- Srivastava, R.K.; Pandey, V.D. Geotechnical evaluation of oil-contaminated soil. In Contaminated and Derelict Land the Proceedings of Green 2: The Second International Symposium on Geotechnics Related to the Environment Held in Krakow, Poland, September 1997; Telford: London, UK, 1998. [Google Scholar]
- Akinwumi, I.I.; Diwa, D.; Obianigwe, N. Effects of crude oil contamination on the index properties, strength and permeability of lateritic clay. Int. J. Appl. Sci. Eng. Res. 2014, 3, 816–824. [Google Scholar]
- Akinwumi, I.I.; Maiyaki, U.R.; Adubi, S.A.; Daramola, S.O.; Ekanem, B.B. Effects of waste engine oil contamination on the plasticity, strength and permeability of lateritic clay. Int. J. Sci. Technol. Res. 2014, 3, 331–335. [Google Scholar]
- Alhassan, H.M.; Fagge, S.A. Effects of crude oil, low point pour fuel oil and vacuum gas oil contamination on the geotechnical properties sand, clay and laterite soils. Int. J. Eng. Res. Appl. 2013, 3, 1947–1954. [Google Scholar]
- Khamehchiyan, M.; Charkhabi, A.H.; Tajik, M. Effects of crude oil contamination on geotechnical properties of clayey and sandy soils. Eng. Geol. 2007, 89, 220–229. [Google Scholar] [CrossRef]
- Sadiq, A.; Fattah, M.Y.; Aswad, M.F. Enhancement of the Acid Resistance of Silty Clay Using Nano-Magnesium Oxide. Materials 2023, 16, 5035. [Google Scholar] [CrossRef]
- Kererat, C. Effect of oil-contamination and water saturation on the bearing capacity and shear strength parameters of silty sandy soil. Eng. Geol. 2019, 257, 105138. [Google Scholar] [CrossRef]
- Rajabi, H.; Sharifipour, M. Influence of weathering process on small-strain shear modulus (Gmax) of hydrocarbon-contaminated sand. Soil Dyn. Earthq. Eng. 2018, 107, 129–140. [Google Scholar] [CrossRef]
- Oh, W.T.; Vanapalli, S.K. Modelling the applied vertical stress and settlement relationship of shallow foundations in saturated and unsaturated sands. Can. Geotech. J. 2011, 48, 425–438. [Google Scholar] [CrossRef]
- Oh, W.T.; Vanapalli, S.K.; Puppala, A.J. Semi-empirical model for the prediction of modulus of elasticity for unsaturated soils. Can. Geotech. J. 2009, 46, 903–914. [Google Scholar] [CrossRef]
- Vaseghi Maghvan, S.; Imam, R.; McCartney, J.S. Relative density effects on the bearing capacity of unsaturated sand. Soils Found. 2019, 59, 1280–1291. [Google Scholar] [CrossRef]
- Steensen-Bach, J.; Foged, N.; Steenfelt, J. Capillary induced stresses–fact or fiction? Eur. Conf. Soil Mech. Found. Eng. 1987, 9, 83–89. [Google Scholar]
- Vanapalli, S.K.; Mohamed, F.M. Bearing capacity of model footings in unsaturated soils. In Experimental Unsaturated Soil Mechanics; Springer: Berlin/Heidelberg, Germany, 2007; pp. 483–493. [Google Scholar]
- Uchaipichat, A. Prediction of shear strength for unsaturated soils under drying and wetting processes. Electron. J. Geotech. Eng. 2010, 15, 1087–1102. [Google Scholar]
- Lau, C.; Bolton, M. The bearing capacity of footings on granular soils. II: Experimental evidence. Geotechnique 2011, 61, 639–650. [Google Scholar] [CrossRef]
- Rajabi, H.; Sharifipour, M. Geotechnical Properties of Hydrocarbon-Contaminated Soils: A Comprehensive Review. Bull. Eng. Geol. Environ. 2019, 78, 3685–3717. [Google Scholar] [CrossRef]
- ASTM D-854-23; Standard Test Methods for Specific Gravity of Soil Solids by Water Pycnometer. ASTM International: West Conshohocken, PA, USA, 1923.
- ASTM D-2488; Standard Practice for Description and Identification of Soils (Visual-Manual Procedure). ASTM International: West Conshohocken, PA, USA, 2018.
- ASTM D-4253; Standard Test Methods for Maximum Index Density and Unit Weight of Soils Using a Vibratory Table. ASTM International: West Conshohocken, PA, USA, 2019.
- ASTM D-4254; Standard Test Methods for Minimum Index Density and Unit Weight of Soils and Calculation of Relative Density. ASTM International: West Conshohocken, PA, USA, 2016.
- ASTM D1298; Standard Test Method for Density, Relative Density, or API Gravity of Crude Petroleum and Liquid Petroleum Products by Hydrometer Method. ASTM International: West Conshohocken, PA, USA, 2023.
- ASTM D445; Standard Test Method for Kinematic Viscosity of Transparent and Opaque Liquids (and Calculation of Dynamic Viscosity). ASTM International: West Conshohocken, PA, USA, 2023.
- ASTM D86; Standard Test Method for Distillation of Petroleum Products at Atmospheric Pressure. ASTM International: West Conshohocken, PA, USA, 2023.
- ASTM D93; Standard Test Methods for Flash Point by Pensky-Martens Closed Cup Tester. ASTM International: West Conshohocken, PA, USA, 2020.
- Verdugo, R.; Ishihara, K. The steady state of sandy soils. Soils Found 1996, 36, 81–91. [Google Scholar] [CrossRef]
- Wood, F.M.; Yamamuro, J.A.; Lade, P.V. Effect of depositional method on the undrained response of silty sand. Can. Geotech. J. 2008, 45, 1525–1537. [Google Scholar] [CrossRef]
- De Beer, E. Bearing capacity and settlement of shallow foundations on sand. In Proceedings of the Symposium on Bearing Capacity and Settlement of Foundation; Duke University: Durham, NC, USA, 1965; pp. 15–33. [Google Scholar]
- Zhu, F.; Clark, J.I.; Phillips, R. Scale effect of strip and circular footings resting on dense sand. J. Geotech. Geoenviron. Eng. 2001, 127, 613–621. [Google Scholar] [CrossRef]
- Shiraishi, S. Variation in Bearing Capacity Factors of Dense Sand Assessed by Model Loading Tests. Soils Found. 1990, 30, 17–26. [Google Scholar] [CrossRef]
- Cerato, A.B.; Lutenegger, A.J. Scale effects of shallow foundation bearing capacity on granular material. J. Geotech. Geoenviron. Eng. 2007, 133, 1192–1202. [Google Scholar] [CrossRef]
- Kusakabe, O. Foundations. In Geotechnical Centrifuge Technology; Taylor, R.N., Ed.; Blackie Academic & Professional: London, UK, 1995; pp. 118–167. [Google Scholar]
- Vahedifard, F.; Robinson, J.D. Unified method for estimating the ultimate bearing capacity of shallow foundations in variably saturated soils under steady flow. J. Geotech. Geoenviron. Eng. 2016, 142, 04015095. [Google Scholar] [CrossRef]
- Oh, W.T.; Vanapalli, S.K. Scale effect of plate load tests in unsaturated soils. Int. J. Geomater 2013, 4, 585–594. [Google Scholar]
- Jia, Y.G.; Wu, Q.; Meng, X.; Yang, X.; Yang, Z.; Zhang, G. Case Study on Influences of Oil Contamination on Geotechnical Properties of Coastal Sediments in the Yellow River Delta. In Advances in Environmental Geotechnics: Proceedings of the International Symposium on Geoenvironmental Engineering, Hangzhou, China, 8–10 September 2009; Chen, Y., Zhan, L., Tang, X., Eds.; Springer: Berlin/Heidelberg, Germany, 2010; pp. 767–771. [Google Scholar] [CrossRef]
- Hernández-Mendoza, C.E.; Ramírez, P.G.; Alegría, O.C. Geotechnical Evaluation of Diesel Contaminated Clayey Soil. Appl. Sci. 2021, 11, 6451. [Google Scholar] [CrossRef]
- Esmat, Z.A.; Fadhil, A.I. Effect of relative density on the matric suction and its contribution to shear strength of unsaturated sandy soil. Appl. Res. J. 2016, 2, 134–142. [Google Scholar]
- Cui, Y.J.; Delage, P.; Alzoghbi, P. Retention and transport of a hydrocarbon in a silt. Géotechnique 2003, 53, 83–91. [Google Scholar] [CrossRef]
- Kumbhojkar, A. Numerical evaluation of Terzaghi’s Nc. J. Geotech. Eng. 1993, 119, 598–607. [Google Scholar] [CrossRef]
- Vesić, A.S. Analysis of ultimate loads of shallow foundations. J. Soil Mech. Found. Div. 1973, 99, 45–73. [Google Scholar] [CrossRef]
- Vesic, A.B. Bearing capacity of deep foundations in sand. Highway research record. Natl. Acad. Sci. 1963, 39, 112–153. [Google Scholar]
Research | Average Particle Size, D50 mm | Contamination Type | Classification (Unified) | Bearing Capacity | CBR | Friction Angle | Cohesion |
---|---|---|---|---|---|---|---|
AI-Sanad et al. (1995) [2] | 0.43 | Heavy and Light Crude Oil, Benzene, Gas Oil | SP | - | Increase * | Decrease | - |
Srivastava and Pandy (1998) [16] | 0.04 | Crude Oil | Sand | - | - | Decrease | Increase * |
Shin and Das (2001) [7] | 0.6 | Oman Crude Oil | SP | Decrease | - | Decrease | - |
Khamehchiyan et al. (2007) [20] | 0.28 | Crude Oil | SP | - | - | Decrease | Increase * |
0.14 | SM | - | - | Decrease | Increase | ||
0.01 | CL | - | - | Increase | Decrease | ||
Nasr (2009) [8] | 0.52 | Heavy Motor Oil and Light Gas oil | SP | Decrease | - | - | - |
Puri (2000) [12] | Not Reported (D10 = 0.15) | Crude Oil | SP | - | - | Decrease | - |
Kermani and Ebadi (2012) [1] | 0.018 | Crude Oil | CL | - | - | Increase | Decrease |
Khosravi et al. (2013) [15] | <0.01 | Gas oil | CL | - | - | Decrease | Increase |
Alhassan and Fagge (2013) [19] | 99% < 0.315 mm | Crude Oil | SP | - | Increase * | Shear Strength: Increase * | |
100% < 0.315 mm | LPFO | SC | Decrease | Shear Strength: Constant | |||
82% < 0.315 mm | Vacuum Gas Oil | Laterite | Increase * | Shear Strength: Increase * | |||
Akinwumi (2014a) [17] | 0.05 | Nigerian Crude Oil | Sandy Lean Clay | - | Increase * | - | - |
Akinwumi (2014b) [18] | 0.05 | - | Increase * | - | - | ||
Nasehi et al. (2015) [13] | 0.6 | Gas oil | SP | - | - | Decrease | Increase * |
0.035 | ML | - | - | Decrease | Increase | ||
0.026 | CL | - | - | Decrease | Increase | ||
Abtahi and Boushehrian (2020) [10] | 1.2 | Gas oil | SP | Decrease | - | Decrease | Increase |
Kerosene | Increase | ||||||
Kererat (2019) [22] | 0.36 | Gasoline | SM | Decrease | - | Decrease | Increase * |
Joukar and Boushehrian (2020) [9] | 1.2 | Gas oil | SP | Decrease | - | Decrease | Increase |
Kerosene | Increase | ||||||
Ahmadi and Ebadi (2021) [14] | ≈0.2 | Crude Oil | SP-SC | - | - | Decrease | Increase |
<0.2 | SC-SM | - | - | Decrease | Increase | ||
<<0.2 | CL-ML | - | - | Increase | Increase * |
Property | Standard | Value |
---|---|---|
Specific gravity, Gs | ASTM D-854 [32] | 2.7 |
Unified Soil Classification | ASTM D-2488 [33] | SP |
D10 mm | 0.115 | |
D30 mm | 0.165 | |
D50 mm | 0.17 | |
D60 mm | 0.18 | |
Uniformity coefficient, Cu | ASTM D-2488 [33] | 1.57 |
Coefficient of curvature, Cc | ASTM D-2488 [33] | 1.31 |
Maximum dry unit weight, (γd)max kN/m3 | ASTM D-4253 [34] | 13.55 |
Maximum void ratio, emax | 0.95 | |
Minimum dry unit weight, (γd)min kN/m3 | ASTM D-4254 [35] | 15.95 |
Minimum void ratio, emin | 0.66 |
Property | Standard | Value |
---|---|---|
Density in 15 °C (kN/m3) | ASTM D1298 [36] | 8.2–8.6 |
Kinematics viscosity 10−6 × m2/s (c.St) | ASTM D445 [37] | 2.0–5.5 (max) |
Fuel boiling point, F.B.P. (°C) | ASTM D86 [38] | 385 (max) |
Fuel flash point, F.F.P. (°C) | ASTM D93 [39] | 54 (min) |
Test ID | Subgrade Relative Density (%) | Gas oil Content (%) | Degree of Saturation (%) |
---|---|---|---|
Bearing Capacity Tests | |||
BC0-L | 30% | 0% | 0% |
BC5-L | 30% | 5% | 15.5% |
BC10-L | 30% | 10% | 31% |
BC15-L | 30% | 15% | 46% |
BC0-D | 70% | 0% | 0% |
BC5-D | 70% | 5% | 18% |
BC10-D | 70% | 10% | 36% |
BC15-D | 70% | 15% | 54% |
Direct Shear Tests | |||
DS0-L | 30% | 0% | 0% |
DS5-L | 30% | 5% | 15.5% |
DS10-L | 30% | 10% | 31% |
DS15-L | 30% | 15% | 46% |
DS0-D | 70% | 0% | 0% |
DS5-D | 70% | 5% | 18% |
DS10-D | 70% | 10% | 36% |
DS15-D | 70% | 15% | 54% |
Gas Oil Content (%) | Dr = 30% | Dr = 70% | ||
---|---|---|---|---|
e = 0.866 | e = 0.749 | |||
C (kPa) | φ (°) | C (kPa) | φ (°) | |
0 | 0.12 | 33.2 | 0.1 | 35.1 |
5 | 2.3 | 32.6 | 5 | 33.4 |
10 | 3.05 | 31 | 4.4 | 33 |
15 | 1.2 | 31 | 1.5 | 32.4 |
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Khezri, A.; Moradi, M.; Park, H.; Lee, D. Experimental Study on the Bearing Capacity of Gas Oil-Contaminated Coastal Sand. Appl. Sci. 2023, 13, 12450. https://doi.org/10.3390/app132212450
Khezri A, Moradi M, Park H, Lee D. Experimental Study on the Bearing Capacity of Gas Oil-Contaminated Coastal Sand. Applied Sciences. 2023; 13(22):12450. https://doi.org/10.3390/app132212450
Chicago/Turabian StyleKhezri, Ali, Mohamadali Moradi, Hongbae Park, and Daeyong Lee. 2023. "Experimental Study on the Bearing Capacity of Gas Oil-Contaminated Coastal Sand" Applied Sciences 13, no. 22: 12450. https://doi.org/10.3390/app132212450
APA StyleKhezri, A., Moradi, M., Park, H., & Lee, D. (2023). Experimental Study on the Bearing Capacity of Gas Oil-Contaminated Coastal Sand. Applied Sciences, 13(22), 12450. https://doi.org/10.3390/app132212450