Effect of Wetting Conditions on the In Situ Density of Soil Using the Sand-Cone Method
Abstract
:1. Introduction
2. Density Tests Using Sand-Cone Method
2.1. Considerations in Sand-Cone Method
2.2. Test Sand and Calibration
2.3. Artificial Ground and Test Procedure
3. Results and Discussion
3.1. Effect of Moist Ground
3.2. Effect of Moist Sand
4. Conclusions
- As the water content of the compacted ground increased from 2% to 16%, the calculated volume of the test hole decreased and the dry unit weight was overestimated by up to 20%. The accumulation of moisture increased the number of voids in the test hole, and, therefore, the calculated volume was lower than the actual volume.
- For the cylindrical hole, the dry unit weight obtained was similar to the actual dry unit weight. When a sand-cone method is conducted after heavy rainfall at a site, appropriate precautions should be taken since the presence of moisture can lead to the relative compaction of the ground being overestimated. The error in the calculated density can be minimized by considering the wetting condition of the ground. The water content measured after heating in a microwave oven for 15 min was similar to that obtained after heating in a dry oven for 24 h.
- The effect of moist test sand was relatively insignificant. However, the experimental results showed that the calculated volume of the test hole decreased as the water content of the sand increased from 0% to 0.8%.
- At a moisture content of 1% (and above), the test sand clumped together, rendering the sand calibration difficult. Therefore, sand used for sand-cone tests should be dry. In humid environments, the moisture content of the sand should not exceed 0.8%.
Author Contributions
Funding
Conflicts of Interest
References
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Sieve number | 4 | 10 | 20 | 40 | 60 | 100 | 200 |
Mesh size (mm) | 4.75 | 2.00 | 0.85 | 0.425 | 0.25 | 0.15 | 0.075 |
Soil passing (%) | 100 | 100 | 99.80 | 25.60 | 1.00 | 0.60 | 0.00 |
Specific Gravity, Gs | D60 (mm) | D30 (mm) | D10 (mm) | Coefficient of Uniformity, Cu | Coefficient of Curvature, Cc | Unified Soil Classification System |
---|---|---|---|---|---|---|
2.65 | 0.62 | 0.45 | 0.31 | 2.00 | 1.06 | SP |
No.200 Passing Rate (%) | Liquid Limit, LL (%) | Plastic Index, PI (%) | Unified Soil Classification System |
---|---|---|---|
92.2 | 40.1 | 17.7 | CL |
Hole Type | Ground Water Content (%) | Depth (cm) | Volume (cm3) | Moist Unit Weight (kN/m3) | Moisture Content (%) | Dry Unit Weight γd(experiment) (kN/m3) | Dry Unit Weight γd(exact) (kN/m3) | Error kN/m3 (%) | |
---|---|---|---|---|---|---|---|---|---|
Microwave Oven | Drying Oven | ||||||||
C Y L I N D E R | 2 | 10 | 1815.52 | 12.87 | 2.44 | 2.43 | 12.56 | 12.80 | −0.24(−1.88) |
7 | 1695.46 | 14.68 | 7.10 | 7.12 | 13.70 | 13.43 | 0.27(2.01) | ||
12 | 1558.57 | 15.69 | 11.97 | 11.95 | 14.02 | 13.66 | 0.36(2.64) | ||
16 | 1465.59 | 18.40 | 16.16 | 16.13 | 15.84 | 15.08 | 0.76(5.04) | ||
2 | 15 | 2803.07 | 13.89 | 2.47 | 2.47 | 13.55 | 13.41 | 0.14(1.04) | |
7 | 2735.07 | 15.21 | 7.18 | 7.18 | 14.19 | 14.01 | 0.18(1.28) | ||
12 | 2135.43 | 17.27 | 11.90 | 11.95 | 15.42 | 15.15 | 0.27(1.78) | ||
16 | 2114.20 | 18.84 | 16.27 | 16.24 | 16.20 | 15.71 | 0.49(3.12) | ||
C O N E | 2 | 10 | 972.18 | 12.12 | 2.52 | 2.53 | 11.82 | 9.99 | 1.83(18.32) |
7 | 801.61 | 13.00 | 7.21 | 7.22 | 12.12 | 10.07 | 2.05(20.36) | ||
12 | 756.22 | 13.92 | 12.22 | 12.20 | 12.40 | 10.21 | 2.19(21.45) | ||
16 | 737.92 | 14.57 | 16.05 | 16.03 | 12.56 | 10.25 | 2.31(22.54) | ||
2 | 15 | 1539.53 | 13.08 | 2.28 | 2.24 | 12.80 | 11.18 | 1.62(14.49) | |
7 | 1222.55 | 14.12 | 7.08 | 7.07 | 13.19 | 11.25 | 1.94(17.24) | ||
12 | 1145.68 | 15.17 | 12.31 | 12.29 | 13.51 | 11.47 | 2.04(17.79) | ||
16 | 1112.74 | 15.77 | 16.37 | 16.34 | 13.55 | 11.49 | 2.06(17.93) | ||
R O O F | 2 | 10 | 1196.93 | 12.63 | 2.56 | 2.56 | 12.32 | 11.45 | 0.87(7.60) |
7 | 1171.30 | 13.95 | 7.20 | 7.18 | 13.01 | 11.51 | 1.50(13.03) | ||
12 | 1080.53 | 15.13 | 12.13 | 12.11 | 13.50 | 11.92 | 1.58(13.26) | ||
16 | 1046.12 | 17.18 | 16.18 | 16.12 | 14.79 | 12.88 | 1.91(14.83) | ||
2 | 15 | 1667.64 | 13.60 | 2.46 | 2.46 | 13.28 | 12.76 | 0.52(4.08) | |
7 | 1587.12 | 14.40 | 7.13 | 7.14 | 13.44 | 12.84 | 0.60(4.67) | ||
12 | 1486.82 | 16.91 | 12.09 | 12.05 | 15.09 | 14.27 | 0.82(5.75) | ||
16 | 1462.66 | 18.27 | 16.08 | 16.01 | 15.75 | 14.55 | 1.20(8.25) |
Moisture Condition of The Sand | Calculated Volume from the Filled Sand (cm3) | Unit Weight with Moist Sand, γd(experiment) (kN/m3) | Calibrated Unit Weight, γd (calibrated) (kN/m3) | Error (kN/m3) |
---|---|---|---|---|
0% | 2157.91 | 13.57 | 13.40 | 0.17 |
0.5% | 2129.07 | 13.76 | 0.36 | |
0.8% | 2094.37 | 13.98 | 0.58 |
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Park, S.-S.; Ogunjinmi, P.D.; Lee, H.-I.; Woo, S.-W.; Lee, D.-E. Effect of Wetting Conditions on the In Situ Density of Soil Using the Sand-Cone Method. Appl. Sci. 2021, 11, 718. https://doi.org/10.3390/app11020718
Park S-S, Ogunjinmi PD, Lee H-I, Woo S-W, Lee D-E. Effect of Wetting Conditions on the In Situ Density of Soil Using the Sand-Cone Method. Applied Sciences. 2021; 11(2):718. https://doi.org/10.3390/app11020718
Chicago/Turabian StylePark, Sung-Sik, Peter D. Ogunjinmi, Hyun-Il Lee, Seung-Wook Woo, and Dong-Eun Lee. 2021. "Effect of Wetting Conditions on the In Situ Density of Soil Using the Sand-Cone Method" Applied Sciences 11, no. 2: 718. https://doi.org/10.3390/app11020718
APA StylePark, S. -S., Ogunjinmi, P. D., Lee, H. -I., Woo, S. -W., & Lee, D. -E. (2021). Effect of Wetting Conditions on the In Situ Density of Soil Using the Sand-Cone Method. Applied Sciences, 11(2), 718. https://doi.org/10.3390/app11020718