Behavior Characteristics of Single Batter Pile under Vertical Load
Abstract
:1. Introduction
2. Model Test
3. Test Results and Analysis
3.1. Relationship between Pile Head Displacement and Vertical Load
3.1.1. Relationship between Horizontal Displacement and Vertical Load of Each Pile Slope by Relative Density
3.1.2. Relationship between the Total Displacement and Vertical Load of Each Slope by Relative Density
3.1.3. Proposal of an Experimental Formula for the Total Displacement and Vertical Load according to Relative Density
3.2. Relationship between Vertical Displacement of Pile Head and Moment
- ϵ: Compressive strain
- E, I: Bending rigidity of model pile
- d: Radius of model pile
3.3. Changes in the Maximum Moment in Each Relative Density according to Pile Slope
3.4. Comparison with the Existing Researches
4. Conclusions
- When the relative density of the ground was medium (Dr = 53%) and high (Dr = 72%), the bearing capacity kept increasing when the angle of the pile moved from a vertical position (0°) to 20°, and then decreased gradually in a batter angle larger than 20°. In a ground with a low relative density (Dr = 31%), the bearing capacity was always less than the vertical pile except when the angle was 20°.
- The bending moment of the pile increased as the relative density of the ground and the batter angle of the pile increased. The position of the maximum bending moment came closer to the ground surface as the batter angle of the pile increased more, and it occurred at a point of 5.2~6.7 times the diameter (D) of the pile from the ground surface.
- As shown in Table 6, this study proposed an experimental formula to determine the bearing capacity using the batter angle of the pile in each relative density of the ground and the total displacement.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Scale Factor, λ = 19.54 Ration of | Iai(1989) | Experiment | Reality |
---|---|---|---|
Vertical length | λ | 1 | 19.54 |
Horizontal length | λ | 1 | 19.54 |
Density | 1 | 1 | 1 |
Stress and pressure | λ | 1 | 19.54 |
Time | λ3/4 | 1 | 9.29 |
Acceleration | 1 | 1 | 1 |
Displacement | λ3/2 | 1 | 86.36 |
Bending moment | λ3 | 1 | 7458.84 |
Strain | λ1/2 | 1 | 4.42 |
L (mm) | D (mm) | T (mm) | E (MN/cm2) | I (cm4) | EI (MN•cm2) |
---|---|---|---|---|---|
940 | 28.6 | 1.27 | 12.25 | 1.020 | 12.50 |
Property | Symbol | Value |
---|---|---|
Max. void ratio | emax | 0.79 |
Min. void ratio | emin | 0.58 |
Max. dry density | (kN/m3) | 15.78 |
Min. dry density | (kN/m3) | 13.92 |
Specific gravity | Gs | 2.54 |
Average grain size | D50 | 0.59 |
Effective grain size | D10 | 0.28 |
Uniformity coefficient | Cu | 2.50 |
Coefficient of gradation | Cc | 0.92 |
Fineness modulus | F.M. | 2.59 |
Vibrating Time (sec.) | Range of Values of Dr (%) | Avg. Dr (%) | Classification |
---|---|---|---|
2 | 29.26~32.15 | 31 | Loose |
15 | 50.51~54.70 | 53 | Medium |
90 | 69.06~75.55 | 72 | Dense |
Dr (%) | 31 | 53 | 72 |
---|---|---|---|
Batter angle (Degrees) | α = 0, 10, 20, 30, 40 | ||
Pile head-deflection | 25 mm | ||
Velocity | 1 mm/min. | ||
Load limit | 1960 N |
Relative Density | Experimental Formula (kN) |
---|---|
Low | Q = (0.00002α − 0.002)δt 2 − (0.0003α– 0.086)δt − (0.0035α − 0.2139) |
Medium | Q = (0.00001α − 0.0019)δt 2 + (0.0002α + 0.0724)δt − (0.005α − 0.2917) |
High | Q = (−0.00003α − 0.0034)δt 2 + (0.001α + 0.135)δt − (0.0076α − 0.3543) |
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Kim, J.; Yun, S.-K.; Kang, M.; Kang, G. Behavior Characteristics of Single Batter Pile under Vertical Load. Appl. Sci. 2021, 11, 4432. https://doi.org/10.3390/app11104432
Kim J, Yun S-K, Kang M, Kang G. Behavior Characteristics of Single Batter Pile under Vertical Load. Applied Sciences. 2021; 11(10):4432. https://doi.org/10.3390/app11104432
Chicago/Turabian StyleKim, Jiseong, Seong-Kyu Yun, Minsu Kang, and Gichun Kang. 2021. "Behavior Characteristics of Single Batter Pile under Vertical Load" Applied Sciences 11, no. 10: 4432. https://doi.org/10.3390/app11104432
APA StyleKim, J., Yun, S.-K., Kang, M., & Kang, G. (2021). Behavior Characteristics of Single Batter Pile under Vertical Load. Applied Sciences, 11(10), 4432. https://doi.org/10.3390/app11104432