Load-Settlement Behaviour Analysis Based on the Characteristics of the Vertical Loads under a Pile Group
Abstract
:1. Introduction
2. Methods
2.1. Group Transfer Functions for Pile Shafts and Pile Bases
2.2. The Back-Analysis Method Procedure and Analysis Results
2.3. Comparison of the Simplified Approach with Boundary Integral Solutions and the Elastic Approximate Approach
2.4. Comparison of Computed Results with Field-Measured Results
3. Results of the Parametric Study
3.1. Basic Performance of Large Pile Groups
3.2. Effect of the Pile Slenderness (L/D) on the Behaviour of Pile Groups
3.3. Number of Piles in a Pile Group
3.4. Effect of the Pile Spacing Ratio (S/D) on the Behaviour of the Pile Group
4. Conclusions
- (1)
- The soil–pile interface parameters a and b as described by Lee and Xiao [20,21] can be obtained using the back-analysis method proposed in this paper. Both parameters bear strong physical relationships with the stratigraphy of the soils. It is shown through field tests that the approach accurately computes the load-settlement behaviours of the single pile and the pile groups.
- (2)
- The proposed method is an efficient method for the nonlinear analysis of large pile groups, which makes the method ideally suited to small computers. There is no requirement for a computer with a large storage capacity.
- (3)
- There are significant differences between the single pile and the pile groups’ behaviours. However, there are two primary factors affecting the overall behaviours of the pile groups, which are the number of piles in the pile groups and the pile slenderness ratio, L/D.
- (4)
- Contrary to the behaviour of the long slender single piles, the soil located at the pile base plays an important role in the load-transfer mechanism of large pile groups. Due to the increasing amount of shaft interactions in large pile groups, the overall shaft resistance of pile groups is significantly reduced, and a larger proportion of the pile load is transferred to the base of the pile groups, especially under lower load levels (30–50%). From a conventional design point of view, one often designs a pile group based on single pile behaviour or a single pile test. This could sometimes be misleading since the load-transfer mechanism of the single pile differs from that of the pile groups.
- (5)
- For small pile groups, the load transfer behaviours are similar to the behaviours of single piles but for larger pile groups, such behaviours are similar to an equivalent rigid block foundation.
- (6)
- When the pile slenderness ratio increases, the load distributions for the individual piles in the pile groups become more uniform and the normalised group stiffness becomes smaller.
- (7)
- Under a normal pile spacing ratio, S/D, of 2 to 6, the shaft interaction factor is significant and it has some effects on the overall behaviours of the pile groups. Beyond this range, the interaction effects become quite small and the overall behaviours of the pile group are similar to those of isolated single piles.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
List of Notations
Ap | is the cross-sectional area of the pile |
a | is the empirical factor of the soil interface |
b | is the empirical factor of the soil interface |
is the group parameter | |
D | is the pile diameter |
Ep | is the elastic modulus of the pile |
G | is the shear modulus of the soil surrounding the pile |
Gb | is the shear modulus |
Gso | is the shear modulus of the soil at the ground surface |
Ksi | is the reciprocal of the initial stiffness |
L | is the length of the pile |
n | is the number of piles |
Pavg | is the load applied at the pile base |
Pi | is the sensing vertical load |
Psi | is the total shaft load of an individual pile |
Pbi | is the base load of an individual pile |
Pti | is the pile-head load carried by each pile |
pbf | is the ultimate base load |
is the spline-fitting function | |
Rf | is the failure ratio |
is the hyperbolic fit constant | |
ro | is the pile radius |
rm | is the radius from the pile centre to a distance at which the shear stress induced by the pile load becomes negligible |
S | is the centre-to-centre spacing |
sij | is the centre-to-centre distance between pile i and pile j |
sz | is the total displacement |
sti | is the displacement of the pile head at the different load step |
siz | is the shaft displacement caused by pile element i in a pile group |
w | is the displacement of a pile group |
Wisz | is the vertical soil displacement of the pile element i at depth z |
Wijsz | is the interactive displacement effect dependent on the adjacent pile j |
Wsz | is the elastic displacement |
Wi | is the soil displacement of pile i at the pile base |
z | is the depth of the soil |
Δsiz | is the local shear displacement |
υs | is the Poisson’s ratio of the soil |
υsb | is the Poisson’s ratio of the soil at the pile base |
λ | is the stiffness ratio |
τz | is the pile axial shear stress |
τiz | is the shaft shear stress caused by a pile element i at the shaft interface |
τult | is the asymptotic shear stress |
τf | is the failure strength of a pile–soil interface |
τjz | is the shaft shear stress at depth z |
τf(z) | is the failure strength of a pile–soil interface at depth z |
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Liu, H.; Xiao, Z.; Lee, K. Load-Settlement Behaviour Analysis Based on the Characteristics of the Vertical Loads under a Pile Group. Appl. Sci. 2022, 12, 6282. https://doi.org/10.3390/app12126282
Liu H, Xiao Z, Lee K. Load-Settlement Behaviour Analysis Based on the Characteristics of the Vertical Loads under a Pile Group. Applied Sciences. 2022; 12(12):6282. https://doi.org/10.3390/app12126282
Chicago/Turabian StyleLiu, Haijun, Zhaoran Xiao, and Kinman Lee. 2022. "Load-Settlement Behaviour Analysis Based on the Characteristics of the Vertical Loads under a Pile Group" Applied Sciences 12, no. 12: 6282. https://doi.org/10.3390/app12126282
APA StyleLiu, H., Xiao, Z., & Lee, K. (2022). Load-Settlement Behaviour Analysis Based on the Characteristics of the Vertical Loads under a Pile Group. Applied Sciences, 12(12), 6282. https://doi.org/10.3390/app12126282