A New Method for Evaluating the Bearing Capacity of the Bridge Pile Socketed in the Soft Rock
Abstract
:1. Introduction
2. Research Methodology
2.1. The Calculation Method of the Vertical Fundamental Frequency of Bridge Piers
2.2. Identification of the Pier Bottom Vertical Constraint Stiffness
2.3. Calculation of the Pile Bearing Capacity
2.4. Analysis of the Bearing Capacity Coefficient’s Parameters
2.5. Fitting of the Pile Bearing Capacity Coefficient
3. Field Test and Numerical Simulation
3.1. Background Engineering
3.2. Field Test Results of the Pier’s Fundamental Vertical Frequency
3.3. Prediction of the Vertical Bearing Capacity
3.4. Finite Element Numerical Simulation
4. Results and Discussion
5. Conclusions
- (1)
- For the pier bearing capacity coefficient, the pile length, rock-socketed depth, and pile modulus have a more significant influence. The pile diameter and bearing stratum rock modulus have a smaller influence, whereas the side rock modulus has almost no impact. The bearing capacity coefficient increases with the increase of the pile length, socketed depth, and rock modulus, and it decreases with the increase of the pile diameter and pile modulus.
- (2)
- A new method for evaluating the vertical bearing capacity of a single pile is proposed. First, the analytical expression between the vertical fundamental frequency and the constraint stiffness of the pier is derived. Based on dynamic field tests, the pier frequency is measured. Then, through multiple regression, the bearing capacity coefficient model is obtained. Finally, with the design and measured data, the predicted bearing capacity of a single pile can be calculated.
- (3)
- According to the engineering example, the accuracy of the evaluation method was assessed through the finite element simulation calculation. The results showed that the error between the constraint stiffness calculated by the code and the constraint stiffness calculated by the frequency synthesis method was about 0.7%. The bearing capacity difference between the analytical solution and the finite element numerical simulation was small, and the method is accurate and effective.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
the vertical restraint stiffness of the pile foundation to the pier bottom | |
the displacement of the pier caused by the pier’s vertical translation | |
the displacement of the pier caused by the vertical deformation | |
the vertical translation amplitude | |
the vertical deformation amplitude of the pier | |
the height of the pier | |
the continuous mass of the pier | |
the vertical stiffness of the pier | |
the mass of the pier top | |
the mass of the bearing cap | |
the height of the bearing cap | |
the central axis of the pier | |
time | |
,t) | the vertical displacement on the central axis of the pier |
the kinetic energy | |
the potential energy | |
any two moments | |
the vertical vibration shape function of the pier | |
the primary coordinate function of the pier | |
the vertical displacement of the pier top | |
the fundamental frequency formed by the combination of the pier distributed mass and the vertical pier translation | |
the fundamental frequency formed by the combination of the distributed mass and the vertical deformation | |
the combination of the additional mass at the pier top and the vertical deformation | |
the combination of and the vertical translation | |
the combination of the pier cap’s mass and the vertical translation | |
the density of the pier | |
the cross-sectional area of the pier | |
the vertical fundamental frequency of the pier | |
the mass of the pier | |
, | the end resistance exertion coefficient and the lateral resistance exertion coefficient of the rock stratum |
the cross-section area of the pile end | |
the standard value of saturated uniaxial compressive strength of the rock at the pile end | |
the saturated uniaxial compressive strength of the rock stratum | |
the standard lateral resistance value of the soil layer at the pile side | |
the circumference length of the pile section | |
the length of the pile embedded in rock stratum | |
the number of rock strata | |
the number of soil layers | |
the lateral resistance exertion coefficient of the covered soil layer | |
the thickness of rock and soil layers under the cap bottom or the partial erosion line | |
the coefficient for the end bearing pile | |
the free length of the pile | |
the resistance coefficient of the rock foundation | |
the average internal friction angle of the soil layer | |
the center distance of the pile bottom | |
the diameter of the pile bottom section | |
the modulus of elasticity of pier | |
the ratio of the bearing capacity to the constraint stiffness | |
a comprehensive coefficient | |
the length of the pile | |
the diameter of the pile | |
the embedded rock elastic modulus | |
the elastic modulus of the surrounding rock | |
the socketed rock depth | |
the pier elastic modulus | |
the pending parameters |
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Type | Silty Clay | High-Weathered Argillaceous Siltstone | Medium-Weathered Argillaceous Siltstone |
---|---|---|---|
Compression modulus () | 5.42 | / | / |
Cohesion force () | 31.5 | / | / |
Friction angle ( | 18.1 | / | / |
Coefficient of friction on basis | 0.25 | 0.4 | 0.45 |
Allowable bearing capacity () | 160 | 320 | 1000 |
Standard value of soil friction resistance around the pile () | 40 | 110 | 160 |
Uniaxial compressive strength of saturated rock () | / | / | 11 |
Thickness () | 1.1 | 5.34 | 8.56 |
Parameter | Value | Unit |
---|---|---|
Density | 2549 | |
Elastic modulus | 3.25 × 1010 | |
Vertical fundamental frequency | 23.66 | |
Mass of the pier top | 82,913.87 | |
Mass of the pier cap | 39,941.62 | |
Mass of the pier | 73,513.90 | |
Pier height | 9.4 | |
Cross-section diameter | 1.5 |
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Lu, Y.; Li, D.; Jia, S.; Wang, K. A New Method for Evaluating the Bearing Capacity of the Bridge Pile Socketed in the Soft Rock. Appl. Sci. 2021, 11, 5923. https://doi.org/10.3390/app11135923
Lu Y, Li D, Jia S, Wang K. A New Method for Evaluating the Bearing Capacity of the Bridge Pile Socketed in the Soft Rock. Applied Sciences. 2021; 11(13):5923. https://doi.org/10.3390/app11135923
Chicago/Turabian StyleLu, Yao, Dejian Li, Shiwei Jia, and Kai Wang. 2021. "A New Method for Evaluating the Bearing Capacity of the Bridge Pile Socketed in the Soft Rock" Applied Sciences 11, no. 13: 5923. https://doi.org/10.3390/app11135923
APA StyleLu, Y., Li, D., Jia, S., & Wang, K. (2021). A New Method for Evaluating the Bearing Capacity of the Bridge Pile Socketed in the Soft Rock. Applied Sciences, 11(13), 5923. https://doi.org/10.3390/app11135923