Experimental Study on Dynamic Response Characteristics of RPC and RC Micro Piles in SAJBs
Abstract
:1. Introduction
2. Experimental Program
2.1. Specimen Design and Fabrication
2.2. Soil Container and Soil Parameters
2.3. Measuring Points Layout
2.4. Loading Device and Scheme
3. Experimental Results
3.1. Dynamic Characteristics
3.2. Strains Responses
3.3. Bending Moment of Piles
3.3.1. The Influence of Frequencies
3.3.2. The Influence of Seismic Waves
3.4. Deformation of Piles
3.4.1. The Influence of Frequencies
3.4.2. The Influence of Seismic Waves
4. Observations and Conclusions
- (1)
- The first and second natural frequencies of the RPC micro pile are about 4.7 Hz and 16.3 Hz, and that of RC are 3.62 Hz and 15.4 Hz, respectively. Moreover, both compactness of sand and the natural frequencies of micro piles are increased under the load of repeated white noise.
- (2)
- Compared with the action of sine waves and the action of seismic waves, the frequency of sine wave is relatively monotonous, but the frequency of the seismic wave is abundant, inducing the reverse deformation and bending moment of the pile more remarkable under the dynamic excitation load. It is also found that the dynamic response characteristics of piles under artificial wave were the most significant, which was followed by the EI-Centro wave, and then by the Kobe wave. The responses of piles under seismic wave loads are larger than those of sine waves.
- (3)
- The maximum strains of piles were observed at the depth of 4.2 D (D is the diameter of the pile). Meanwhile, the maximum bending moments of the RPC and RC pile appear at the depth of 0.64D and 0.42 D, respectively, under a dynamic excitation. The peak horizontal deformations of piles were demonstrated at the pile head.
- (4)
- Compared with the dynamic responses of the RC pile, it can be seen that the bending moments and the strain responses of RPC are larger than that of the RC pile, and the maximum increased by 40% and 98%, respectively. In addition, although the horizontal displacements of the RC pile are larger than that of the RPC pile, the increments are slight at only the range of 15%. Therefore, the RPC micro pile with steel fiber has better crack resistance, higher ductility, and flexural rigidity than that of the RC pile.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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Specimen | Diameter (mm) | Moment of Inertia I (×10−5 m4) | Modulus of Elasticity E (×104 MPa) | Relative Pile Length z (m) | Flexural Rigidity (kN·m2) | Section |
---|---|---|---|---|---|---|
RPC pile | 100 | 0.49 | 4.41 | 3.49 | 216.7 | circular |
RC(C40) pile | 3.25 | 3.78 | 159.3 |
Water Content ω (%) | Density ρ (g/cm3) | Void Ratio e | Cohesive Strength c (kPa) | Internal Friction Angle φ (°) | Cu | Poisson Ratio v |
---|---|---|---|---|---|---|
2.2 | 1.98 | 0.80 | 4 | 32 | 3.15 | 0.3 |
Case | Seismic Wave | Peak Acceleration (g) | Frequency (Hz) | Case | Seismic Wave | Peak Acceleration (g) | Frequency (Hz) |
---|---|---|---|---|---|---|---|
1 | White noise | 5 | White noise | ||||
Sine wave | 0.15 | 1Hz | Sine wave | 0.15 | 16 Hz | ||
2 | White noise | 6 | EI-Centro wave | 0.15 | |||
Sine wave | 0.15 | 2 Hz | |||||
3 | White noise | 7 | Kobe wave | 0.15 | |||
Sine wave | 0.15 | 4 Hz | |||||
4 | White noise | 8 | Artificial wave | 0.15 | |||
Sine wave | 0.15 | 8 Hz |
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Cheng, J.; Luo, X.; Zhuang, Y.; Xu, L.; Luo, X. Experimental Study on Dynamic Response Characteristics of RPC and RC Micro Piles in SAJBs. Appl. Sci. 2019, 9, 2644. https://doi.org/10.3390/app9132644
Cheng J, Luo X, Zhuang Y, Xu L, Luo X. Experimental Study on Dynamic Response Characteristics of RPC and RC Micro Piles in SAJBs. Applied Sciences. 2019; 9(13):2644. https://doi.org/10.3390/app9132644
Chicago/Turabian StyleCheng, Junfeng, Xiaoyong Luo, Yizhou Zhuang, Liang Xu, and Xiaoye Luo. 2019. "Experimental Study on Dynamic Response Characteristics of RPC and RC Micro Piles in SAJBs" Applied Sciences 9, no. 13: 2644. https://doi.org/10.3390/app9132644
APA StyleCheng, J., Luo, X., Zhuang, Y., Xu, L., & Luo, X. (2019). Experimental Study on Dynamic Response Characteristics of RPC and RC Micro Piles in SAJBs. Applied Sciences, 9(13), 2644. https://doi.org/10.3390/app9132644