Experimental Study on Dynamic Characteristics of Saturated Soft Clay with Sand Interlayer under Unidirectional and Bidirectional Vibration
Abstract
:1. Introduction
2. Research Contents and Methods
2.1. Sample Equipment and Materials
2.2. Comparison of Single and Bidirectional Test Principles
2.3. Test Method
3. Analysis of Test Results
3.1. Comparison of Single and Bidirectional Cyclic Vibration for Different Frequencies
3.2. Dynamic Characteristics of Soft Clay under Unidirectional and Bidirectional Cyclic Vibration
3.3. Dynamic Elastic Modulus and Damping Ratio under Different Vibration Times
4. Conclusions
- (1)
- Under the condition of unidirectional and bidirectional cyclic vibration, the area of the hysteresis loop tends to decrease with the increase in frequency, and the slope of the connecting line at both ends of the hysteresis loop tends to increase. For the same frequency, the area of the bidirectional vibration hysteresis loop and the slope of the connecting line at both ends are smaller than that of the unidirectional cyclic vibration.
- (2)
- Under the same dynamic stress ratio, the cumulative axial deformation caused by unidirectional and bidirectional vibration increases with the increasing of frequency. Under the same cycle, the dynamic pore pressure increases with the increase in vibration frequency, and the dynamic pore pressure reaches the peak at the cycle N = 1000, and gradually tends to be flat with the increase in cycle.
- (3)
- For the same frequency, the dynamic elastic modulus of the sample increases with the increase in cycles, and the damping ratio decreases, and reaches the maximum value when f = 0.5 Hz. Due to the effect of radial cyclic stress, the curves of dynamic elastic modulus and damping ratio with frequency under bidirectional vibration are just opposite to those under unidirectional vibration, indicating that radial cyclic stress can enhance the ability of soil samples to resist deformation.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Qian, J.-G.; Du, Z.-B.; Yin, Z.-Y. Cyclic degradation and non-coaxiality of soft clay subjected to pure rotation of principal stress directions. Acta Geotech. 2017, 13, 943–959. [Google Scholar] [CrossRef]
- Guo, L.; Chen, J.; Wang, J.; Cai, Y.; Deng, P. Influences of stress magnitude and loading frequency on cyclic behavior of K0-consolidated marine clay involving principal stress rotation. Soil Dyn. Earthq. Eng. 2016, 84, 94–107. [Google Scholar] [CrossRef]
- Qian, J.-G.; Wang, Y.-G.; Yin, Z.-Y.; Huang, M.-S. Experimental identification of plastic shakedown behavior of saturated clay subjected to traffic loading with principal stress rotation. Eng. Geol. 2016, 214, 29–42. [Google Scholar] [CrossRef]
- Guo, L.; Wang, J.; Cai, Y.; Liu, H.; Gao, Y.; Sun, H. Undrained deformation behavior of saturated soft clay under long-term cyclic loading. Soil Dyn. Earthq. Eng. 2013, 50, 28–37. [Google Scholar] [CrossRef]
- France, J.W.; Sangrey, D.A. Effects of Drainage in Repeated Loading of Clays. J. Geotech. Eng. Div. 1977, 103, 769–785. [Google Scholar] [CrossRef]
- Talesnick, M.; Frydman, S. Irrecoverable and Overall Strains in Cyclic Shear of Soft Clay. Soils Found. 1992, 32, 47–60. [Google Scholar] [CrossRef] [PubMed]
- Andersen, K.H.; Brown, S.F.; Foss, I.; Poul, J.H.; Rosenbrand, W.F. Effect of cyclic loading on clay behavior. In Proceedings of the Design and Construction of Offshore Structures, London, UK, 7 July 2015; pp. 75–79. [Google Scholar]
- Yasuhara, K.; Murakami, S.; Song, B.-W.; Yokokawa, S.; Hyde, A.F.L. Postcyclic Degradation of Strength and Stiffness for Low Plasticity Silt. J. Geotech. Geoenvironmental Eng. 2003, 129, 756–769. [Google Scholar] [CrossRef]
- Matsui, T.; Bahr, M.; Abe, N. Estimation of shear characteristic degradation and stress-stain relationship of satuarated clay after cyclic loading. Soil Found. 1992, 32, 161–172. [Google Scholar]
- Kavvadas, M.; Amorosi, A. A constitutive model for structured soils. Géotechnique 2000, 50, 263–273. [Google Scholar]
- Savvides, A.A.; Papadrakakis, M. A computational study on the uncertainty quantification of failure of clays with a modified Cam-Clay yield criterion. SN Appl. Sci. 2021, 3, 659. [Google Scholar]
- Seed, H.B.; Lee, K.L. Liquefaction of Saturated Sand during Cyclic Loading. J. Soil Mech. Found. Div. ASCE 1966, 92, 105–134. [Google Scholar] [CrossRef]
- Wichtmann, T.; Niemunis, A.; Triantafyllidis, T. On the influence of the polarization and the shape of the strain loop on strain accumulation in sand under high-cyclic loading. Soil Dyn. Earthq. Engine 2007, 27, 14–28. [Google Scholar] [CrossRef]
- Kammerer, A.M.; Seed, B.; Wu, J. Pore water development in liquefiable soils under bi-directional loading conditions. In Proceedings of the 13th World Conference on Earthquake Engineering, Vancouver, BC, Canada, 1–6 August 2004; pp. 697–704. [Google Scholar]
- Hyde, A.F.L.; Ward, S.J. Effect of cyclic loading on the undrained shear strength of a silty clay. Mar. Geotechnol. 1986, 6, 299–314. [Google Scholar] [CrossRef]
- Silvestri, V.; Bouteldja, M. On the consolidation response of a sensitive clay under cyclic loading. In Proceedings of the Canadian Geotechnical Conference, Saskatoon, SK, Canada, 27–29 September 1993; pp. 455–464. [Google Scholar]
- Narasimha, R.S. Behaviour of marine clay under wave type of cyclic loading. In Proceedings of the International Conference on Off-shore Mechanics and Arctic Engineering-OMAE, Cancun, Mexico, 8–13 June 2003. [Google Scholar]
- Liang, R.Y.; Ma, F. Anisotropic Plasticity Model for Undrained Cyclic Behavior of Clays. I: Theory. J. Geotech. Eng. 1992, 118, 229–245. [Google Scholar] [CrossRef]
- Rehman, Z.U.; Khalid, U.; Ijaz, N.; Mujtaba, H.; Haider, A.; Farooq, K.; Ijaz, Z. Machine learning-based intelligent modeling of hydraulic conductivity of sandy soils considering a wide range of grain sizes. Eng. Geol. 2022, 311, 106899. [Google Scholar] [CrossRef]
- Cai, Y.; Gu, C.; Wang, J.; Juang, C.H.; Xu, C.; Hu, X. One-Way Cyclic Triaxial Behavior of Saturated Clay: Comparison between Constant and Variable Confining Pressure. J. Geotech. Geoenvironmental Eng. 2013, 139, 797–809. [Google Scholar] [CrossRef]
- Idriss, I.M.; Dobry, R.; Singh, R.D. Nonlinear Behavior of Soft Clays during Cyclic Loading. J. Geotech. Eng. Div. 1978, 104, 1427–1447. [Google Scholar] [CrossRef]
- Rehman, Z.U.; Luo, F.; Wang, T.; Zhang, G. Large-Scale Test Study on the Three-Dimensional Behavior of the Gravel–Concrete Interface of a CFR Dam. Int. J. Géoméch. 2020, 20, 04020046. [Google Scholar] [CrossRef]
- Rehman, Z.U.; Zhang, G. Cyclic behavior of gravel–steel interface under varying rotational shear paths. Can. Geotech. J. 2021, 58, 305–316. [Google Scholar] [CrossRef]
- Rehman, Z.U.; Zhang, G. Shear coupling effect of monotonic and cyclic behavior of the interface between steel and gravel. Can. Geotech. J. 2018, 56, 876–884. [Google Scholar] [CrossRef]
Property | Value |
---|---|
Density ρ/(g·cm−3) | 1.82 |
Plastic limit Ip | 15.6 |
Liquid limit wL/% | 40.1 |
Dry density ρd/(g·cm−3) | 1.36 |
Moisture content ω(%) | 34.22 |
Cohesion c (kPa) | 19.5 |
Internal friction angle φ(°) | 29.74 |
ID | Frequency f/Hz | Confining Pressure σ′3/kPa | rc | Rc | N |
---|---|---|---|---|---|
D-1 | 0.2 | 100 | 0.1 | 0 | 10,000 |
D-2 | 0.5 | 100 | 0.1 | 0 | 10,000 |
D-3 | 1.0 | 100 | 0.1 | 0 | 10,000 |
D-4 | 2 | 100 | 0.1 | 0 | 10,000 |
D-5 | 5 | 100 | 0.1 | 0 | 10,000 |
S-1 | 0.2 | 100 | 0.1 | 0.05 | 10,000 |
S-2 | 0.5 | 100 | 0.1 | 0.05 | 10,000 |
S-3 | 1.0 | 100 | 0.1 | 0.05 | 10,000 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wang, S.; Cai, Y.; Zhang, L.; Pan, Y.; Chen, B.; Zhao, P.; Fang, Y. Experimental Study on Dynamic Characteristics of Saturated Soft Clay with Sand Interlayer under Unidirectional and Bidirectional Vibration. Buildings 2023, 13, 2534. https://doi.org/10.3390/buildings13102534
Wang S, Cai Y, Zhang L, Pan Y, Chen B, Zhao P, Fang Y. Experimental Study on Dynamic Characteristics of Saturated Soft Clay with Sand Interlayer under Unidirectional and Bidirectional Vibration. Buildings. 2023; 13(10):2534. https://doi.org/10.3390/buildings13102534
Chicago/Turabian StyleWang, Sui, Yuanqiang Cai, Liyong Zhang, Yongjian Pan, Bin Chen, Peng Zhao, and Yuanming Fang. 2023. "Experimental Study on Dynamic Characteristics of Saturated Soft Clay with Sand Interlayer under Unidirectional and Bidirectional Vibration" Buildings 13, no. 10: 2534. https://doi.org/10.3390/buildings13102534
APA StyleWang, S., Cai, Y., Zhang, L., Pan, Y., Chen, B., Zhao, P., & Fang, Y. (2023). Experimental Study on Dynamic Characteristics of Saturated Soft Clay with Sand Interlayer under Unidirectional and Bidirectional Vibration. Buildings, 13(10), 2534. https://doi.org/10.3390/buildings13102534