A Novel Calculate Model of Shear Deformation and Relative Displacement of Pile–Soil Interface in Warm Frozen Soil Foundation
Abstract
:1. Introduction
2. Description of Models
2.1. Assumption
- (1)
- Vertical compression deformation of the foundation and frozen soil around the pile is considered, and radial displacement under upper load is not considered; one-dimensional uniform compression deformation occurs in the underlying permafrost soil foundation.
- (2)
- The soil settlement at the neutral plane of the composite foundation is equal to that at the neutral plane of the pile unit body, and the soil settlement between the piles is equal, and the other positions are different; On any plane, the stress and settlement of piles are the same, and the distribution of stress and settlement of soil between piles is non-uniform.
- (3)
- The soil around the pile is composed of the soil at the pile–soil interface and the soil outside the pile–soil interface. The soil at the pile–soil interface and the pile body have nonlinear slip, and the thickness of this part of the soil is ignored during calculation; Shear deformation occurs outside the interface of pile and soil.
- (4)
- The total displacement of the foundation pile in the WFS environment is composed of the displacement D of soil around the pile relative to Dp at the pile–soil interface, and the displacement Ds outside the pile–soil interface are shown in Equation (1):D = Dp + Ds
2.2. Establishment of Computational Model
2.2.1. Simplified Friction Resistance of Pile in WFS Foundation
- (1)
- (TPPR) Plastic deformation region of pile top (−1 °C ≤ T ≤ 0 °C, 0 < z ≤ x1)
- (2)
- (ER) Elastic deformation region in pile (−1 °C ≤ T ≤ 0 °C, x1 < z ≤ x3)
- (3)
- (BPPR) Plastic deformation region of pile bottom (T < −1 °C, x3 < z ≤ x4)
2.2.2. WFS Calculate Model Features
- (1)
- The model parameters are simplified.Compared to the traditional model, the calculated model only requires the soil’s physical and mechanical parameters for calculations.
- (2)
- According to the temperature zone divided by the soil regions, let calculation results is more accurate.(TPPR) Plastic deformation region of pile top (−1 °C ≤ T ≤ 0 °C, 0 < z ≤ x1)(ER) Elastic deformation region in pile (−1 °C ≤ T ≤ 0 °C, x1 < z ≤ x3)(BPPR) Plastic deformation region of pile bottom (T < −1 °C, x3 < z ≤ x4)
- (3)
- The method is based on the shearing theory and load transfer theory, modified on the basis of a series of findings from theoretical analysis, experimental research, and engineering practice.
2.3. Establishment of Basic Equation
- (1)
- Force balance of pile element, the balance equation was shown in Equation (3)simplify the Equation (3) was shown in Equation (4)
- (2)
- Force balance of soil element, the balance equation was shown in Equation (5)simplifying Equation (5) was shown in Equation (6)By substituting Equation (3) into Equations (4) and (6), the differential equation can be solved; the solved equation was shown in Equations (7) and (8)
2.4. Load Transfer Analysis of Pile–Soil System of Pile Foundation in WFS
2.4.1. Pile Displacement Calculation
- (1)
- Pile displacement calculation for TPPR
- (2)
- Pile displacement calculation for ER
- (3)
- Pile displacement calculation for BPPR
2.4.2. Soil Displacement Calculation Outside the Pile–Soil Interface
- (1)
- Soil displacement calculation for TPPR
- (2)
- Soil displacement calculation for ER
- (3)
- Soil displacement calculation for ER
3. Model Application
3.1. Case Study 1
3.2. Case Study 2
3.3. Case Study 3
4. Discussions
5. Conclusions
- (1)
- A simple and novel calculated pile displacement model for WFS foundation in different regions was established; subsequently, the pile–soil equilibrium equations under WFS foundation conditions were developed.
- (2)
- Based on the calculation equation of the WFS pile–soil system, the displacement calculation equation of WFS soil during driving under a static load was derived. With the increase of depth, pile displacement first increases and then decreases, and the maximum value appears in PR(NU) in PR(NU) and ER regions.
- (3)
- The maximum displacement occurs regions for calculate models were investigated, and the reasonability of analytical solution was verified through comparing with existed research results.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Sun, G.C.; Yao, G.; Zhang, J.M.; Li, B.; Li, J.-Q.; Lian, W.-P.; Wei, Y. Stabilized effects of L-S cement-mixed batter pile composite foundation for existed warm frozen soil subgrade. J. Mt. Sci. 2023, 20, 542–556. [Google Scholar] [CrossRef]
- Sun, G.C.; Zhang, J.M.; Dang, Y.S.; Ding, C. Microstructure and strength features of warm and ice-rich frozen soil treated with high-performance cements. J. Mt. Sci. 2019, 16, 1470–1482. [Google Scholar] [CrossRef]
- Zhang, H. The deformation prediction method of expansive soil foundation by shrinkage test. Rock Soil Mech. 1999, 20, 22. [Google Scholar]
- Anbazhagan, P.; Bajaj, K. Region-specific correlations between VVS30 and time-averaged VS and SPT-N values at different depths for the indo-Gangetic basin. Indian Geotech. J. 2020, 50, 454–472. [Google Scholar] [CrossRef]
- Guo, L.; Yu, Q.H.; Yin, N.; You, Y.; Wang, J.; Sun, Y.; Chen, K. Analysis of Expansive Two-phase closed thermosyphon-induced frost jacking of piles and foundation instability in a thawed permafrost area. Nat. Hazard. 2024, 120, 619–637. [Google Scholar] [CrossRef]
- Liu, J.K.; Wang, T.F.; Tai, B.W.; Lv, P. A method for frost jacking prediction of single pile in permafrost. Acta Geotech. 2020, 15, 455–470. [Google Scholar] [CrossRef]
- Ashutosh, K.; Sonu, K. Settlement Based Load-Bearing in a Combined Pile–Raft Foundation. Geotech. Geol. Eng. 2024, 42, 1405–1421. [Google Scholar] [CrossRef]
- Xu, Y.; Niu, X. The implementation of a Random Forest model utilizing meta-heuristic algorithms to forecast the undrained shear strength. Multiscale Multidiscip. Model. Exp. Des. 2023, 15, 455–470. [Google Scholar] [CrossRef]
- Kondner, R. Hyperbolic stress–strain response: Cohesive soils. Discussion. J. Soil Mech. Found. Div. ASCE 1963, 89, 241–242. [Google Scholar] [CrossRef]
- Anjana, B.R. Study of the Effect of Pile Type for Supporting Basal Reinforced Embankments Constructed on Soft Clay Soil. J. Mt. Sci. 2013, 20, 542–556. [Google Scholar]
- Semenova, N.P.; Malyshev, A.V.; Timoveev, A.M.; Bolshev, K.N.; Stepanov, A.A. Mathematical Model of the Temperature Control at the Base of a Building with a Slab Foundation on a Compacted Seasonally Thawing Layer. Soil Mech. Found. Eng. 2023, 60, 391–398. [Google Scholar] [CrossRef]
- Abzhalimov, R.S. Hypothesis concerning distribution of normal forces of frost heaving across the lower surface of solidly frozen soil layers beneath foundations. Soil Mech. Found. Eng. 2004, 41, 27–33. [Google Scholar] [CrossRef]
- Zhao, X.Y.; Mao, X.S.; Wu, Q.; Huang, W.; Wang, Y. Study on Shear Characteristics of Interface between Frozen Soil and Pile during Thawing Process in Permafrost Area. Adv. Civ. Eng. 2022, 2022, 1755538. [Google Scholar] [CrossRef]
- Li, L.; Deng, Y.S. Strengthening mechanism of plum blossom pile composite foundation. Acta Geotech. 2023, 21, 875–886. [Google Scholar] [CrossRef]
- Wang, H.L.; Zhang, J.M.; Wei, S.C.; Sun, Z.; Zhang, H. Experimental and numerical interpretation on composite foundation consisting of soil-cement column within warm and ice-rich frozen soil. J. Mt. Sci. 2023, 21, 313–321. [Google Scholar] [CrossRef]
- Tang, L.; Yang, L.; Wang, X.; Yang, G.; Ren, X.; Li, Z.; Li, G. Numerical analysis of frost heave and thawing settlement of the pile–soil system in degraded permafrost region. Environ. Earth Sci. 2021, 80, 693–712. [Google Scholar] [CrossRef]
- Li, Q.; Zhang, Y.; Chen, C.; Wen, M.; Guan, W.; Duan, W. Dynamic response of a large-diameter end-bearing pile in permafrost. Sci. Rep. 2024, 14, 582–598. [Google Scholar] [CrossRef]
- Abdulghader, A.; Mohammad, R. A Quick Approach for Estimating Load Transfer of Conventional and Helical Piles in Ice-Rich Frozen Soils. Geotech. Geol. Eng. 2021, 39, 2927–2944. [Google Scholar] [CrossRef]
- Kumar, S.; Kumar, A. Effect of infiltration on single-pile and monopile-raft foundation embedded in unsaturated sand. Int. J. Geomech. 2023, 23, 04022288. [Google Scholar] [CrossRef]
- Huang, Y.; Zhuang, X.; Wang, P.; Zong, Z. Axial Behavior of Pressure Grouted Helical Piles Installed in Marine Soft Clay Based on Full-Scale Field Tests. Geotech. Geol. Eng. 2022, 40, 5799–5812. [Google Scholar] [CrossRef]
- Lv, Y.; Zhang, D.; Li, P.; Zheng, C. A Theoretical Analysis of the Vertical Shearing Mechanism of the H-Pile. Soil Mech. Found. Eng. 2015, 52, 122–130. [Google Scholar] [CrossRef]
- Yoo, W.K.Y.; Kim, B.-I.I.; Cho, W.J. Model Test Study on the Behavior of Geotextile-Encased Sand Pile in Soft Clay Ground. KSCE J. Civ. Eng. 2015, 19, 592–601. [Google Scholar] [CrossRef]
- Wang, Z.; Xie, X.; Wang, J. A new nonlinear method for vertical settlement prediction of a single pile and pile groups in layered soils. Comput. Geotech. 2012, 45, 118–126. [Google Scholar] [CrossRef]
- Aoki, N.; Velloso, D.D.A. An approximate method to estimate the bearing capacity of piles. In Proceedings of the 5th Pan-American Conference of Soil Mechanics and Foundation Engineering, Buenos Aires, Argentina, 17–22 November 1975; Volume 1, pp. 367–376. Available online: https://www.researchgate.net/publication/291797985 (accessed on 1 March 2017).
- Poulos, H.G.; Davis, A.J. Foundation design for the emirates twin towers, Dubai. Can. Geotech. J. 2005, 42, 716–730. [Google Scholar] [CrossRef]
- Yang, L.-G.; Ji, W.-D.; Zhang, Y.-T.; Ren, Q.-W.; Shen, R.-T. Analysis of Expansive Earth Pressure of Pile Foundation under Repeated Immersionl. Int. J. Civ. Eng. 2023, 21, 875–886. [Google Scholar] [CrossRef]
- Lin, C.; Liu, Q.; Su, Y.; Yue, C.; Zeng, L. Load transfer of the disconnected pile. Acta Geotech. 2024, 39, 2927–2944. [Google Scholar] [CrossRef]
- Zhuang, X.R.; Zhao, H. Numerical analyses of pile performance in laterally spreading frozen ground crust overlying liquefiable soils. Earthq. Eng. Eng. Vib. 2018, 17, 491–499. [Google Scholar] [CrossRef]
- Rajashree, S.S.; Sitharam, T.G. Nonlinear finite element modeling of batter piles under lateral load. J. Geotech. Geoenvironmental Eng. ASCE 2001, 127, 604–612. [Google Scholar] [CrossRef]
- Wang, J.; Jia, K.; Rafique, R.; Guo, L.; Yu, Q.; Yue, Y.; Yuan, C. Changes of backfill soil of tower foundation in the permafrost regions with warm ice-rich frozen soil on the Qinghai–Tibet Plateau. Environ. Earth Sci. 2016, 75, 1416–1426. [Google Scholar] [CrossRef]
- Mahdy, M. On the Impact of Soil Density on Soil Reaction and Structural Responses. Arab. J. Sci. Eng. 2022, 47, 4347–4361. [Google Scholar] [CrossRef]
- Xu, J.J.; Xu, X.; Yao, W.J. New calculation method for the settlement of long-short-pile composite foundation based on virtual soil-pile model. Arab. J. Geosci. 2022, 15, 870–886. [Google Scholar] [CrossRef]
- Armaleh, S.; Desai, C.S. Load-deformation response of axi-ally loaded piles. J. Geotech. Eng. 1987, 113, 1483–1500. [Google Scholar] [CrossRef]
- Yan, M.; Guo, S.; Zhang, H.; Song, X.; Xiao, H. Investigation on Load Transfer in Geosynthetic-Reinforced Pile-Supported Embankments. Indian Geotech. J. 2024, 39, 2927–2944. [Google Scholar] [CrossRef]
- Bohn, C.; Lopes dos Santos, A.; Frank, R. Development of axial pile load transfer curves based on instrumented load tests. J. Geotech. Geoenvironmental Eng. 2017, 143, 04016081. [Google Scholar] [CrossRef]
- Hirayama, H. Load-settlement analysis for bored piles using hyperbolic transfer functions. Soils Found. 1990, 30, 55–64. [Google Scholar] [CrossRef]
- Liu, J.; Xiao, H.B.; Tang, J.; Li, Q.S. Analysis of load-transfer of single pile in layered soil. Comput. Geotech. 2004, 31, 127–135. [Google Scholar] [CrossRef]
- Zhang, Q.Q.; Zhang, Z.M.; He, J.Y. A simplified approach for settlement analysis of single pile and pile groups considering interaction between identical piles in multilayered soils. Comput. Geotech. 2010, 37, 969–976. [Google Scholar] [CrossRef]
- Bazaraa, A.R.; Kurkur, M.M. N-values used to predict set-tlements of piles in Egypt. In Use of In Situ Tests in Geotechnical Engineering; ASCE: Reston, VA, USA, 1986; pp. 462–474. [Google Scholar]
- Han, F.; Salgado, R.; Prezzi, M.; Lim, J. Shaft and base resistance of non-displacement piles in sand. Comput. Geotech. 2017, 83, 184–197. [Google Scholar] [CrossRef]
- Zhang, L.J.; Wu, X.; Zhang, Y.G.; Xie, Y. Analysis of swelling characteristics of the original expansive soils without loads. Hydrogeol. Eng. Geol. 2015, 42, 96–100. [Google Scholar] [CrossRef]
- Wang, Z.; Yang, J.X.; Kuang, J.J.; An, J.Y.; Luo, Y.D. Application of filter paper method in field measurement of matric suction. J. Geotech. Eng. 2003, 25, 405–408. [Google Scholar]
- Fleming WGK A new method for single pile settlement prediction and analysis. Geotechnique 1992, 42, 411–425. [CrossRef]
- Horikoshi, K.; Randolph, M.F. On the definition of raft—Soil stiffness ratio for rectangular rafts. Géotechnique 1997, 47, 1055–1061. [Google Scholar] [CrossRef]
- Azzam, W.R.; Basha, A.M. Utilization of micro-piles for improving the sub-grade under the existing strip foundation: Experimental and numerical study. Innov. Infrastruct. Solut. 2018, 3, 44. [Google Scholar] [CrossRef]
- Sakr, M.A.; Nazir, A.K.; Azzam, W.R.; Sallam, W.F. Behavior of grouted single screw piles under inclined tensile loads in sand. Innovative Infrastructure Solutions. Electron. J. Geotech. Eng. EJGE 2016, 2, 571–591. Available online: https://www.researchgate.net/publication/2921312070 (accessed on 1 March 2017).
- Dey, A.; Basudhar, P.K. Bearing capacity of surface footings on reinforced sandy bed: A revised regression model. Indian Geo-Tech. J. 2022, 52, 448–462. [Google Scholar] [CrossRef]
- Zhao, Y.; Mao, X.; El Naggar, M.H.; Li, W. Characteristics of Resilient Modulus of Weathered Phylite Subgrade during Saturation Process. J. Transp. Eng. Part B Pavements 2022, 148, 04022027. [Google Scholar] [CrossRef]
Pile Length (m) | Pile Diameter (m) | Stratum Depth (m) | Stratum Description | Soil Type | Shear Parameters | γ | |
---|---|---|---|---|---|---|---|
C (kPa) | φ (°) | (kN/m3) | |||||
20 | 1.0 | 0–2, [0–x1] | WFS | Silty Clay | 2 | 17 | 18.1 |
2–6, [x1–x2] | PR(NU) | Gravel-bearing Clay | 22 | 28 | 18.6 | ||
6–10, [x2–x3] | PR(ND) | 24 | 30 | 18.6 | |||
10–20, [x3–x4] | UL | Weathered Mudstone | 20 | 40 | 22.0 | ||
18 | 0.8 | 0–1.5, [0–x1] | WFS | Silty Clay | 2 | 17 | 18.1 |
1.5–5, [x1–x2] | PR(NU) | Gravel-bearing Clay | 22 | 28 | 18.6 | ||
5–10, [x2–x3] | PR(ND) | 24 | 30 | 18.6 | |||
10–18, [x3–x4] | UL | Weathered Mudstone | 20 | 40 | 22.0 | ||
16 | 0.6 | 0–1, [0–x1] | WFS | Silty Clay | 2 | 17 | 18.1 |
1–4, [x1–x2] | PR(NU) | Gravel-bearing Clay | 22 | 28 | 18.6 | ||
5–8, [x2–x3] | PR(ND) | 24 | 30 | 18.6 | |||
8–16, [x3–x4] | UL | Weathered Mudstone | 20 | 40 | 22.0 |
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. |
© 2024 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
Sun, G.; Gu, L.; Li, L.; Huo, Y.; Wang, Z.; Dang, H. A Novel Calculate Model of Shear Deformation and Relative Displacement of Pile–Soil Interface in Warm Frozen Soil Foundation. Buildings 2024, 14, 1459. https://doi.org/10.3390/buildings14051459
Sun G, Gu L, Li L, Huo Y, Wang Z, Dang H. A Novel Calculate Model of Shear Deformation and Relative Displacement of Pile–Soil Interface in Warm Frozen Soil Foundation. Buildings. 2024; 14(5):1459. https://doi.org/10.3390/buildings14051459
Chicago/Turabian StyleSun, Gaochen, Lijun Gu, Long Li, Yufan Huo, Zhengzhong Wang, and Hongzu Dang. 2024. "A Novel Calculate Model of Shear Deformation and Relative Displacement of Pile–Soil Interface in Warm Frozen Soil Foundation" Buildings 14, no. 5: 1459. https://doi.org/10.3390/buildings14051459
APA StyleSun, G., Gu, L., Li, L., Huo, Y., Wang, Z., & Dang, H. (2024). A Novel Calculate Model of Shear Deformation and Relative Displacement of Pile–Soil Interface in Warm Frozen Soil Foundation. Buildings, 14(5), 1459. https://doi.org/10.3390/buildings14051459