A Simplified Theoretical Method for Estimating the Effect of Capsule Grouting Expansion Technology on Controlling Pile Deformation
Abstract
:1. Introduction
2. Predicting Soil Displacement Induced by Capsule Grouting
- The pile is simplified as an Euler–Bernoulli beam acting on a Winkler foundation.
- The soil is assumed to be incompressible.
3. Pile Deformation Induced by Capsule Grouting
4. Variation in the Proposed Method
4.1. Field Test One [38]
4.2. Field Test Two [38]
5. Parameter Analysis
5.1. Effect of Capsule Expansion Radius
5.2. Effect of Distance between Capsule and Pile
5.3. Effect of Pile Diameter
5.4. Effect of Capsule Length
5.5. Effect of Capsule Depth
5.6. Effect of Pile End Constraint
6. Conclusions
- (1)
- The expression for the lateral displacement field of soil induced by capsule grouting is obtained utilizing the image source method, wherein the cylindrical cavity expansion with finite height is transferred to a series of spherical cavity expansions. Meanwhile, the pile is considered as an Euler–Bernoulli beam on a Winkler foundation to establish a theoretical analytical framework for controlling the lateral displacement of the pile resulting from capsule grouting expansion. The reliability of the proposed method is confirmed through comparisons, demonstrating a good fit between the calculated lateral displacement of the pile and soil and their measured values.
- (2)
- The lateral displacement of the pile can be controlled by enlarging the capsule radius, with the maximum lateral displacement of the pile being proportional to the cross-sectional area of the capsule grouting. Increasing the distance between the capsule and the pile diminishes the deformation of the pile, thereby compromising the effectiveness of capsule grouting in mitigating pile deformation. Additionally, expanding the pile diameter significantly curtails the lateral displacement of the pile, albeit leading to a gradual rise in the bending moment.
- (3)
- Increasing the capsule length results in heightened lateral displacement and a broader deformation range of the pile. Concurrently, the bending moment initially increases and then decreases with the augmentation of the capsule length. In scenarios where the depth of the capsule head is 0 m, substantial lateral displacement occurs at the pile head under free end constraints, while a significant bending moment manifests at the pile head under fixed constraints. However, when the capsule depth exceeds 8 times that of the pile diameter, the deformation and bending moment of the pile remain unaffected by the constraint at the pile head. The effect of parameter variations on the pile is consistent, regardless of the end constraints imposed on the pile.
- (4)
- The theoretical analysis method framework of capsule grouting expansion is effective. Nevertheless, the following limitations require attention in further research. (a) The soil is assumed to be incompressible; (b) the nonlinear behaviors of the soil–pile interaction are not taken into consideration.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Yu, J.; Guo, J.; Zhou, J.; Hu, H.; Gong, X. A Simplified Theoretical Method for Estimating the Effect of Capsule Grouting Expansion Technology on Controlling Pile Deformation. Appl. Sci. 2024, 14, 5449. https://doi.org/10.3390/app14135449
Yu J, Guo J, Zhou J, Hu H, Gong X. A Simplified Theoretical Method for Estimating the Effect of Capsule Grouting Expansion Technology on Controlling Pile Deformation. Applied Sciences. 2024; 14(13):5449. https://doi.org/10.3390/app14135449
Chicago/Turabian StyleYu, Jianlin, Jin Guo, Jiajin Zhou, Haibo Hu, and Xiaonan Gong. 2024. "A Simplified Theoretical Method for Estimating the Effect of Capsule Grouting Expansion Technology on Controlling Pile Deformation" Applied Sciences 14, no. 13: 5449. https://doi.org/10.3390/app14135449
APA StyleYu, J., Guo, J., Zhou, J., Hu, H., & Gong, X. (2024). A Simplified Theoretical Method for Estimating the Effect of Capsule Grouting Expansion Technology on Controlling Pile Deformation. Applied Sciences, 14(13), 5449. https://doi.org/10.3390/app14135449