Model Test on Thermo-Mechanical Behavior of Pure Friction Piles Under Cyclic Temperature

Frictional energy piles are a more desirable form of shallow geothermal energy utilization. A pure friction pile condition cannot be achieved in field tests. In this study, foam was placed beneath the model pile tip to weaken the end-bearing resistance. The effects of different cyclic temperature patterns (including cyclic path, external load, and variable temperature duration) on the bearing characteristics of pure friction energy piles are investigated by conducting model tests in a self-designed model box, and the variation patterns of pile stress–strain and pile-top displacement are measured. The results show the following: (1) Under no load, the displacement of the pile top changes with temperature; each round of temperature change produces a partial irrecoverable displacement, and the pile maintains a raised state at the end of both rounds with no stress accumulation. (2) Under the combined action of working load and cyclic temperature, the pile strain reaches its peak and then partially rebounds. Thermal stress accumulates progressively with increasing cycle numbers, and after the cycling ends, an irrecoverable settlement displacement (0.52% D) remains at the pile top and continues to increase. (3) The temperature cycle caused the soil volume to shrink and decreased the shear strength of the pile–soil interface, resulting in a decrease in the ultimate bearing capacity of the test pile compared to the initial state.

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Publication Details

Journal
Applied Sciences
Published
2026-08-24
DOI
https://doi.org/10.3390/app16178408
Primary Topic
Geothermal Energy Systems and Applications
Type
article
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Model Test on Thermo-Mechanical Behavior of Pure Friction Piles Under Cyclic Temperature

Lei Jin, Wangjing Yao, Binhui Lu, Zhe Wang et al.
Applied Sciences
Geothermal Energy Systems and Applications
article

Model Test on Thermo-Mechanical Behavior of Pure Friction Piles Under Cyclic Temperature

Lei Jin, Wangjing Yao, Binhui Lu, Zhe Wang, Chenchen Wang, Hongli Zhou, Wenjing Si
article en

Abstract

Frictional energy piles are a more desirable form of shallow geothermal energy utilization. A pure friction pile condition cannot be achieved in field tests. In this study, foam was placed beneath the model pile tip to weaken the end-bearing resistance. The effects of different cyclic temperature patterns (including cyclic path, external load, and variable temperature duration) on the bearing characteristics of pure friction energy piles are investigated by conducting model tests in a self-designed model box, and the variation patterns of pile stress–strain and pile-top displacement are measured. The results show the following: (1) Under no load, the displacement of the pile top changes with temperature; each round of temperature change produces a partial irrecoverable displacement, and the pile maintains a raised state at the end of both rounds with no stress accumulation. (2) Under the combined action of working load and cyclic temperature, the pile strain reaches its peak and then partially rebounds. Thermal stress accumulates progressively with increasing cycle numbers, and after the cycling ends, an irrecoverable settlement displacement (0.52% D) remains at the pile top and continues to increase. (3) The temperature cycle caused the soil volume to shrink and decreased the shear strength of the pile–soil interface, resulting in a decrease in the ultimate bearing capacity of the test pile compared to the initial state.

Applied SciencesVol. 16(17)
Research Institute of Highway (CN), Zhejiang University of Water Resource and Electric Power (CN), Zhejiang University of Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 27%
Geothermal Energy Systems and Applications
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