Sensitivity Analysis of Modified Cam-Clay Model Parameters for Energy Piles in Coastal Soft Clay

Geothermal energy piles (GEPs) synergistically integrate structural load-bearing with subsurface heat exchange, yet their deployment in marine soft clay prevalent along China’s eastern coast introduces complex thermo-hydro-mechanical (THM) challenges. Although the Modified Cam-Clay (MCC) model is extensively employed for such soils, regional parameter variability and quantitative sensitivity to energy pile performance remain insufficiently resolved. This study establishes a three-dimensional finite element model using COMSOL Multiphysics and conducts systematic sensitivity analysis by perturbing key MCC parameters (M, λ, and κ) within ±20% and ±40% around benchmark values for Shanghai marine soft clay. Results demonstrate that the compression index λ dominates pile head settlement control, with a ±40% perturbation inducing variations up to 0.7 mm—over five times more sensitive than M or κ—whereas all parameters exhibit negligible influence (<0.5%) on thermal exchange performance. Comparative analysis further reveals significant regional disparities, with Shanghai soft clay showing notably higher λ (0.29) and lower M (0.721) than Fuzhou, Shenzhen, and other coastal regions. Accordingly, for settlement-critical designs, λ should preferentially be determined from high-quality undisturbed sampling. Conservative λ values are to be used where uncertainties remain, laying a rigorous foundation for parameter-testing procedures and safety-factor calibration within GEP design.

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Publication Details

Journal
Energies
Published
2026-09-15
DOI
https://doi.org/10.3390/en19184359
Primary Topic
Geothermal Energy Systems and Applications
Type
article
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Sensitivity Analysis of Modified Cam-Clay Model Parameters for Energy Piles in Coastal Soft Clay

Zhichang Yuan, Zichuan Wang, Zhaowang Zhu, Pengju Qin et al.
Energies
Geothermal Energy Systems and Applications
article

Sensitivity Analysis of Modified Cam-Clay Model Parameters for Energy Piles in Coastal Soft Clay

Zhichang Yuan, Zichuan Wang, Zhaowang Zhu, Pengju Qin, Chenxiao Hu
article en

Abstract

Geothermal energy piles (GEPs) synergistically integrate structural load-bearing with subsurface heat exchange, yet their deployment in marine soft clay prevalent along China’s eastern coast introduces complex thermo-hydro-mechanical (THM) challenges. Although the Modified Cam-Clay (MCC) model is extensively employed for such soils, regional parameter variability and quantitative sensitivity to energy pile performance remain insufficiently resolved. This study establishes a three-dimensional finite element model using COMSOL Multiphysics and conducts systematic sensitivity analysis by perturbing key MCC parameters (M, λ, and κ) within ±20% and ±40% around benchmark values for Shanghai marine soft clay. Results demonstrate that the compression index λ dominates pile head settlement control, with a ±40% perturbation inducing variations up to 0.7 mm—over five times more sensitive than M or κ—whereas all parameters exhibit negligible influence (<0.5%) on thermal exchange performance. Comparative analysis further reveals significant regional disparities, with Shanghai soft clay showing notably higher λ (0.29) and lower M (0.721) than Fuzhou, Shenzhen, and other coastal regions. Accordingly, for settlement-critical designs, λ should preferentially be determined from high-quality undisturbed sampling. Conservative λ values are to be used where uncertainties remain, laying a rigorous foundation for parameter-testing procedures and safety-factor calibration within GEP design.

EnergiesVol. 19(18)
Taiyuan University of Technology (CN)
Life below water
Openalex Percentile: Top 29%
Geothermal Energy Systems and Applications
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