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February 28, 2026Géotechnique Letters1 citations

Thermo-elasto-plasticity and thermo-mechanical creep for energy pile systems

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MRM. RafaiTechnical University of DenmarkMTM. TafiliRuhr University BochumYDY. DongUniversity of Shanghai for Science and Technology

Key Points

  • The central aim is to enhance a thermo-plastic model to include thermally accelerated creep for energy pile systems.
  • Developed a rate-dependent thermo-plastic constitutive model
  • Implemented model into Plaxis finite-element code
  • Validated model with laboratory tests on surrounding soils
  • Validated against field test simulations
  • Inclusion of thermally accelerated creep improves irreversible pile settlement predictions
  • Volumetric contraction accumulation in surrounding soil was observed after thermal cycles
  • Distinction made between thermo-elastic, thermo-plastic, and long-term creep effects

Abstract

In this study, a newly developed rate-dependent thermo-plastic constitutive model was enhanced to incorporate thermally accelerated creep and implemented into the Plaxis finite-element code, enabling the simulation of the behaviour of a well-instrumented energy pile in multilayered soft soils under thermomechanical loads. First, the model was validated against non-isothermal laboratory tests on soils surrounding the pile, and then against simulations of field tests. The results revealed that the inclusion of thermally accelerated creep improves the prediction of irreversible pile settlement, which is primarily attributed to the accumulation of volumetric contraction in the surrounding soil after each thermal cycle. The analysis also distinguishes between drag down effects resulting from thermo-elastic and thermo-plastic behaviour, as well as those induced by long-term creep.

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Cite This Study

Rafai et al. (2026) studied this question.

synapsesocial.com/papers/69a286720a974eb0d3c016eehttps://doi.org/10.1680/jgele.25.00111
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