Model-free data-driven computational mechanics for deformation analysis of fractured rock masses

Безмодельная вычислительная механика на основе данных для анализа деформирования трещиноватых массивов горных пород
Fanding Feng, Diansen Yang, Qinghui Jiang, Yaolai Liu, Dong Liu
2026-02-01

Goodman elementsfractured rock massesmodel-free data-driven computational mechanicsnonlinear mechanical behaviorstress-strain data
: The deformation and stress distribution of fractured rock masses under external loads remain key scientific challenges, primarily due to their inherent heterogeneity, discontinuity, and anisotropy. To address this, this study proposes a model-free data-driven computational mechanics for deformation analysis of fractured rock masses, which can more accurately capture their mechanical response under external loading. This method bypasses traditional constitutive modeling by directly incorporating experimental data, including rock stress-strain data, joint normal stress-displacement data, and tangential stress-tangential displacement data. Solutions are obtained by minimizing the distance between these data points and those satisfying the conservation equations (i.e. equilibrium and geometric equations). Specifically, the fractured rock mass is regarded as a binary system consisting of rocks and joints, with the rocks represented by solid elements and the joints simulated through Goodman elements to capture discontinuous deformation behavior accurately. The validity and computational accuracy of the model-free data-driven computational mechanics for deformation analysis of fractured rock masses are verified by comparing the data-driven solution with a reference solution based on the constitutive model through typical numerical calculations. Furthermore, validation with real experimental data confirms that the method offers significant advantages in analyzing the nonlinear mechanical behavior of fractured rock masses, providing a unified and practical numerical approach for studying the deformation response of fractured rock masses.
1
A model-free data-driven computational mechanics framework is proposed to analyze deformation and stress distributions in fractured rock masses under external loading.
2
Fractured rock masses are modeled as binary rock–joint systems, using solid elements for rocks and Goodman elements to represent discontinuous joint deformation.
3
Numerical comparisons with constitutive-model reference solutions and real experimental data validate the method’s accuracy and advantages for nonlinear fractured-rock behavior.
4
Solutions minimize the distance between experimental data points and states satisfying equilibrium and geometric conservation equations.
5
The method bypasses traditional constitutive modeling by directly using rock stress–strain, joint normal stress–displacement, and tangential stress–displacement experimental data.

fractured rock masses under external loading

deformation and stress-distribution response, including nonlinear mechanical behavior and discontinuous deformation

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2026-02-01
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Fanding Feng
Diansen Yang
Qinghui Jiang
Yaolai Liu
Dong Liu
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