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The physics of desiccation cracks 2: Modeling and prediction of the crack patterns

Publication ,  Journal Article
Chen, R; Lindqwister, W; Wu, F; Mielniczuk, B; Hueckel, T; Veveakis, M
Published in: Geomechanics for Energy and the Environment
September 1, 2023

This paper extends the experimental results of our companion paper by modeling and predicting the onset and pattern formation of desiccation cracks in geomaterials (Ruoyu et al., 2023). Thin-layer silt samples in controlled atmospheric conditions were tested to obtain the surface strain maps with the digital image correlation (DIC) method during dehydration. Support experiments, including consolidation and displacement-controlled triaxial tests, were conducted for the properties of geomaterials. These experimental results were used to validate a viscoplastic theoretical model by comparing cracks and singularities locations that distribute following the Cnoidal wave pattern. A critical value exists in the viscoplastic model that determines the number of singularities, which accurately predicts the number of cracks in the experiment. The critical values contain two crucial parameters: rate sensitivity and λ. Rate sensitivity describes the rate-dependent stress–strain relation, while λ shows the ability of pore pressure redistribution under the external mechanical loading rate. These results provide a new view to analyze the desiccation cracks considering the rate-dependent viscoplasticity.

Duke Scholars

Published In

Geomechanics for Energy and the Environment

DOI

EISSN

2352-3808

Publication Date

September 1, 2023

Volume

35

Related Subject Headings

  • 4019 Resources engineering and extractive metallurgy
  • 3705 Geology
  • 0905 Civil Engineering
  • 0403 Geology
 

Citation

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Chen, R., Lindqwister, W., Wu, F., Mielniczuk, B., Hueckel, T., & Veveakis, M. (2023). The physics of desiccation cracks 2: Modeling and prediction of the crack patterns. Geomechanics for Energy and the Environment, 35. https://doi.org/10.1016/j.gete.2023.100489
Chen, R., W. Lindqwister, F. Wu, B. Mielniczuk, T. Hueckel, and M. Veveakis. “The physics of desiccation cracks 2: Modeling and prediction of the crack patterns.” Geomechanics for Energy and the Environment 35 (September 1, 2023). https://doi.org/10.1016/j.gete.2023.100489.
Chen R, Lindqwister W, Wu F, Mielniczuk B, Hueckel T, Veveakis M. The physics of desiccation cracks 2: Modeling and prediction of the crack patterns. Geomechanics for Energy and the Environment. 2023 Sep 1;35.
Chen, R., et al. “The physics of desiccation cracks 2: Modeling and prediction of the crack patterns.” Geomechanics for Energy and the Environment, vol. 35, Sept. 2023. Scopus, doi:10.1016/j.gete.2023.100489.
Chen R, Lindqwister W, Wu F, Mielniczuk B, Hueckel T, Veveakis M. The physics of desiccation cracks 2: Modeling and prediction of the crack patterns. Geomechanics for Energy and the Environment. 2023 Sep 1;35.
Journal cover image

Published In

Geomechanics for Energy and the Environment

DOI

EISSN

2352-3808

Publication Date

September 1, 2023

Volume

35

Related Subject Headings

  • 4019 Resources engineering and extractive metallurgy
  • 3705 Geology
  • 0905 Civil Engineering
  • 0403 Geology