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Automatically adaptive stabilized finite elements and continuation analysis for compaction banding in geomaterials

Publication ,  Journal Article
Cier, RJ; Poulet, T; Rojas, S; Veveakis, M; Calo, VM
Published in: International Journal for Numerical Methods in Engineering
November 15, 2021

Under compressive creep, viscoplastic solids experiencing internal mass transfer processes can accommodate singular cnoidal wave solutions as material instabilities at the stationary wave limit. These instabilities appear when the loading rate is significantly faster than the material's capacity to diffusive internal perturbations, leading to localized failure features (e.g., cracks and compaction bands). These cnoidal waves, generally found in fluids, have strong nonlinearities that produce periodic patterns. Due to the singular nature of the solutions, the applicability of the theory is currently limited. Additionally, practical simulation tools require proper regularization to overcome the challenges that singularity induces. We focus on the numerical treatment of the governing equation using a nonlinear approach building on a recent adaptive stabilized finite element method. This automatic refinement method provides an error estimate that drives mesh adaptivity, a crucial feature for the problem at hand. We compare the performance of this adaptive strategy against analytical and standard finite element solutions. We then investigate the sensitivity of the diffusivity ratio, the parameter controlling the process, and identify multiple possible solutions with several stress peaks. Finally, we show the evolution of the spacing between peaks for all solutions as a function of that parameter.

Duke Scholars

Published In

International Journal for Numerical Methods in Engineering

DOI

EISSN

1097-0207

ISSN

0029-5981

Publication Date

November 15, 2021

Volume

122

Issue

21

Start / End Page

6234 / 6252

Related Subject Headings

  • Applied Mathematics
  • 40 Engineering
  • 09 Engineering
 

Citation

APA
Chicago
ICMJE
MLA
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Cier, R. J., Poulet, T., Rojas, S., Veveakis, M., & Calo, V. M. (2021). Automatically adaptive stabilized finite elements and continuation analysis for compaction banding in geomaterials. International Journal for Numerical Methods in Engineering, 122(21), 6234–6252. https://doi.org/10.1002/nme.6790
Cier, R. J., T. Poulet, S. Rojas, M. Veveakis, and V. M. Calo. “Automatically adaptive stabilized finite elements and continuation analysis for compaction banding in geomaterials.” International Journal for Numerical Methods in Engineering 122, no. 21 (November 15, 2021): 6234–52. https://doi.org/10.1002/nme.6790.
Cier RJ, Poulet T, Rojas S, Veveakis M, Calo VM. Automatically adaptive stabilized finite elements and continuation analysis for compaction banding in geomaterials. International Journal for Numerical Methods in Engineering. 2021 Nov 15;122(21):6234–52.
Cier, R. J., et al. “Automatically adaptive stabilized finite elements and continuation analysis for compaction banding in geomaterials.” International Journal for Numerical Methods in Engineering, vol. 122, no. 21, Nov. 2021, pp. 6234–52. Scopus, doi:10.1002/nme.6790.
Cier RJ, Poulet T, Rojas S, Veveakis M, Calo VM. Automatically adaptive stabilized finite elements and continuation analysis for compaction banding in geomaterials. International Journal for Numerical Methods in Engineering. 2021 Nov 15;122(21):6234–6252.
Journal cover image

Published In

International Journal for Numerical Methods in Engineering

DOI

EISSN

1097-0207

ISSN

0029-5981

Publication Date

November 15, 2021

Volume

122

Issue

21

Start / End Page

6234 / 6252

Related Subject Headings

  • Applied Mathematics
  • 40 Engineering
  • 09 Engineering