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Distinct Element Modeling of Uniaxial Compression Tests of Tuff-like Lithophysal Material; Using Voronoi Tessellation System

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Abstract

Uniaxial compression tests on Hydro-StoneTB® porous cubes were numerically modeled using a distinct element program (UDEC) for two-dimensional geological material simulation. Under uniaxial compression, numerical square models with varying void porosity and geometry, identical to an experimental testing, were simulated. The open-ended longitudinal openings in the experimental specimens, cubic porous Hydro-StoneTB®, were of various forms, sizes, uniformity, and distributions. UDEC's Voronoi tessellation joint generator was used to simulate the material of the experimental specimens as an assembly of discrete units interacting along their boundaries. The results showed that the numerical results from the two-dimensional numerical analysis utilizing the discrete element method, UDEC program, were consistent with the experimental data. However, when compared to the experimental values, the numerical analysis produced conservative values for both uniaxial compressive strength and Young's modulus due to the modeling of a three-dimensional material in a two-dimensional planar strain. Furthermore, regardless of void porosity or geometry, the tension (axial splitting) failure mode is the dominating failure mode of rock-like materials including voids, similar to the experimental results. It was also demonstrated that using a power relationship, two-dimensional numerical data can be converted to three-dimensional experimental results.

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Data Availability

All data that support the findings of this study are available from the corresponding author upon reasonable request.

References

  • Avar BB (2002) Numerical and experimental investigation of formation and strength properties of lithophysae-rich Tuff and analog materials. Ph.D. dissertation, University of Nevada, Las Vegas

  • BSC (Bechtel SAIC Company) (2003) Subsurface geotechnical parameters report. 800-K0C-WIS0-00400-000-00A. Bechtel SAIC Company. ACC: ENG.20040108.0001, Las Vegas, Nevada

  • Costin LS, Price RH, and Lee MY (2009) Characterization of a high lithophysal welded Tuff unit using a multi-scale approach. In: Paper presented at international conference on rock joints and jointed rock masses, Univ of Ariz, Tucson

  • Erfourth BS (2006) Characterization of the impact of spherical voids - regarding size, spatial distribution, and porosity - on engineering properties of rock and rock-like materials. M.Sc. Thesis, Montana Tech of the University of Montana

  • Hudyma N, Avar BB, Karakouzian M (2004) Compressive strength and failure modes of lithophysae-rich Tuff specimens and analog models containing cavities. Eng Geol 73:179–190. https://doi.org/10.1016/j.enggeo.2004.01.003

    Article  Google Scholar 

  • Itasca Consulting Group (2002) Itasca software–cutting edge tools for computational mechanics. Itasca Consulting Group. TIC: 252592, Minneapolis, Minnesota

  • Itasca (2011) Universal distinct element code user’s guide. Itasca Group Consulting Group, Inc

  • Nott J (2009) Tensile strength and failure criterion of analog lithophysal rock. Ph.D. Dissertation, University of Nevada, Las Vegas

  • Price RH (1983) Analysis of rock mechanics properties of volcanic Tuff units from Yucca Mountain, Nevada Test Site. Sandia National Laboratories Report, SAND82–1315. Albuquerque, NM

  • Price RH, Nimick FB, Connolly JR, Keil K, Schwartz BM and Spence SJ (1985) Preliminary characterization of the petrologic, bulk, and mechanical properties of a lithophysal zone within the Topopah Spring Member of the Paintbrush Tuff. Sandia National Laboratories, SAND84–0860. Albuquerque, NM

  • Price RH (2004) The mechanical properties of lithophysal Tuff: laboratory experiments. TDREBS-MD-000027 Rev. 00. Bechtel SAIC Company, ACC: DOC.20040506.0001, Las Vegas, Nevada

  • Rigby DB (2004) Lithophysal rock mass mechanical properties of the repository host horizon. DOE United States Government Identifier, 800-K0CSS00-00200-000-00A

  • Sammis CG, Ashby MF (1986) The failure of brittle porous solids under compressive stress states. Acta Metall 34(3):511–526. https://doi.org/10.1016/0001-6160(86)90087-8

    Article  Google Scholar 

  • Yousif OSQ, Karakouzian M, Rigby DB (2021) Impacts of void existence on mechanical behavior of Tuff-like lithophysal material. Rock Mech Rock Eng 54:1315–1330. https://doi.org/10.1007/s00603-020-02322-w

    Article  Google Scholar 

Download references

Acknowledgements

The work was supported by the U.S. Department of Energy and the Nevada System of Higher Education (NSHE).

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This research received no external funding.

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The numerical analysis was developed by MK and OY; the experimental tests were simulated by OY; the data were analyzed, and the paper was written by OY and MK; the manuscript was supervised and revised by MK; the manuscript has been read and accepted to be published by all authors.

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Correspondence to Omed S. Q. Yousif.

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Yousif, O.S.Q., Karakouzian, M. Distinct Element Modeling of Uniaxial Compression Tests of Tuff-like Lithophysal Material; Using Voronoi Tessellation System. Geotech Geol Eng 41, 319–335 (2023). https://doi.org/10.1007/s10706-022-02284-6

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  • DOI: https://doi.org/10.1007/s10706-022-02284-6

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