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http://dx.doi.org/10.12989/gae.2018.15.3.919

Applicability of exponential stress-strain models for carbonate rocks  

Palchik, Vyacheslav (Department of Geological and Environmental Sciences, Ben-Gurion University)
Publication Information
Geomechanics and Engineering / v.15, no.3, 2018 , pp. 919-925 More about this Journal
Abstract
Stress-strain responses of weak-to-strong carbonate rocks used for tunnel construction were studied. The analysis of applicability of exponential stress-strain models based on Haldane's distribution function is presented. It is revealed that these exponential equations presented in transformed forms allow us to predict stress-strain relationships over the whole pre-failure strain range without mechanical testing of rock samples under compression using a press machine and to avoid measurements of axial failure strains for which relatively large values of compressive stress are required. In this study, only one point measurement (small strain at small stress) using indentation test and uniaxial compressive strength determined by a standard Schmidt hammer are considered as input parameters to predict stress-strain response from zero strain/zero stress up to failure. Observations show good predictive capabilities of transformed stress-stress models for weak-to-strong (${\sigma}_c$ <100 MPa) heterogeneous carbonate rocks exhibiting small (< 0.5 %), intermediate (< 1 %) and large (> 1 %) axial strains.
Keywords
stress-strain model; failure strain; uniaxial compressive strength; carbonate rocks;
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Times Cited By KSCI : 3  (Citation Analysis)
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