Experimental identification of the transition from elasticity to inelasticity from ultrasonic attenuation analyses

Author:

Barnhoorn Auke1ORCID,Verheij Jeroen1,Frehner Marcel2ORCID,Zhubayev Alimzhan3,Houben Maartje4

Affiliation:

1. Delft University of Technology, Department of Geoscience and Engineering, Delft, The Netherlands..

2. Geological Institute, ETH Zurich, Zurich, Switzerland..

3. Formerly Delft University of Technology, Department of Geoscience and Engineering, Delft, The Netherlands; presently NAM-Shell Projects and Technology, Assen, The Netherlands..

4. Utrecht University, Faculty of Geosciences, Utrecht, The Netherlands..

Abstract

The transition from recoverable elastic to permanent inelastic deformation is marked by the onset of fracturing in the brittle field. Detection of this transition in materials is crucial to predict imminent failure/fracturing. We have used an ultrasonic pulse transmission method to record the change in waveform across this transition during fracturing experiments. The transition from elastic to inelastic deformation coincides with a minimum in ultrasonic attenuation (i.e., maximum wave amplitude). Prior to this attenuation minimum, the existing microfractures close. After this minimum, new microfractures form and attenuation increases until peak stress conditions, at which point, larger fractures form leading to complete sample failure. In our experiments, velocity changes are not sensitive enough to be indicative for the transition from elastic to inelastic deformation. Analysis of attenuation, not velocity, may thus detect imminent failure in materials. Our results may help detect fracturing in borehole casings or the near-wellbore area, or they may help predict imminent release of energy by seismic rupture.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

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