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TECHNOLOGICAL MINERALOGY
Название Study on changes in the porosity structure of rocks at different loading stages
DOI 10.17580/or.2019.03.06
Автор Vaisberg L. A., Kameneva E. E.
Информация об авторе

REC «Mekhanobr-Tekhnika» (St. Petersburg, Russia):

Vaisberg L. A., Scientific Advisor, Doctor of Engineering Sciences, Professor, Academician of the Russian Academy of Sciences

 

Petrozavodsk State University (Petrozavodsk, Russia):
Kameneva E. E., Associate Professor, Candidate of Engineering Sciences, Senior Researcher, elena.kameneva@mail.ru

Реферат

Granite and gabbro-diabase samples are used to study the effects occurring in rocks with different texture, structure and porosity under compressive loads corresponding to approximately 10–90% of the expected compressive strength. The study is performed using X-ray micro-tomography (X-ray micro-CT). It has been established that, at loads corresponding to the specified range, plastic strains occur in the rocks, leading to irreversible changes in the volume of the samples after removal of the load. The change in volume is most pronounced in porous rocks (granite) and is less significantly manifested in dense rock (gabbro-diabase). At the initial loading stage (~10–40% of the expected compressive strength), the nature of the strain in the rocks studied shows no fundamental differences: the rock is compacted, which is accompanied by a decrease in the volume of the pore space and in the number of pores. A further increase in the load leads to decompaction of granite samples, which is due to an increase in the total porosity and pore size through combination of small differences into larger ones. In gabbro-diabase specimens, the compaction occurs throughout the entire range of loads studied. An increase in the volume of granite samples under increasing loads is accompanied not only by an increase in the volume of the pore space, but also by deformations of the mineral substance: the microcline, biotite and ore mineral buildups are compacted and the aggregates of plagioclase and quartz grains increase in volume.
The work was carried out with the support of the Russian Science Foundation (project No.17-79-30056).

Ключевые слова Granite, gabbro-diabase, compressive load, strain, pore space structure, X-ray computed microtomography
Библиографический список

1. Revnivtsev V. I., Kostin I. M., Zarogatskiy L. P., Gaponov G. V., Yashin V. P., Khopunov E. A., Finkelshteyn G. A. Selective destruction of minerals. Moscow: Nedra, 1988. 286 p.
2. Rzhevskiy V. V., Novik V. Ya. Fundamentals of rock physics. Moscow: Nedra, 1978. 390 p.
3. Kadomtsev A. G., Damaskinskaya E. E., Kuksenko V. S. Features of granites destruction under various conditions of deformation. Fizika Tverdogo Tela. 2011. Vol. 53, Iss. 9. pp. 1777–1782.
4. Betekhtin V. F., Kadomtsev A. G. The relationship of materials destruction kinetics with the evolution of microscopic pores and cracks. XXI St. Petersburg readings on strength problems. On the 100th anniversary of the birth of L. M. Kachanov and Yu. N. Rabotnov: collection of materials. St. Petersburg, 15–17 April 2014. St. Petersburg: Solo, 2014. pp. 15–17.
5. Vaisberg L. A., Kameneva E. Ye., Pimenov Yu. G., Sokolov D. I. Gneissogranite pore space structure study by the X-ray tomography method. Obogashchenie Rud. 2013. No. 3. pp. 37–40.
6. Kuksenko V. S., Naginaev K. E., Savel`ev V. N. Acoustic emission method of crack formation registration in real structures. Deformatsiya i Razrushenie Materialov. 2009. No. 9. pp. 45–48.
7. Kuksenko V. S., Sultonov U. Kinetics of microcracks accumulation in mechanically loaded rocks. Physics and mechanics of rock destruction. Frunze: Ilim, 1983. pp. 45–51.
8. Yakushina O. A., Ozhogina E. G., Khozyainov M. S. Microtomography of technogeneous mineral matter. Vestnik of the Institute of Geology of the Komi Science Centre UB RAS. 2015. No. 11. pp. 38–43.
9. Yakushina O. A., Khozyainov M. S. Study of ores and rocks by X-ray tomography (technological mineralogy). Progressive methods of beneficiation and complex processing of natural and technogenic mineral raw materials (Plaksin`s readings–2014). Almaty: Сenter of Earth sciences, metallurgy and benefication, 2014. pp. 593–594.
10. Ketcham R. A., Carlson W. D. Acquisition, optimization and interpretation of X-ray computed tomographic imagery: Applications to the geosciences. Computers and Geosciences. 2001. Vol. 27. pp. 381–400.
11. Carlson W. D. Three-dimensional imaging of earth and planetary materials. Earth and Planetary Science Letters. 2006. Vol. 249. pp. 133–147.
12. Dong H., Blunt M. J. Pore-network extraction from micro-computerized-tomography images. Physical Review E. 2009. Vol. 80, Iss. 3. DOI: 10.1103/PhysRevE.80.036307.
13. Wu D., Peng X. F. Investigation of water migration in porous material using micro-CT during wetting. Heat Transfer. Asian Research. 2007. Vol. 36, Iss. 4. pp. 198–207.
14. Vaisberg L. A., Kameneva E. E. X-ray computed tomography in the study of physico-mechanical properties of rocks. Gornyi Zhurnal. 2014. No. 9. pp. 85–89.
15. Fossen H., Schultz R. A., Shipton Z. K., Mair K. Deformation bands in sandstone: A review. Journal of the Geological Society. 2007. Vol. 164. pp. 755–769.
16. Stefanov Yu. P. Development of deformation in rocks in dilatation and compaction modes. Vestnik of Lobachevsky University of Nizhni Novgorod. 2011. No. 4(4). pp. 1789–1791.

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