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TECHNOLOGICAL MINERALOGY
Название Comparative analysis of rocks structural-textural characteristics studies by computer X-ray microtomography and quantitative microstructural analysis methods
DOI 10.17580/or.2017.03.09
Автор Talovina I. V., Aleksandrova T. N., Popov O., Lieberwirth H.
Информация об авторе

Saint Petersburg Mining University (St. Petersburg, Russia):

Talovina I. V., Head of Chair, Doctor of Geology and Mineralogy, talovina@spmi.ru
Aleksandrova T. N., Head of Chair, Doctor of Engineering Sciences, Professor, alexandrovat10@gmail.com

 

TU Bergakademi Freiberg (Freiberg, Germany):
Popov O., Research fellow, Dr., Oleg.Popov@iam.tu-freiberg.de
Lieberwirth H., Managing Director of Institute of Mineral Processing Machines, Head of Chair, Dr.-Ing., Professor

Реферат

The methods of computer X-ray microtomography were used to investigate morphometric parameters and pore space characteristics of granodiorite, copper sandstone and kimberlite samples. The results were compared with the same data of quantitative microstructural analysis. These data demonstrate a wide range of possibilities of computer X-ray microtomography in solving scientific and practical problems related to physicomechanical properties of rocks determining the output of ore minerals. X-ray microtomography allows evaluating the content of ore minerals in rocks, analyzing the granulometric composition and the spatial distribution of their grains. The method is worthwhile in obtaining not only the quantitative characteristics of the mineral phases, but also the pore space of the rock — dimensions, sphericity, pore and microcrack connectivity. The options of 3D-visualization of obtained data at a shot span time, high speed and nondestructiveness are undoubtedly the advantages of X-ray microtomography. The method provides a wide range of researches including preparation of rocks and ores for disintegration.

The work was performed with the aid of the Russian Foundation of Fundamental Research (the Grant 16-05-00460 А).

Ключевые слова Disintegration, сomputer X-ray microtomography CT, quantitative microstructural analysis QMA, morphometric parameters, pore space parameters, coefficient of strength, coefficient of sphericity
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