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GEOMECHANICAL SUPPORT OF FIELD DEVELOPMENT
ArticleName Effect of backfill material on selection of stoping system parameters at salt deposits
DOI 10.17580/gzh.2025.11.01
ArticleAuthor Rysin A. I., Otkupshchikova I. A., Lebedeva A. M., Nurtdinov A. S.
ArticleAuthorData

ProTech Engineering LLC, Saint-Petersburg, Russia

A. I. Rysin, Head of Laboratory
I. A. Otkupshchikova, Cat I Engineer, otkupschikova2015@gmail.com
A. S. Nurtdinov, Expert

ProTech Engineering LLC, Saint-Petersburg, Russia; Lomonosov Moscow State University, Moscow, Russia2

A. M. Lebedeva, Cat I Engineer1, Post-Graduate Student2

Abstract

The influence of the occupancy of stopes with backfill on the stability of rib pillars in salt rock mass is studied using different methods. The experience of backfill application at mineral deposits is reviewed. The experimental design of uniaxial compression testing of a standard cylindrical salt sample in the condition of compression by backfill mass at different degrees of occupancy of stopes with backfill material is developed. The tests are carried out with two types of backfill materials: broken rocks and salt waste at the degree of occupancy of stopes with the backfill from 50 to 100 %. The investigation finds out that the backfill starts exerting a substantial effect on the final strength of the test sample at the 50 % occupancy in the lab-scale test and at the 100 % occupancy in the numerical experience. The modulus of deformation remains constant in all tests and at all degrees of occupancy of stopes, and this means that the backfill has no influence on the rigidity of the supporting system. Modeling reveals the connection of the weak influence with the insufficient compaction of the backfill—the supporting effect of the backfill only appears at the high level of the stope occupancy with the backfill as a result of compaction of the backfill material. Aimed to enhance efficiency of backfilling, the method of temper and other process solutions are proposed. Finally, the conclusion is drawn on the need of revising the calculation of rib pillar heights as the present-day engineering procedures calculate loading exerted on rib pillars with backfill with a coefficient which increases stability of rocks, which is confirmed neither by practice nor by theoretical research.

keywords Pillar stability, backfill material, salt rocks, stress–strain behavior of rock mass, numerical modeling, laboratory testing
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