MANUEL ROCHA MEDAL RECIPIENT ROCK FRACTURE AND COLLAPSE UNDER LOW CONFINEMENT CONDITIONS

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dc.contributor.author Diederichs M.S.
dc.date.accessioned 2022-02-13T04:46:06Z
dc.date.available 2022-02-13T04:46:06Z
dc.date.issued 2003
dc.identifier https://elibrary.ru/item.asp?id=5105519
dc.identifier.citation Rock Mechanics and Rock Engineering, 2003, 36, 5, 339-381
dc.identifier.issn 0723-2632
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/35261
dc.description.abstract The primary objective of this work was an examination of the complimentary roles of tensile damage and confinement reduction (or stress relaxation) on excavation response of "hard" rockmasses. Tensile damage and relaxation are examined with respect to structurally controlled or gravity driven failure modes as well as to strength controlled or stress driven rockmass damage and yield. In conventional analysis of both structurally controlled and stress driven failure, the effects of tensile damage and tensile resistance as well as the elevated sensitivity to low confinement are typically neglected, leading to erroneous predictions of groundfall potential or rock yield. The important role of these two elements in underground excavation stability in hard rock environments is examined in detail through a review of testing data, case study examination and a number of analytical and numerical analogues including discrete element simulation, statistical theory and fracture mechanics. This rigorous theoretical treatment updates, validates and constrains the current use of semi-empirical design guidelines based on these mechanisms.
dc.subject ROCK FRACTURE
dc.subject STRENGTH
dc.subject DISCRETE ELEMENTS
dc.subject UNDERGROUND STABILITY
dc.title MANUEL ROCHA MEDAL RECIPIENT ROCK FRACTURE AND COLLAPSE UNDER LOW CONFINEMENT CONDITIONS
dc.type Статья


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