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Le monde du rock en LorraineHein, Fabien. Leveratto, Jean-Marc January 2008 (has links) (PDF)
Reproduction de : Thèse doctorat : sociologie : Metz : 2004. / Titre provenant de l'écran-titre. Notes bibliographiques.
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Failure characteristic of Hong Kong granite laboratory investigation and numerical simulation /Yu, Feng, January 2001 (has links)
Thesis (M. Phil.)--University of Hong Kong, 2001. / Includes bibliographical references (leaves 95-101).
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Modélisation du cisaillement hercynien de Bretagne centrale : déformation crustale et implications lithosphériques /Gumiaux, Charles. January 2003 (has links)
Thesis (doctoral)--Université de Rennes I, 2003. / Includes bibliographical references. Also available on the Internet.
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The ecology and conservation biology of the yellow-footed rock-wallaby /Sharp, Andy. January 2002 (has links) (PDF)
Thesis (Ph. D.)--University of Queensland, 2002. / Includes bibliographical references.
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Improvements to the prediction of ground settlements associated with shallow tunnels in weak rock /Asche, Harry Raoul. January 2002 (has links)
Thesis (Ph. D.)--University of Queensland, 2003. / Includes bibliographical references.
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The modelling of anisotropic jointed rock slopes by physical and numerical methodsWu, K. O. January 1989 (has links)
In this study the stabili ty and stress distribution of anisotropic jointed rock slopes under external loading were examined. The influence of joint orientation and mechanical characteristics on the engineering behaviour of jointed rock slopes were included in the investigation. A total of four physical models were developed by using blocks of light-weight concrete and gypsum mortar to simulate intact rocks and joints respectively. The models were built within a confining frame such that plane strain conditions were maintained throughout the experiments. The stress-strain relationship and the strength of the model blocks were determined from laboratory tests. An empirical equation was established to represent the strength envelope of the model material and rocks in general. The normal and shear properties of the model rock JOints were examined, and were described by mathematical expressions in order to facilitate the numerical studies. Results from the physical modelling studies showed that localised failure regions were induced and three types of failure modes were identified. The stability and stress distribution wi thin the models were found to be significantly influenced by the properties and system of the jointing. Two computer programs were developed based on the Finite Element Method and Coupled Finite-Boundary Element Method in order to simulate the behaviour of jointed rock masses and assessments of their application were made in comparison with the physical modelling results. A special finite joint element was developed to incorporate the non-linearity and anisotropy behaviour of rock joints. The finite element program was successfully executed and gave reasonable results in which the principal stress distributions were generally in agreement with those obtained from the physical models. The finite-boundary element program on the other hand introduced boundary incompatibility in the system and therefore led to divergency.
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Pit-bench rock-strength evaluationHaxby, Ronald Loyd, 1934- January 1966 (has links)
No description available.
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Effects of stress on the microfabric of oil shaleBriedis, John, 1941- January 1966 (has links)
No description available.
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Stability analysis of wedge type rock slope failuresSublette, William Robert, 1944- January 1976 (has links)
No description available.
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Stresses in two-dimensional models of room and piclar mining systems.Lee, Hyun Ha January 1969 (has links)
No description available.
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