ELASTICITY AND STRENGTH OF HYDROUS RINGWOODITE AT HIGH PRESSURE

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dc.contributor.author Kavner A.
dc.date.accessioned 2021-12-29T04:38:00Z
dc.date.available 2021-12-29T04:38:00Z
dc.date.issued 2003
dc.identifier https://www.elibrary.ru/item.asp?id=5061412
dc.identifier.citation Earth and Planetary Science Letters, 2003, 214, 3-4, 645-654
dc.identifier.issn 0012-821X
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/33897
dc.description.abstract OH--bearing (hydrous) ringwoodite compressed non-hydrostatically in a diamond anvil cell supports a differential stress that increases from 2.9 to 4.5 GPa over the pressure range of 6.7-13.2 GPa at room temperature. This result suggests a significant water weakening effect when compared with results from similar experiments on the anhydrous counterpart [Kaver and Duffy, Geophys. Res. Lett. 28 (2001) 2691-2694]. The elastic anisotropy (=2C44/(C11-C12) of hydrous ringwoodite is measured to be 0.87(7) throughout this pressure range, similar to measured values for anhydrous ringwoodite [Kaver and Duffy, Geophys. Res. Lett. 28 (2001) 2691-2694]. This lattice anisotropy cannot be explained by anelastic effects such as faulting and twinning within the structure. These results suggest that hydrous minerals in the upper mantle and transition zone may have higher ductile strain rates for a fixed shear stress at high temperature, resulting in stronger preferred lattice orientation. This, in turn, may be seismically detectable, which opens the possibility of using seismic anisotropy as a marker for local volatile-containing areas within the upper mantle and transition zone.
dc.subject HIGH-PRESSURE
dc.subject DEFORMATION
dc.subject TRANSITION ZONE
dc.subject HYDROUS MINERALS
dc.subject ANISOTROPY
dc.subject ringwoodite
dc.title ELASTICITY AND STRENGTH OF HYDROUS RINGWOODITE AT HIGH PRESSURE
dc.type Статья


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