THERMAL AND CHEMICAL VARIATIONS IN SUBCRUSTAL CRATONIC LITHOSPHERE: EVIDENCE FROM CRUSTAL ISOSTASY

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dc.contributor.author Mooney W.D.
dc.contributor.author Vidale J.E.
dc.date.accessioned 2022-02-07T05:09:37Z
dc.date.available 2022-02-07T05:09:37Z
dc.date.issued 2003
dc.identifier https://elibrary.ru/item.asp?id=28490124
dc.identifier.citation Lithos, 2003, 71, 2-4, 185-193
dc.identifier.issn 0024-4937
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/35071
dc.description.abstract The Earth’s topography at short wavelengths results from active tectonic processes, whereas at long wavelengths it is largely determined by isostatic adjustment for the density and thickness of the crust. Using a global crustal model, we estimate the long wavelength topography that is not due to crustal isostasy. Our most important finding is that cratons are generally depressed by 300 to 1500 m in comparison with predictions from pure crustal isostasy. We conclude that either: (1) cratonic roots may be 50 to 300 C colder than previously suggested by thermal models, or (2) cratonic roots may be, on average, less depleted than suggested by studies of shallow mantle xenoliths. Alternatively, (3) some combination of these conditions may exist. The thermal explanation is consistent with recent geothermal studies that indicate low cratonic temperatures, as well as seismic studies that show very low seismic attenuation at long periods (150 s) beneath cratons. The petrologic explanation is consistent with recent studies of deep (>140 km) mantle xenoliths from the Kaapvaal and Slave cratons that show 1 – 2% higher densities compared with shallow ( < 140 km), highly depleted xenoliths.
dc.subject Isostasy
dc.subject Crustal structure
dc.subject Cratons
dc.subject Xenoliths
dc.title THERMAL AND CHEMICAL VARIATIONS IN SUBCRUSTAL CRATONIC LITHOSPHERE: EVIDENCE FROM CRUSTAL ISOSTASY
dc.type Статья


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