Should paleoshorelines of ancient martian oceans be close to present-day equipotential surfaces?

Thermal isostasy provides a link between surface elevation and thermal state of the lithosphere. Variations in martian surface heat flow, similar to those observed in terrestrial continental tectonothermally stable areas, could result in elevation differences of kilometric scale through differential...

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Bibliographic Details
Authors: Ruiz Pérez, Javier, Fairén, Alberto G., Dohm, James M., Tejero López, Rosa, Castilla Cañamero, Gabriel, Álvarez Gómez, José Antonio, Uceda, Esther R.
Format: article
Publication Date:2004
Country:España
Institution:Universidad Complutense de Madrid (UCM)
Repository:Docta Complutense
Language:English
OAI Identifier:oai:docta.ucm.es:20.500.14352/51576
Online Access:https://hdl.handle.net/20.500.14352/51576
Access Level:Open access
Keyword:550.2
Martian oceans
Geodinámica
2507 Geofísica
Description
Summary:Thermal isostasy provides a link between surface elevation and thermal state of the lithosphere. Variations in martian surface heat flow, similar to those observed in terrestrial continental tectonothermally stable areas, could result in elevation differences of kilometric scale through differential thermal isostasy. This effect is enhanced with the increase of heat sources located within the crust. Local differences in the thermal history of the Mars’ lithosphere could have appreciably distorted the original long-avelength topography of putative martian paleoshorelines. This work hows that a paleoequipotential surface does not necessarily have to fit well a present-day equipotential surface, and that diverse processes, including thermal isostasy and operating throughout the martian history, must be taken into account when evaluating paleoshorelines through assessment of high-resolution topography.