We use 3D mantle convection and planetary tectonics models to explore the links between tectonic regimes and the level of internal heating within the mantle of a planet (a proxy for thermal age), planetary surface temperature, and lithosphere strength. At both high and low values of internal heating, for moderate to high lithospheric yield strength, hot and cold stagnant-lid (single plate planet) states prevail. For intermediate values of internal heating, multiple stable tectonic states can exist. In these regions of parameter space, the specific evolutionary path of the system has a dominant role in determining its tectonic state. For low to moderate lithospheric yield strength, mobile-lid behavior (a plate tectonic-like mode of convectio...
The ongoing discovery of terrestrial exoplanets accentuates the importance of studying planetary evo...
The ongoing discovery of terrestrial exoplanets accentuates the importance of studying planetary evo...
Plate tectonics on Earth is driven by the subduction and stirring of dense oceanic lithosphere into ...
We use 3D mantle convection and planetary tectonics models to explore the links between tectonic reg...
We use 3D mantle convection and planetary tectonics models to explore the links between tectonic reg...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
AbstractThe tectonic regime of a planet depends critically on the contributions of basal and interna...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
Stagnant lid convection is generally identified as an end-member state of planetary evolution, appli...
Although plate tectonics is the present-day mode of geodynamics on Earth, it is not so on Mars and V...
Abstract. Magma oceans, plate tectonics, and stagnant-lid convection have transferred heat out of th...
AbstractThe tectonic regime of a planet depends critically on the contributions of basal and interna...
The ongoing discovery of terrestrial exoplanets accentuates the importance of studying planetary evo...
The ongoing discovery of terrestrial exoplanets accentuates the importance of studying planetary evo...
Plate tectonics on Earth is driven by the subduction and stirring of dense oceanic lithosphere into ...
We use 3D mantle convection and planetary tectonics models to explore the links between tectonic reg...
We use 3D mantle convection and planetary tectonics models to explore the links between tectonic reg...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
AbstractThe tectonic regime of a planet depends critically on the contributions of basal and interna...
The tectonic regime of a planet depends critically on the contributions of basal and internal heatin...
Stagnant lid convection is generally identified as an end-member state of planetary evolution, appli...
Although plate tectonics is the present-day mode of geodynamics on Earth, it is not so on Mars and V...
Abstract. Magma oceans, plate tectonics, and stagnant-lid convection have transferred heat out of th...
AbstractThe tectonic regime of a planet depends critically on the contributions of basal and interna...
The ongoing discovery of terrestrial exoplanets accentuates the importance of studying planetary evo...
The ongoing discovery of terrestrial exoplanets accentuates the importance of studying planetary evo...
Plate tectonics on Earth is driven by the subduction and stirring of dense oceanic lithosphere into ...