Reproducing the large Earth/Mars mass ratio requires a strong mass depletion in solids within the protoplanetary disc between 1 and 3 au. The Grand Tack model invokes a specific migration history of the giant planets to remove most of the mass initially beyond 1 au and to dynamically excite the asteroid belt. However, one could also invoke a steep density gradient created by inward drift and pile-up of small particles induced by gas drag, as has been proposed to explain the formation of close-in super-Earths. Here we show that the asteroid belt's orbital excitation provides a crucial constraint against this scenario for the Solar system. We performed a series of simulations of terrestrial planet formation and asteroid belt evolution startin...
Jupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated protoplanetary disk, ...
International audienceJupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated...
The past decade has seen major progress in our understanding of terrestrial planet formation. Yet ke...
International audienceReproducing the large Earth/Mars mass ratio requires a strong mass depletion i...
International audienceReproducing the large mass ratio between the Earth and Mars requires that the ...
Reproducing the large mass ratio between the Earth and Mars requires that the terrestrial planets fo...
Dynamical simulations of terrestrial planet accretion consistently fail to produce reasonable Mars a...
International audienceDynamical simulations of terrestrial planet accretion consistently fail to pro...
Reproducing the small mass of Mars is a major problem for modern simulations of terrestrial planet a...
Reproducing the small mass of Mars is a major problem for modern simulations of terrestrial planet a...
Numerical simulations of planetary accretion have succeeded in matching most of the physical and orb...
Numerical simulations of planetary accretion have succeeded in matching most of the physical and orb...
Numerical simulations of planetary accretion have succeeded in matching most of the physical and orb...
Containing only a few percent the mass of the moon, the current asteroid belt is around three to fou...
International audienceJupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated...
Jupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated protoplanetary disk, ...
International audienceJupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated...
The past decade has seen major progress in our understanding of terrestrial planet formation. Yet ke...
International audienceReproducing the large Earth/Mars mass ratio requires a strong mass depletion i...
International audienceReproducing the large mass ratio between the Earth and Mars requires that the ...
Reproducing the large mass ratio between the Earth and Mars requires that the terrestrial planets fo...
Dynamical simulations of terrestrial planet accretion consistently fail to produce reasonable Mars a...
International audienceDynamical simulations of terrestrial planet accretion consistently fail to pro...
Reproducing the small mass of Mars is a major problem for modern simulations of terrestrial planet a...
Reproducing the small mass of Mars is a major problem for modern simulations of terrestrial planet a...
Numerical simulations of planetary accretion have succeeded in matching most of the physical and orb...
Numerical simulations of planetary accretion have succeeded in matching most of the physical and orb...
Numerical simulations of planetary accretion have succeeded in matching most of the physical and orb...
Containing only a few percent the mass of the moon, the current asteroid belt is around three to fou...
International audienceJupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated...
Jupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated protoplanetary disk, ...
International audienceJupiter and Saturn formed in a few million years (ref. 1) from a gas-dominated...
The past decade has seen major progress in our understanding of terrestrial planet formation. Yet ke...