Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

ANALYSIS OF TERRESTRIAL PLANET FORMATION BY THE GRAND TACK MODEL: SYSTEM ARCHITECTURE AND TACK LOCATION

View through CrossRef
ABSTRACT The Grand Tack model of terrestrial planet formation has emerged in recent years as the premier scenario used to account for several observed features of the inner solar system. It relies on the early migration of the giant planets to gravitationally sculpt and mix the planetesimal disk down to ∼1 au, after which the terrestrial planets accrete from material remaining in a narrow circumsolar annulus. Here, we investigate how the model fares under a range of initial conditions and migration course-change (“tack”) locations. We run a large number of N -body simulations with tack locations of 1.5 and 2 au and test initial conditions using equal-mass planetary embryos and a semi-analytical approach to oligarchic growth. We make use of a recent model of the protosolar disk that takes into account viscous heating, includes the full effect of type 1 migration, and employs a realistic mass–radius relation for the growing terrestrial planets. Our results show that the canonical tack location of Jupiter at 1.5 au is inconsistent with the most massive planet residing at 1 au at greater than 95% confidence. This favors a tack farther out at 2 au for the disk model and parameters employed. Of the different initial conditions, we find that the oligarchic case is capable of statistically reproducing the orbital architecture and mass distribution of the terrestrial planets, while the equal-mass embryo case is not.
Title: ANALYSIS OF TERRESTRIAL PLANET FORMATION BY THE GRAND TACK MODEL: SYSTEM ARCHITECTURE AND TACK LOCATION
Description:
ABSTRACT The Grand Tack model of terrestrial planet formation has emerged in recent years as the premier scenario used to account for several observed features of the inner solar system.
It relies on the early migration of the giant planets to gravitationally sculpt and mix the planetesimal disk down to ∼1 au, after which the terrestrial planets accrete from material remaining in a narrow circumsolar annulus.
Here, we investigate how the model fares under a range of initial conditions and migration course-change (“tack”) locations.
We run a large number of N -body simulations with tack locations of 1.
5 and 2 au and test initial conditions using equal-mass planetary embryos and a semi-analytical approach to oligarchic growth.
We make use of a recent model of the protosolar disk that takes into account viscous heating, includes the full effect of type 1 migration, and employs a realistic mass–radius relation for the growing terrestrial planets.
Our results show that the canonical tack location of Jupiter at 1.
5 au is inconsistent with the most massive planet residing at 1 au at greater than 95% confidence.
This favors a tack farther out at 2 au for the disk model and parameters employed.
Of the different initial conditions, we find that the oligarchic case is capable of statistically reproducing the orbital architecture and mass distribution of the terrestrial planets, while the equal-mass embryo case is not.

Related Results

Tack in Rubber
Tack in Rubber
Abstract The expressions tack, tackiness, and stickiness have been in use since the beginning of the rubber industry. During the years their meaning has changed considerabl...
Relationship between the Cohesive Strength and the Tack of Elastomers: Part II, Contact Time Effects
Relationship between the Cohesive Strength and the Tack of Elastomers: Part II, Contact Time Effects
Abstract The self-tack (also called autohesion or simply tack) of an elastomer is its ability to resist separation from another piece of the same elastomer compound with wh...
The architecture of differences
The architecture of differences
Following in the footsteps of the protagonists of the Italian architectural debate is a mark of culture and proactivity. The synthesis deriving from the artistic-humanistic factors...
Relationship between the cohesive strength and the tack of elastomers
Relationship between the cohesive strength and the tack of elastomers
AbstractThe autohesion (tack) and cohesion of a random styrene‐butadiene elastomer have been examined as a function of test temperature and speed using a T‐peel geometry. Both prop...
Flow Criterion for Elastomer Tack
Flow Criterion for Elastomer Tack
Abstract In order to form a tack bond, the first step is to establish molecular contact between the two sample surfaces. This requires viscous flow of material near the sur...
Tack and Related Properties of Isopropyl Azodicarboxylate Modified Polybutadiene
Tack and Related Properties of Isopropyl Azodicarboxylate Modified Polybutadiene
Abstract Polybutadiene has been modified by reaction with isopropyl azodicarboxylate (IAD). The reaction is quite efficient, resulting in a structure in which there are pen...
Multi-fluid hydrodynamical simulations of circumbinary planet formation via pebble accretion
Multi-fluid hydrodynamical simulations of circumbinary planet formation via pebble accretion
Context. Since the detection of the first known transiting circumbinary planet (CBP), Kepler-16b,by the Kepler mission, a total pf 14 CBPs have been detected, raising questions abo...
Improving tidal modeling for rocky worlds
Improving tidal modeling for rocky worlds
<p>The high number of discovered close-in planets motivates the improvement of tidal modeling.Among the five thousand exoplanets discovered up to now, half of them ha...

Back to Top