The Physics of Bodily Tides in Terrestrial Planets, and the Appropriate Scales of Dynamical Evolution
arXiv:0709.1995 · doi:10.1029/2007JE002908
Abstract
Any model of tides is based on a specific hypothesis of how lagging depends on the tidal-flexure frequency. For example, Gerstenkorn (1955), MacDonald (1964), and Kaula (1964) assumed constancy of the geometric lag angle, while Singer (1968) and Mignard (1979, 1980) asserted constancy of the time lag. Thus, each of these two models was based on a certain law of scaling of the geometric lag. The actual dependence of the geometric lag on the frequency is more complicated and is determined by the rheology of the planet. Besides, each particular functional form of this dependence will unambiguously fix the appropriate form of the frequency dependence of the tidal quality factor, Q. Since at present we know the shape of the dependence of Q upon the frequency, we can reverse our line of reasoning and single out the appropriate actual frequency-dependence of the angular lag. This dependence turns out to be different from those employed hitherto, and it entails considerable alterations in the time scales of the tide-generated dynamical evolution. Phobos' fall on Mars is an example we consider.
arXiv admin note: substantial text overlap with arXiv:astro-ph/0605521
References in corpus (2)
Cited by in corpus (91)
- Tidal friction in close-in satellites and exoplanets. The Darwin theory re-visited
- Tidally Heated Terrestrial Exoplanets: Viscoelastic Response Models
- Tidal dissipation compared to seismic dissipation: in small bodies, in earths, and in superearths
- Tidal obliquity evolution of potentially habitable planets
- Tidal Venuses: Triggering a Climate Catastrophe via Tidal Heating
- Orbits and Masses of the Satellites of the Dwarf Planet Haumea = 2003 EL61
- Bodily tides near spin-orbit resonances
- Tidal Heating of Terrestrial Extra-Solar Planets and Implications for their Habitability
- Tidal torques. A critical review of some techniques
- Formation, Habitability, and Detection of Extrasolar Moons
- Tidal Friction and Tidal Lagging. Applicability Limitations of a Popular Formula for the Tidal Torque
- Tidal Limits to Planetary Habitability
- Tidal synchronization of close-in satellites and exoplanets. A rheophysical approach
- Spatial patterns of tidal heating
- The equilibrium tide in stars and giant planets: I - the coplanar case
- Spin-orbit evolution of Mercury revisited
- Dynamical evolution and spin-orbit resonances of potentially habitable exoplanets. The case of GJ 581d
- No pseudosynchronous rotation for terrestrial planets and moons
- How terrestrial planets traverse spin-orbit resonances: A camel goes through a needle's eye
- Advancing Tests of Relativistic Gravity via Laser Ranging to Phobos
- Tidal Evolution of Asteroidal Binaries. Ruled by Viscosity. Ignorant of Rigidity
- Orbital properties of binary minor planets
- The HD 40307 Planetary System: Super-Earths or Mini-Neptunes?
- Equilibrium rotation of semiliquid exoplanets and satellites
- The Mass, Orbit, and Tidal Evolution of the Quaoar-Weywot System
- Complete spin and orbital evolution of close-in bodies using a Maxwell viscoelastic rheology
- Bodily tides near the 1:1 spin-orbit resonance. Correction to Goldreich's dynamical model
- Impact of the frequency dependence of tidal Q on the evolution of planetary systems
- Reassessing the origin of Triton
- About influence of differential rotation in convection zone of gaseous or fluid giant Planet (Uranus) onto the parameters of orbits of satellites
- The impact of rotation on turbulent tidal friction in stellar and planetary convective regions
- Unravelling tidal dissipation in gaseous giant planets
- Scaling laws to understand tidal dissipation in fluid planetary regions and stars I - Rotation, stratification and thermal diffusivity
- Tidal synchronization of close-in satellites and exoplanets. II. Spin dynamics and extension to Mercury and exoplanets host stars
- Andrade rheology in time-domain. Application to Enceladus' dissipation of energy due to forced libration
- Tidal decay and orbital circularization in close-in two-planet systems
- Solid tidal friction in multi-layer planets: Application to Earth, Venus, a Super Earth and the TRAPPIST-1 planets. Can a multi-layer planet be approximated as a homogeneous planet?
- Tidal Evolution of the Evection Resonance/Quasi-Resonance and the Angular Momentum of the Earth-Moon System
- On computing viscoelastic Love numbers for general planetary models: the \texttt{ALMA} code
- The dynamics of asteroid rotation, governed by YORP effect: the kinematic ansatz
- Atmospheric tides in Earth-like planets
- Exomoon Habitability and Tidal Evolution in Low-Mass Star Systems
- On the Spin States of Habitable Zone Exoplanets Around M Dwarfs: The Effect of a Near-Resonant Companion
- Final spin states of eccentric ocean planets
- On a new type of solving procedure for Laplace tidal equation
- Numerical Simulation of Tidal Evolution of a Viscoelastic Body Modelled with a Mass-Spring Network
- Prospects in the orbital and rotational dynamics of the Moon with the advent of sub-centimeter lunar laser ranging
- Long-term evolution of the Galilean satellites: the capture of Callisto into resonance
- Spin-Spin Coupling in the Solar System
- A semi-analytical model of the Galilean satellites' dynamics
- Dynamical evolution and spin-orbit resonances of potentially habitable exoplanets. The case of GJ 667C
- A Tidal Origin for a 3-body Resonance in Kepler-221
- Tilting Uranus via the migration of an ancient satellite
- Why is the Moon synchronously rotating?
- Impact of Tides on the Potential for Exoplanets to Host Exomoons
- Oblique rings from migrating exomoons: A possible origin for long-period exoplanets with enlarged radii
- Strong tidal energy dissipation in Saturn at Titan's frequency as an explanation for Iapetus orbit
- The small and large lags of the elastic and anelastic tides. The virtual identity of two rheophysical theories
- The Chaotic Nature of TRAPPIST-1 Planetary Spin States
- Tidal spin down rates of homogeneous triaxial viscoelastic bodies
- Thermal and orbital evolution of low-mass exoplanets
- Long-term evolution of orbits about a precessing oblate planet. 3. A semianalytical and a purely numerical approach
- Tidal evolution for any rheological model using a vectorial approach expressed in Hansen coefficients
- Dynamical history of the Galilean satellites for a fast migration of Callisto
- Tidal friction in satellites and planets. The new version of the creep tide theory
- Frequency-dependent tidal dissipation in a viscoelastic Saturnian core and expansion of Mimas' semi-major axis
- Orbital decay of short-period gas giants under evolving tides
- Tidal synchronization of an anelastic multi-layered body: Titan's synchronous rotation
- Eviction-like resonances for satellite orbits. Application to Phobos, the main satellite of Mars
- The Spin-Orbit Evolution of GJ 667C System: The Effect of Composition and Other Planet's Perturbations
- Tidal dissipation of binaries in asteroid pairs
- Presence of liquid water during the evolution of exomoons orbiting ejected free-floating planets
- Periodic and quasi-periodic attractors for the spin-orbit evolution of Mercury with a realistic tidal torque
- Probing Planets with Exomoons: The Cases of Kepler-1708 b and Kepler-1625 b
- Tidal evolution of Earth-like planets in the habitable zone of low-mass stars
- On the motion of satellite around the natural moons of planets using the concept of ER3BP with variable eccentricity
- Dynamical Model of Rotation and Orbital Coupling for Deimos
- Tidal locking and the gravitational fold catastrophe
- On Tides and Exoplanets
- Tidal Evolution of Close-in Exoplanets and Host Stars
- The Theory of Bodily Tides. The Models and the Physics
- Ellipsoidal equilibrium figure and Cassini states of rotating planets and satellites deformed by a tidal potential in the spatial case
- Can the tidal quality factors of terrestrial planets and moons scale as positive powers of the tidal frequency?
- Anisotropic tidal dissipation in misaligned planetary systems
- Dynamical Evolution of Planetary Systems
- The Coupled Tidal Evolution of the Moons and Spins of Warm Exoplanets
- Scaling laws to understand tidal dissipation in fluid planetary layers and stars
- GENGA II: GPU planetary N-body simulations with non-Newtonian forces and high number of particles
- Observed tidal evolution of Kleopatra's outer satellite
- The dynamical evolution of close-in binary systems formed by a super-Earth and its host star. Case of the Kepler-21 system
- Layered semi-convection and tides in giant planet interiors - I. Propagation of internal waves