Thermal and electrical conductivity of iron at Earth's core conditions
arXiv:1203.4970 · doi:10.1038/nature11031
Abstract
The Earth acts as a gigantic heat engine driven by decay of radiogenic isotopes and slow cooling, which gives rise to plate tectonics, volcanoes, and mountain building. Another key product is the geomagnetic field, generated in the liquid iron core by a dynamo running on heat released by cooling and freezing to grow the solid inner core, and on chemical convection due to light elements expelled from the liquid on freezing. The power supplied to the geodynamo, measured by the heat-flux across the core-mantle boundary (CMB), places constraints on Earth's evolution. Estimates of CMB heat-flux depend on properties of iron mixtures under the extreme pressure and temperature conditions in the core, most critically on the thermal and electrical conductivities. These quantities remain poorly known because of inherent difficulties in experimentation and theory. Here we use density functional theory to compute these conductivities in liquid iron mixtures at core conditions from first principles- the first directly computed values that do not rely on estimates based on extrapolations. The mixtures of Fe, O, S, and Si are taken from earlier work and fit the seismologically-determined core density and inner-core boundary density jump. We find both conductivities to be 2-3 times higher than estimates in current use. The changes are so large that core thermal histories and power requirements must be reassessed. New estimates of adiabatic heat-flux give 15-16 TW at the CMB, higher than present estimates of CMB heat-flux based on mantle convection; the top of the core must be thermally stratified and any convection in the upper core driven by chemical convection against the adverse thermal buoyancy or lateral variations in CMB heat flow. Power for the geodynamo is greatly restricted and future models of mantle evolution must incorporate a high CMB heat-flux and explain recent formation of the inner core.
11 pages including supplementary information, two figures. Scheduled to appear in Nature, April 2012
References in corpus (1)
Cited by in corpus (80)
- Achieving DFT accuracy with a machine-learning interatomic potential: thermomechanics and defects in bcc ferromagnetic iron
- Transport properties for liquid silicon-oxygen-iron mixtures at Earth's core conditions
- Spherical convective dynamos in the rapidly rotating asymptotic regime
- Tidal heating of Earth-like exoplanets around M stars: Thermal, magnetic, and orbital evolutions
- Local magnetic moments in iron and nickel at ambient and Earth's core conditions
- Convective Lengthscale in Planetary Cores
- Formation, stratification, and mixing of the cores of Earth and Venus
- Thermal conductivity and electrical resistivity of solid iron at Earth's core conditions from first-principles
- First Principles explanation of the positive Seebeck coefficient of lithium
- Reconciliation of experiments and theory on transport properties of iron and the geodynamo
- Density-functional calculations of transport properties in the non-degenerate limit and the role of electron-electron scattering
- Dynamo-based limit to the extent of a stable layer atop Earth's core
- Precession-driven dynamos in a full sphere and the role of large scale cyclonic vortices
- Fast and Universal Kohn Sham Density Functional Theory Algorithm for Warm Dense Matter to Hot Dense Plasma
- Subcritical convection of liquid metals in a rotating sphere using a quasi-geostrophic model
- Thermal convection in Earth's inner core with phase change at its boundary
- Low thermal conductivity of iron-silicon alloys at Earth core conditions with implications for the geodynamo
- Precessing spherical shells: flows, dissipation, dynamo and the lunar core
- The Influence of Thermal Evolution in the Magnetic Protection of Terrestrial Planets
- Conductivity and Dissociation in Metallic Hydrogen: Implications for Planetary Interiors
- VPLanet: The Virtual Planet Simulator
- Rapid Variations of Earth's Core Magnetic Field
- Earth as a transducer for dark-photon dark-matter detection
- The interplay of fast waves and slow convection in geodynamo simulations nearing Earth's core conditions
- Geomagnetic acceleration and rapid hydromagnetic wave dynamics in advanced numerical simulations of the geodynamo
- Fermi-liquid behavior and thermal conductivity of ε-iron at Earth's core conditions
- Extracting scaling laws from numerical dynamo models
- Thermal and compositional stratification of the inner core
- Hydromagnetic quasi-geostrophic modes in rapidly rotating planetary cores
- Helium-iron compounds at terapascal pressures
- Rotating double-diffusive convection in stably stratified planetary cores
- Magnetodynamo Lifetimes for Rocky, Earth-Mass Exoplanets with Contrasting Mantle Convection Regimes
- Relating force balances and flow length scales in geodynamo simulations
- Electronic correlations and transport in iron at Earth's core conditions
- Fault-tolerant quantum simulation of materials using Bloch orbitals
- Exploring the hidden interior of the Earth with directional neutrino measurements
- Coexistence pressure for a martensitic transformation from theory and experiment: revisiting the bcc-hcp transition of iron under pressure
- Electron-induced non-monotonic pressure dependence of the lattice thermal conductivity of θ-TaN
- A Gaussian Model for Simulated Geomagnetic Field Reversals
- Implication of the lopsided growth for the viscosity of Earth's inner core
- Saturation and negative temperature coefficient of electrical resistivity in liquid iron-sulfur alloys at high densities from first principles calculations
- Revealing the Complex Transport Behaviors in Warm Dense Hydrogen by Including Nuclear Quantum Effects
- Experimental study of the convection in a rotating tangent cylinder
- Methodology for determining the electronic thermal conductivity of metals via direct non-equilibrium ab initio molecular dynamics
- Blocked radiative heat transport in the hot pyrolitic lower mantle
- Transport properties of iron at the Earth's core conditions: the effect of spin disorder
- Electrical Conductivity of Iron in Earth's Core from Microscopic Ohm's Law
- Thermal Evolution and magnetic history of rocky planets
- Transition to metallization in warm dense helium-hydrogen mixtures using stochastic density functional theory within the Kubo-Greenwood formalism
- A regime diagram for the slurry F-layer at the base of Earth's outer core
- Magnetic properties of Proxima Centauri b analogues
- Thermal conductivity of MgO in giant planetary interior conditions predicted by deep potential
- Magnetohydrodynamics of stably stratified regions in planets and stars
- The onset of thermo-compositional convection in rotating spherical shells
- Electronic correlations in dense iron: from moderate pressure to Earth's core conditions
- Inertia-less convectively-driven dynamo models in the limit of low Rossby number and large Prandtl number
- Low inertia reversing geodynamos
- Can Core Flows inferred from Geomagnetic Field Models explain the Earth's Dynamo?
- Insight of the thermal conductivity of iron at Earth's core conditions from the newly developed direct methodology
- The influence of a fluid core and a solid inner core on the Cassini sate of Mercury
- Impact of Electronic Correlations on High-Pressure Iron: Insights from Time-Dependent Density Functional Theory
- Seven decades of exploring planetary interiors with rotating convection experiments
- Penetration of boundary-driven flows into a rotating spherical thermally-stratified fluid
- Internal Structure and Magnetic Moment of Rocky Planets. Application to the first exoplanets discovered by TESS
- Thermal conductivity of iron and nickel during melting: Implication to Planetary liquid outer core
- Spatial And Temporal Changes Of The Geomagnetic Field: Insights From Forward And Inverse Core Field Models
- Electrical and Thermal Conductivity of Earth's Iron-enriched Basal Magma Ocean
- Influence of oxygen on electronic correlation and transport in iron in the outer Earth's core
- Investigations of non-hydrostatic, stably stratified and rapidly rotating flows
- Non-perturbative approach for calculating the electrical conductivity of a liquid metal
- Scaling of the geomagnetic secular variation time scales
- A New Formalism for Calculating Modal Contributions to Thermal Interface Conductance from Molecular Dynamics Simulations
- Random-walk shielding-potential viscosity model for warm dense metals
- The probabilistic structure of the geodynamo
- Fluid Dynamics of Earth's core: geodynamo, inner core dynamics, core formation
- Two-dimensional ideal magnetohydrodynamic waves on a rotating sphere under a non-Malkus field: I. Continuous spectrum and its ray-theoretical interpretation
- Robust Geo-neutrino Results
- Ab initio determination on the thermal evolution of the Earth's core
- New approach to scaling rules for stellar and planetary dynamos
- Constraints on the magnetic field within a stratified outer core