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Planetary Equilibrium Temperature Calculator

The equilibrium temperature of a planet — what it would be with no greenhouse effect — from its star’s luminosity, its orbital distance and how much light it reflects, with the difference the greenhouse effect makes on Earth.

A planet absorbs the starlight it does not reflect and radiates as a black body until the two balance: T = [L (1 − a) ÷ (16 π σ d²)]^¼.

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Results
Equilibrium temperature
253.7 K
In °C
Stellar flux at that distance
If the planet were black (albedo 0)
Reads as
Reviewed September 2026. Orbital mechanics and optics: identical everywhere, with no market variation of any kind. NASA's JPL Horizons system provides the ephemerides that real orbital work uses in place of the idealized formulas here.
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About planetary equilibrium temperature

How the planetary equilibrium temperature calculator works

A planet absorbs the starlight it does not reflect and radiates as a black body until the two balance: T = [L (1 − a) ÷ (16 π σ d²)]^¼. For Earth that gives 255 K, −18 °C; the atmosphere’s greenhouse effect adds 33 K to reach the real 288 K. Venus would be cooler than Earth on this basis because of its bright clouds, and is hotter because of its atmosphere.

Formula: T_eq = [L (1 − A) ÷ (16 π σ d²)]^¼

Worked examples

InputsEquilibrium temperatureNote
Earth: 1 L☉, 1 AU, albedo 0.31253.7 K254 K, −19 °C
Mars: 1.52 AU, albedo 0.25209.8 K210 K
A hot Jupiter at 0.05 AU of a Sun-like star1,212.4 K1,200 K

Frequently asked questions

Why is Earth warmer than this?

The greenhouse effect: water vapour, carbon dioxide and methane absorb outgoing infrared and re-radiate part of it downward, raizing the surface about 33 K above the equilibrium figure. Venus’s atmosphere adds over 500 K.

What albedo should I use?

The Bond albedo — the fraction of all incoming light reflected across all wavelengths and angles. Earth’s is about 0.31, mostly clouds; ice worlds reach 0.6–0.8, dark rocky bodies 0.1.

Does the planet rotate fast?

The formula assumes heat spreads evenly over the whole sphere, which fits a rotating planet with an atmosphere. A slowly rotating airless body is hotter on the day side by a factor of 2^¼ and much colder at night.

How is this used for exoplanets?

Luminosity and distance are usually known from the star and the orbit; the temperature then says whether the planet could be habitable, with the caveat that atmospheres — unknown for most — move the surface value a great deal.

Where these figures come from

Last checked: September 2026. Constants are CODATA 2018 (G, c) and IAU 2015 nominal values (solar and planetary parameters).