Create your free account

Enter your email and we'll send a 6-digit code — no password needed.
We only keep your email and the username you choose. We never share or sell your email, and we don't send marketing — we use it only to email you a sign-in code. Read our privacy policy.
Entering orbit…
Habitability
5/ 100
Uninhabitable

Reading Kepler-113 c’s atmosphere

Dominant elements: O, H, Si, Fe, N, CThis is what a telescope would measure while Kepler-113 c crosses in front of its star: starlight passes through the atmosphere and spreads into a rainbow band. Each dark line marks a wavelength the atmosphere absorbed.Every element absorbs its own signature wavelengths — hydrogen always darkens the same two spots, calcium another pair, and so on. Astronomers match the lines in a real spectrum against a library of these signatures to say what an atmosphere is made of, light-years away, without ever visiting. A deeper line generally means more of that element is present.Kepler-113 c sits about 855 light-years away, found by the transit method. Most catalogued distances trace back to parallax: as Earth orbits the Sun, a nearby star appears to shift very slightly against the distant background stars, and the size of that shift gives its distance directly.

Kepler-113 c

Ice GiantUninhabitable854 light years awayFound 2014

Kepler-113 c, from the NASA Exoplanet Archive (found 2014). Measured: 8.7 Earth masses, 0.078 AU, a 4725 K K-type star. Composition inferred from a measured bulk density of 0.84x Earth's at this size, suggesting roughly 38% water/ice by mass, with a day locked to its 8.9-day year, as anything orbiting this close would be. Note: TerraForge comes out at 794 K against the archive's 628 K, because it models stars by spectral class, and Kepler-113 is not an average K-type.

Host star

Kepler-113

Type
K-type (Orange)
Temperature
4,725 K
Radius
0.69 ☉
Mass
0.75 ☉
Known planets
2, including this one
Luminosity
0.265 ☉

Published by the NASA Exoplanet Archive. This world’s temperature and habitability score are computed from this star’s measured luminosity, not from a stand-in for its class.

Ice Giant

No life — too hot for liquid waterExtreme Activity
Why is this a Ice Giant?Your planet has moderate mass (8.7x Earth) with significant water, carbon, and nitrogen content, characteristic of ice giants.
Ice giants like Uranus and Neptune have icy interiors with thick atmospheres of hydrogen and helium, but not enough to be classified as gas giants.
Classification Criteria:
✓ Mass: 8.7x Earth (5-20x range)✓ Water/Carbon/Nitrogen rich composition
Habitability ScoreUninhabitable
5
Contributing Factors
temperature5
Scorching - hot enough to melt lead, though rock stays solid; no chance for life
atmosphere18
Hydrogen-rich atmosphere typical of gas giants (partially stripped by slow rotation)
water15
No solid surface — any water is locked in a supercritical mantle and hot ice, not oceans
magnetic Field30
No magnetic field - vulnerable to solar radiation
geology40
Extreme volcanic activity may be hazardous
Organic Chemistry80
Core organic elements (CHNO) present
rotation30
Very slow rotation - extreme temperature swings between eternal day and night sides

Physical Properties

Mass
8.70x Earth (5.20e+25 kg)
Radius
2.06x Earth (13,103 km)
This planet: 2.06× Earth radiusEarth: 1× (baseline)
Surface Gravity
2.06x Earth (20.2 m/s²)
Surface Temperature
794 K (521 °C / 970 °F)
Rotation Period
214.3 hours/day (slower than Earth)
This planet: 214 h/dayEarth: 24 h/day

Orbital Environment

Star Type
K-type (Orange)
Distance from Star
0.08 AU (11.7 million km)
Orbital Period
10 days

Atmosphere

Hydrogen and helium with water, methane, and ammonia ices

Elemental Composition

O - Oxygen
30.7%
H - Hydrogen
27.4%
Si - Silicon
16.8%

Surface Characteristics

No solid surface - a deep volatile envelope over a supercritical water mantle and hot-ice interior
A binary star system's orrery: two suns close together, a red dashed dead-zone boundary, and a debris trail left by a destroyed world

New: Binary Star Systems 🌀

A system can now orbit two suns. Add a companion star when you build one — close, medium, or wide — and the physics decides what survives: a shared center of mass carves out a dead zone where gravity from both stars tears a world apart, leaving it as debris, and every surviving planet's orbit goes elliptical, moving fastest at closest approach and slowest out at aphelion. Push the separation to wide and the dead zone opens tens of AU across, wide enough to gut a system that would have been stable around one star alone. Stand on a world that made it through and you'll watch two suns cross the sky together.

Create your free account

Enter your email and we'll send a 6-digit code — no password needed.
We only keep your email and the username you choose. We never share or sell your email, and we don't send marketing — we use it only to email you a sign-in code. Read our privacy policy.

Send feedback

We're still building out the best experience we can — and we'd love your input. Tell us about features you enjoy, ideas you'd like to see, or pain points where something feels off, and we'll know where to look next.

Type
Idea
Bug
Pain point
Other