ORBIT Solar System Explorer

Natural satellite Oberon

Oberon

Ancient terrain beyond the other major moons

Uranus's second-largest moon has an ancient, heavily cratered surface. Dark material covers the floors of some craters.

Rendered view of Oberon
Illustrative lighting and viewpoint · Image credits
Mean radius
761.4 km
Mean diameter
1,522.8 km
Orbital semimajor axis
583,511 km

01 / Overview

Meet Oberon

Oberon is Uranus's second-largest moon and the outermost of its five major satellites. Dense cratering and dark material on some crater floors make it a record of an old icy surface. Comparison with canyon-rich Ariel reveals different degrees of surface renewal within the same planetary system.

02 / Key data

Core parameters

Mean radius
761.4 km
Mean diameter
1,522.8 km
Orbital semimajor axis
583,511 km
Orbital period
13.463 d
Parent planet
Uranus
Data and calculation notes

Radii are mean values; orbital data describe each world’s scale and motion.

03 / Further reading

A closer look

What makes this world distinctive5
  • William Herschel discovered Oberon in 1787.

  • Oberon is Uranus's second-largest moon.

  • Oberon is the outermost of Uranus's five major moons.

  • Oberon is named after the fairy king in A Midsummer Night's Dream.

  • Some craters on Oberon contain dark material on their floors.

Gravity and the interior14
  • A natural satellite forms naturally and orbits a larger body; an artificial satellite is built by people.

  • Tidal locking matches rotation to orbital motion; it does not mean no rotation.

  • A moon's orbit need not lie in the same plane as its planet's orbit around the Sun.

  • Differences in gravity across a moon can deform it through tides.

  • Repeated tidal deformation can turn orbital energy into internal heat.

  • Orbital resonance means periods near simple integer ratios, allowing repeated pulls between moons to build up.

  • Some moons formed in discs around planets; others may have been captured later.

  • Small moons are often irregular because their gravity cannot overcome the strength of their materials.

  • Large moons tend to be rounder because gravity shapes them.

  • Icy moons may have liquid oceans under their shells; a frozen surface does not mean a fully frozen interior.

  • Finding water or organic molecules is not the same as finding life.

  • A planet and moon both orbit their common center of mass; the heavier body's wobble is usually smaller.

  • Other bodies perturb a moon's orbit; a fixed ellipse is only an approximation.

  • Moons can be larger than some planets; classification is not based on diameter alone.

Surface and observation11
  • Uranus's second-largest moon has an ancient, heavily cratered surface. Dark material covers the floors of some craters.

  • A moon's visible brightness usually comes from reflected sunlight.

  • Moons have sunlit and dark sides too; the side facing away from the planet is not permanently dark.

  • Crater counts help estimate surface ages, but resurfacing and the impact environment also matter.

  • A moon hiding a background star causes an occultation, useful for measuring size or probing an atmosphere.

  • A moon entering its planet's shadow experiences an eclipse, depending on the orbits' spatial alignment.

  • Tiny changes in a spacecraft's speed can reveal a moon's mass and gravity field.

  • Composition, grain size, and lighting all affect surface color; enhanced-color images differ from naked-eye views.

  • The day–night boundary is the terminator; long shadows nearby bring out terrain.

  • Surfaces with little or no atmosphere lack strong weather erosion and preserve old impact scars more easily.

  • A moon's observed phases come from changing angles between the Sun, moon, and observer.

04 / Sources

Trusted sources

NASA Science — OberonJPL — Orbital data

Image credits

Images reproject and light existing textures; they are not live observations.

Surface texture:ItzImcool; Paul Schenk; NASA/JPL/Ted Stryk · License · Rendered by ORBIT

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