Tidal locking
Adapted from Wikipedia · Adventurer experience
Tidal locking is when two space objects, like a planet and its moon, move around each other in a special way. When they are tidally locked, one of them always shows the same face to the other. This is why we always see the same side of the Moon from Earth.
This happens because of gravity. Over millions of years, gravity changes how the objects spin until they match their orbits. After this, they stay that way because it would take a lot of energy to change it.
Sometimes, both objects are locked to each other. This is true for Pluto and its moon Charon. They both always show each other the same face. Other objects, like Mercury, have a different kind of lock where it spins three times for every two times it goes around the Sun.
Mechanism
Further information: Centers of gravity in non-uniform fields
Imagine two objects, like a planet and its moon, moving around each other. Over time, one object can end up always showing the same face to the other. This happens because gravity pulls on parts of the object, creating small bumps called tidal bulges. These bulges move as the object spins.
Because the bulges are slightly off-center, gravity from the other object pulls on them, changing the spin of the first object. This pull acts like a brake, gradually making the spin match the orbit. Eventually, the object spins at just the right speed to keep the same face turned toward its partner.
Orbital changes
When one object slows down its spin, the space between them actually gets a little bigger. This happens because the total spin and orbit of the two objects must stay balanced.
Locking of the larger body
See also: Synchronous orbit
The bigger object can also be affected, but more slowly, because the smaller one pulls less on it. For example, the Moon is very slowly changing how fast Earth spins. Over millions of years, this has made our days a little longer. In the far future, both Earth and the Moon might end up always showing the same face to each other.
For bodies of similar size the effect may be of comparable size for both. An example is the dwarf planet Pluto and its satellite Charon. They have already reached a state where Charon is visible from only one hemisphere of Pluto and vice versa.
Eccentric orbits
For orbits that are not perfect circles, the object may not always show the exact same face. Instead, it might spin a little faster or slower depending on where it is in its orbit. Some objects, like the planet Mercury, spin in a pattern called a resonance. Many exoplanets might also have similar patterns.
Occurrence
Moons
All nineteen known moons in the Solar System that are big enough to be round stay in the same position relative to the planet they orbit. This happens because they are close to their planet, and gravity pulls them strongly. However, most smaller, distant moons of big planets are not locked this way.
Pluto and Charon are a special case where both are locked to each other. Charon is large compared to Pluto and orbits very close, so both worlds always show the same face to each other. Pluto’s other moons move in uneven ways because of Charon’s influence. Similarly, Eris and Dysnomia are also locked together, as are Salacia and Actaea. It’s possible that Orcus and Vanth are locked together, but we don’t have enough information to be sure.
Earth's Moon
The Moon’s rotation and orbit are locked together. This means that, no matter when you look at the Moon from Earth, you always see the same side. Most of the far side of the Moon wasn’t seen until 1959, when a Soviet spacecraft called Luna 3 sent back pictures.
When you look at Earth from the Moon, Earth seems to stay in almost the same spot in the sky. It shows almost its whole surface as it spins.
Even though the Moon’s rotation and orbit are locked, we can see about 59 percent of the Moon’s surface from Earth. This is because of movements called libration and parallax. Librations happen because the Moon’s path around Earth isn’t a perfect circle, which lets us see a little more of its edges. Parallax is a viewing effect that lets us see small changes in the Moon’s surface depending on where on Earth we are watching from.
Planets
For a while, people thought Mercury always showed the same face to the Sun. But in 1965, radar showed that Mercury actually spins three times for every two times it goes around the Sun. This is called a 3:2 spin–orbit resonance.
The time between times when Venus gets closest to Earth is almost exactly five Venus days. This makes it seem like Venus always shows us the same face, but we don’t know if this is because of tidal locking or just chance.
The planet Proxima Centauri b, found in 2016, is almost certainly locked to its star, either showing the same face or in a 3:2 resonance like Mercury.
Stars
Close pairs of stars are expected to be locked to each other. Planets that orbit very close to their stars are also thought to be locked. One possible example is the star Tau Boötis, which may be locked to its planet Tau Boötis b. If so, the locking would likely work both ways.
Timescale
To find out how long it takes for a space object to become tidally locked, scientists use a special math formula. This formula helps them guess the time, but it’s not always exact because some details are hard to measure.
The formula depends on things like how fast the object spins, how far it is from what it’s orbiting, and what it’s made of. Even with good information, the time can vary a lot. For example, bigger moons tend to become tidally locked faster than smaller ones if they’re at the same distance. But other factors, like nearby objects, can also affect this.
List of known tidally locked bodies
Solar System
All the objects listed below are tidally locked. This means they always show the same face to the object they orbit. Except for Mercury, all these objects take the same amount of time to spin once on their own as they do to go around their partner.
Extra-solar
Many ways to find planets far from us tend to find those very close to their stars. Because of this, most found planets are in areas where they would be tidally locked to their stars. One example is Tau Boötis, which is locked to the large planet Tau Boötis b.
| Parent body | Tidally-locked satellites |
|---|---|
| Sun | Mercury (3:2 spin–orbit resonance) |
| Earth | Moon |
| Mars | Phobos · Deimos |
| Jupiter | Metis · Adrastea · Amalthea · Thebe · Io · Europa · Ganymede · Callisto |
| Saturn | Pan · Atlas · Prometheus · Pandora · Epimetheus · Janus · Mimas · Enceladus · Telesto · Tethys · Calypso · Dione · Rhea · Titan · Iapetus |
| Uranus | Miranda · Ariel · Umbriel · Titania · Oberon |
| Neptune | Proteus · Triton |
| Pluto | Charon (mutually locked) |
| Salacia | Actaea (mutually locked) |
| Eris | Dysnomia (mutually locked) |
Bodies likely to be locked
Solar System
Some moons might be tidally locked to their planets. We think this because of how long it would take and how long they have been moving around their planets. But we do not know enough about how they spin to be sure. These include:
Probably locked to Saturn
Probably locked to Uranus
Probably locked to Neptune
Probably mutually tidally locked
Extrasolar
- Gliese 581c, Gliese 581b, and Gliese 581e may be tidally locked to their star Gliese 581.
- All planets in the TRAPPIST-1 system are likely to be tidally locked.
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