interior - internal heating - saturn reradiates three times as much energy as it absorbs; therefore,...

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Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source.

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Page 1: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Interior - Internal Heating -Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source.

Page 2: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

It is believed that this extra heat is produced as the result of what is called “helium rain”.

Page 3: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

At Saturn’s internal temperature, liquid helium will not dissolve in liquid hydrogen.

Page 4: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Instead it forms droplets which fall through Saturn’s interior and depletes the helium in the upper levels.

Page 5: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

As the helium rain sinks toward the center, gravity compresses it and heats it. This produces the excess internal heat.

Page 6: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Internal Structure - Saturn has a rocky core that is larger than Jupiter’s. The amount of metallic hydrogen is smaller than Jupiter.

Page 7: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The core pressure is around 1/10 the core pressure of Jupiter (about the same as Earth).

Page 8: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The magnetic field strength of Saturn is about 1/20 of Jupiter’s. This is still 1000 times Earth’s.

Page 9: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Saturn’s magnetic field is not inclined to its rotation axis. (Earth’s and Jupiter’s are)

Page 10: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Saturn’s magnetic field envelops its ring system and the innermost 16 moons.

Page 11: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Saturn’s largest moon,Titan, is sometimes inside, sometimes outside the magnetic field depending on the strength of the solar wind.

Page 12: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Saturn and its moons produce no plasma torus.

Page 13: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Ring system - All the Jovian planets have ring systems. Saturn’s is the brightest and most extensive.

Page 14: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 15: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 16: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The rings are composed of a great number of small particles, primarily of water ice, all independently orbiting.

Page 17: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 18: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The size of the particles ranges from fractions of a mm to ten’s of meters. The average size is that of a large snowball.

Page 19: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 20: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The rings are very thin, only ten’s of meters thick in some places. Collisions with other particles keep the particles in circular orbits.

Page 21: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 22: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 23: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Why do the Jovian planets have rings?Moons too close to the planet are torn apart by tidal gravitational forces (the same forces that produce Io’s internal heat).

Page 24: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 25: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The pieces of the destroyed moon spread out to form the rings.

Page 26: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 27: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

For a given planet and a given moon, the critical distance, inside of which the moon will be destroyed is called the Tidal Stability Limit, or the Roche Limit.

Page 28: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The material that forms the rings might be a destroyed moon or material from the formation of Saturn that never came together to form a moon.

Page 29: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Voyager found that rather than 3 main bands of rings there are actually tens of thousands of narrow ringlets.

Page 30: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The smaller gaps between the rings are not actually empty but have a low density of particles. The fine structure of the system varies over time.

Page 31: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

The true gaps are probably swept clean by moonlets, but only one moonlet has been found. The other gaps are caused by resonances with the innermost major moon, Mimas.

Page 32: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Other moons that cause resonance gaps are Atlas, Janus, and Epimetheus.

Page 33: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

There is a very thin, “braid-looking”, F-ring influenced by two small moons called shepherd satellites (Prometheus, Pandora).

Page 34: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 35: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 36: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 37: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 38: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Prometheus

Page 39: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Pandora

Page 40: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Voyager revealed more rings than had ever been seen before, both nearer the planet and further away than the original known rings.

Page 41: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 42: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

One other strange feature discovered by Voyager was a series of dark spokes on the B-ring. These moved during one orbital period then disappeared.

Page 43: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 44: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source
Page 45: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

These spokes were actually shadows of dust above the ring. The dust was held in place by electrostatic forces in the ring plane.

Page 46: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source

Saturn’s rings are probably relatively new (50,000,000 years old). There is too much dynamics for them to be stable for billions of years.

Page 47: Interior - Internal Heating - Saturn reradiates three times as much energy as it absorbs; therefore, there must be an internal heat source