Phoebe (moon)

Phoebe (/ˈfbi/ FEE-bee) is the most massive irregular satellite of Saturn with a mean diameter of 213 km (132 mi). It was discovered by William Henry Pickering on 18 March 1899[9] from photographic plates that had been taken by DeLisle Stewart starting on 16 August 1898 at the Boyden Station of the Carmen Alto Observatory near Arequipa, Peru. It was the first natural satellite to be discovered photographically.

Phoebe
Cassini image of Phoebe. Jason crater occupies much of the upper image
Discovery
Discovered byW. H. Pickering
Discovery date18 March 1899 (from photos taken 16 August 1898)
Designations
Designation
Saturn IX
Pronunciation/ˈfbi/ FEE-bee[1][a]
Named after
Φοίβη Phoíbē
AdjectivesPhoebean /fˈbən/ fee-BEE-ən[2]
Orbital characteristics[3]
12 960 000 km
Eccentricity0.1562415
550.564636 d
Inclination173.04° (to the ecliptic)
151.78° (to Saturn's equator)
Satellite ofSaturn
GroupNorse group
Physical characteristics
Dimensions(218.8±2.8) × (217.0±1.2) × (203.6±0.6) km[4]
Mean radius
106.5±0.7 km[4][5]
Mass(8.3123±0.0162)×1018 kg[5]
Mean density
1.6428±0.0326 g/cm3[5]
0.038–0.050 m/s2[4]
≈ 0.102 km/s
9.2735 h (9 h 16 min 25 s ± 3 s)[6]
152.14° (to orbit)[7]
Albedo0.100±0.005[8]
Temperature≈ 73(?) K
6.59±0.02[8]

Phoebe was the first target encountered upon the arrival of the Cassini spacecraft in the Saturn system in 2004, and is thus unusually well-studied for an irregular moon of its size. Cassini's trajectory to Saturn and time of arrival were specifically chosen to permit this flyby.[10] After the encounter and its insertion into orbit, Cassini did not go much beyond the orbit of Iapetus.

Phoebe is roughly spherical and has a differentiated interior. It was spherical and hot early in its history and was battered out of roundness by repeated impacts. It is believed to be a captured centaur that originated in the Kuiper belt.[11] Phoebe is the second-largest retrograde satellite in the Solar System after Triton.[12]

History

Discovery

William Henry Pickering, discoverer of Phoebe

Phoebe was discovered by William Henry Pickering on 18 March 1899[9] from photographic plates that had been taken starting on 16 August 1898 at the Boyden Observatory near Arequipa, Peru, by DeLisle Stewart.[13][14][15][16][17][18] It was the first satellite to be discovered photographically.

Naming

Phoebe is named after Phoebe, a Titaness in Greek mythology associated with the Moon, who was the sister of Cronus (the Greek equivalent of the Roman god Saturn).[16] It is also designated Saturn IX in some scientific literature. The IAU nomenclature standards have stated that features on Phoebe are to be named after characters in the Greek myth of Jason and the Argonauts. In 2005, the IAU officially named 24 craters (see Named features).[19]

Toby Owen of the University of Hawaiʻi at Mānoa, chairman of the International Astronomical Union Outer Solar System Task Group said:

We picked the legend of the Argonauts for Phoebe as it has some resonance with the exploration of the Saturn system by Cassini–Huygens. We can't say that our participating scientists include heroes like Hercules and Atalanta, but they do represent a wide, international spectrum of outstanding people who were willing to take the risk of joining this voyage to a distant realm in hopes of bringing back a grand prize.

Orbit

Animation of Phoebe's orbit.
   Saturn ·    Phoebe ·   Titan

Phoebe's orbit is retrograde; that is, it orbits Saturn opposite to Saturn's rotation. For more than 100 years, Phoebe was Saturn's outermost known moon, until the discovery of several smaller moons in 2000. Phoebe is almost 4 times more distant from Saturn than its nearest major neighbor (Iapetus), and is substantially larger than any of the other moons orbiting planets at comparable distances.

All of Saturn's regular moons except Iapetus orbit very nearly in the plane of Saturn's equator. The outer irregular satellites follow moderately to highly eccentric orbits, and none are expected to rotate synchronously as all the inner moons of Saturn do (except for Hyperion).

Phoebe may form its own subgroup along with two other satellites with similar orbits, S/2006 S 20 and S/2006 S 9.

Phoebe ring

Artist's impression of the Phoebe ring, which dwarfs the main rings

The Phoebe ring is one of the rings of Saturn. This ring is tilted 27 degrees from Saturn's equatorial plane (and the other rings). It extends from at least 128 to 207[20] times the radius of Saturn; Phoebe orbits the planet at an average distance of 215 Saturn radii. The ring is about 40 times as thick as the diameter of the planet.[21] Because the ring's particles are presumed to have originated from micrometeoroid impacts on Phoebe, they should share its retrograde orbit,[22] which is opposite to the orbital motion of the next inner moon, Iapetus. Inwardly migrating ring material would thus strike Iapetus's leading hemisphere, contributing to its two-tone coloration.[23][24][25][26] Although very large, the ring is virtually invisible—it was discovered using NASA's infrared Spitzer Space Telescope.

Material displaced from Phoebe's surface by microscopic meteor impacts may be responsible for the dark areas on the surface of Hyperion.[b] Debris from the biggest impacts may be the origin of the other moons of Phoebe's group (the Norse group)—all of which are less than 10 km in radius.

Physical characteristics

Size comparison between Phoebe (lower left), the Moon (upper left) and Earth
Named craters on Phoebe

Phoebe is roughly spherical and has a diameter of 213±1.4 km[4] (132 mi), approximately one-sixteenth that of the Moon. It is Saturn's ninth-largest moon, but it is the eighth-most massive. Hyperion, another one of Saturn's moons, has a larger radius, but is less massive than Phoebe. Phoebe rotates every nine hours and 16 minutes, and completes a full orbit around Saturn in about 18 months. Its surface temperature is on average 75 K (−198.2 °C).

Cassini's closeup of Phoebe from 13 June 2004; the crater Euphemus is at top center

Most of Saturn's inner moons have very bright surfaces, but Phoebe's albedo is much lower in comparison (0.100±0.005), though relatively bright compared to other irregular moons with measured albedos.[8] The Phoebean surface is heavily scarred, with craters up to 80 kilometres across, one of which has walls 16 kilometres high.[citation needed]

Phoebe's dark coloring initially led to scientists surmising that it was a captured asteroid, as it resembled the common class of dark carbonaceous asteroids.[citation needed] These are chemically very primitive and are thought to be composed of original solids that condensed out of the solar nebula with little modification since then.

However, images from Cassini indicate that Phoebe's craters show a considerable variation in brightness, which indicate the presence of large quantities of ice below a relatively thin blanket of dark surface deposits some 300 to 500 metres (980 to 1,640 ft) thick. In addition, quantities of carbon dioxide have been detected on the surface, a finding that has never been replicated for an asteroid. It is estimated that Phoebe is about 50% rock, as opposed to the 35% or so that typifies Saturn's inner moons. For these reasons, scientists are coming to think that Phoebe is in fact a captured centaur, one of a number of icy planetoids from the Kuiper belt that orbit the Sun between Jupiter and Neptune.[27][28] Phoebe is the first such object to be imaged as anything other than a dot.

Despite its small size, Phoebe is thought to have been a spherical body early in its history, with a differentiated interior, before solidifying and being battered into its current, slightly non-equilibrium shape.[29]

Named features

Apart from one regio named after Phoebe's daughter, Leto, all named features are craters named after characters from the Greek legend of Jason and the Argonauts.[30]

Regios
NamePronunciationGreekCoordinatesDiameter (km)Approval DateNamed AfterRef
Leto Regio/ˈlt/Λητώ60°00′N 20°00′W / 60.0°N 20.0°W / 60.0; -20.0 (Leto)952000Daughter of Phoebe in Greek mythologyWGPSN
Named Phoebean craters
NamePronunciationGreekCoordinatesDiameter (km)Approval DateNamed AfterRef
Acastus/əˈkæstəs/Ἄκαστος9°36′N 148°30′W / 9.6°N 148.5°W / 9.6; -148.5 (Acastus)342006Son of Thessalian king Pelias, took part in the Calydonian boar huntWGPSN
Admetus/ædˈmtəs/Ἄδμητος11°24′N 39°06′W / 11.4°N 39.1°W / 11.4; -39.1 (Admetus)582006Founder and king of Pherae in ThessalyWGPSN
Amphion/æmˈf.ɒn/Ἀμφῑ́ων27°00′S 1°48′W / 27.0°S 1.8°W / -27.0; -1.8 (Amphion)182006Son of Hyperasius and HypsoWGPSN
Butes/ˈbjuːtz/Βούτης49°36′S 292°30′W / 49.6°S 292.5°W / -49.6; -292.5 (Butes)292006Son of Teleon, bee-masterWGPSN
Calais/ˈkæliəs/Κάλαϊς38°42′S 225°24′W / 38.7°S 225.4°W / -38.7; -225.4 (Calais)312006Son of Boreas, the north windWGPSN
Canthus/ˈkænθəs/Κάνθος69°36′S 342°12′W / 69.6°S 342.2°W / -69.6; -342.2 (Canthus)442006Son of Kanethos or Cerion, the only member of the expedition to die in combatWGPSN
Clytius/ˈklɪtiəs, -ʃəs/Κλυτίος46°00′N 193°06′W / 46.0°N 193.1°W / 46.0; -193.1 (Clytius)522006Son of Eurytus, skilled archer who was killed by Apollo for challenging the god to a shooting matchWGPSN
Erginus/ˈɜːrɪnəs/Ἐργῖνος31°36′N 337°06′W / 31.6°N 337.1°W / 31.6; -337.1 (Erginus)382006Son of Neptune, helmsman of the Argo after the death of TiphysWGPSN
Euphemus/jˈfməs/Εὔφημος31°18′S 331°06′W / 31.3°S 331.1°W / -31.3; -331.1 (Euphemus)232006Son of Neptune and EuropaWGPSN
Eurydamas/jʊˈrɪdəməs/Εὐρυδάμᾱς61°30′S 281°36′W / 61.5°S 281.6°W / -61.5; -281.6 (Eurydamas)192006Son of CtimenusWGPSN
Eurytion/jʊˈrɪtiən/Εὐρυτίων30°24′S 8°00′W / 30.4°S 8.0°W / -30.4; -8.0 (Eurytion)142006Son of Kenethos or CerionWGPSN
Eurytus/ˈjʊərɪtəs/Εὔρυτος39°42′S 177°12′W / 39.7°S 177.2°W / -39.7; -177.2 (Eurytus)892006Son of Mercury and AntianiraWGPSN
Hylas/ˈhləs/Ὕλας7°54′N 354°30′W / 7.9°N 354.5°W / 7.9; -354.5 (Hylas)302006Son of Theiodamas/Theodamas, king of the DryopesWGPSN
Idmon/ˈɪdmɒn/Ἴδμων67°06′S 197°48′W / 67.1°S 197.8°W / -67.1; -197.8 (Idmon)612006Son of Apollo and the nymph Cyrene, or of Abas, a prophetWGPSN
Iphitus/ˈɪfɪtəs/Ἴφιτος27°12′S 293°18′W / 27.2°S 293.3°W / -27.2; -293.3 (Iphitus)222006Son of Eurytus, Jason's host during his consultation with the Oracle at DelphiWGPSN
Jason/ˈsən/Ἰάσων16°12′N 317°42′W / 16.2°N 317.7°W / 16.2; -317.7 (Jason)1012006The leading Argonaut, son of the Thessalian king Aeson, delivered the FleeceWGPSN
Mopsus/ˈmɒpsəs/Μόψος6°36′N 109°06′W / 6.6°N 109.1°W / 6.6; -109.1 (Mopsus)372006Prophesying son of ApolloWGPSN
Nauplius/ˈnɔːpliəs/Ναύπλιος31°30′N 241°30′W / 31.5°N 241.5°W / 31.5; -241.5 (Nauplius)242006Son of Neptune and Amymone, or of KlytoneosWGPSN
Oileus/ˈləs/Ὀϊλεύς77°06′S 96°54′W / 77.1°S 96.9°W / -77.1; -96.9 (Oileus)562006King of the Locrians, renowned for his courage in battleWGPSN
Peleus/ˈpləs/Πηλεύς20°12′N 192°12′W / 20.2°N 192.2°W / 20.2; -192.2 (Peleus)442006Son of Aeacus, father of AchillesWGPSN
Phlias/ˈfləs/Φλίας1°36′N 359°06′W / 1.6°N 359.1°W / 1.6; -359.1 (Phlias)142006Son of DionysusWGPSN
Talaus/ˈtæliəs/Ταλαός52°18′S 325°12′W / 52.3°S 325.2°W / -52.3; -325.2 (Talaus)152006Son of Teleon, or of Bias and PeroWGPSN
Telamon/ˈtɛləmən/Τελαμών48°06′S 92°36′W / 48.1°S 92.6°W / -48.1; -92.6 (Telamon)282006Son of Aeacus, took part in the Calydonian boar huntWGPSN
Zetes/ˈztz/Ζήτης20°00′S 223°00′W / 20.0°S 223.0°W / -20.0; -223.0 (Zetes)292006Son of Boreas, the north windWGPSN

Maps

Formation

Phoebe formed in the Kuiper belt within three million years after the origin of the Solar System. This was early enough that sufficient radioactive material was available to melt it into a sphere and stay warm enough to have liquid water for tens of millions of years.[29]

Observation and exploration

Phoebe (with NGC 4179 in the lower right corner) as imaged with a 24" telescope

Unlike Saturn's other moons, Phoebe was not favorably placed for the Voyager probes. Voyager 2 observed Phoebe for a few hours in September 1981. In the images, taken from a distance of 2.2 million kilometres at low phase angle, the size of Phoebe was approximately 11 pixels and showed bright spots on the otherwise dark surface.

Cassini passed 2,068 kilometres (1,285 mi) from Phoebe on 11 June 2004,[31] returning many high-resolution images, which revealed a scarred surface. Because Voyager 2 had not been able to produce any high-quality images of Phoebe, obtaining them was a priority for the Cassini mission[10] and its flight path was deliberately designed to take it close by; otherwise, Cassini would likely not have returned images much better than Voyager's. Because of Phoebe's short rotation period of approximately 9 hours, 17 minutes, Cassini was able to map virtually the entire surface of Phoebe. The close fly-by enabled the mass of Phoebe to be determined with an uncertainty of only 1 in 500.[32]

See also

Notes

References

External links

Listen to this article (7 minutes)
This audio file was created from a revision of this article dated 10 January 2010 (2010-01-10), and does not reflect subsequent edits.