Saturn is the sixth planet from the Sun and the second largest - TopicsExpress



          

Saturn is the sixth planet from the Sun and the second largest planet in the Solar System, after Jupiter. Named after the Roman god of agriculture, its astronomical symbol (♄) represents the gods sickle. Saturn is a gas giant with an average radius about nine times that of Earth.[10][11] Although only one-eighth the average density of Earth, with its larger volume Saturn is just over 95 times more massive.[12][13][14] Saturns interior is probably composed of a core of iron, nickel and rock (silicon and oxygen compounds), surrounded by a deep layer of metallic hydrogen, an intermediate layer of liquid hydrogen and liquid helium and an outer gaseous layer.[15] The planet exhibits a pale yellow hue due to ammonia crystals in its upper atmosphere. Electrical current within the metallic hydrogen layer is thought to give rise to Saturns planetary magnetic field, which is weaker than Earths magnetic field but has a magnetic moment 580 times that of the Earth due to Saturns larger body radius. Saturns magnetic field strength is around one-twentieth the strength of Jupiters.[16] The outer atmosphere is generally bland and lacking in contrast, although long-lived features can appear. Wind speeds on Saturn can reach 1,800 km/h (500 m/s), faster than on Jupiter, but not as fast as those on Neptune.[17] Saturn has a prominent ring system that consists of nine continuous main rings and three discontinuous arcs, composed mostly of ice particles with a smaller amount of rocky debris and dust. Sixty-two[18] known moons orbit the planet; fifty-three are officially named. This does not include the hundreds of moonlets comprising the rings. Titan, Saturns largest and the Solar Systems second largest moon, is larger than the planet Mercury and is the only moon in the Solar System to retain a substantial atmosphere.[19] Contents 1 Physical characteristics 1.1 Internal structure 2 Atmosphere 2.1 Cloud layers 2.2 North pole hexagonal cloud pattern 2.3 South pole vortex 2.4 Other features 3 Magnetosphere 4 Orbit and rotation 5 Planetary rings 6 Natural satellites 7 History of exploration 7.1 Ancient observations 7.2 European observations (17th–19th centuries) 7.3 Modern NASA and ESA probes 7.3.1 Pioneer 11 flyby 7.3.2 Voyager flybys 7.3.3 Cassini–Huygens spacecraft 8 Observation 9 In culture 10 See also 11 Notes 12 References 13 Further reading 14 External links Physical characteristics Composite image roughly comparing the sizes of Saturn and Earth Saturn is classified as a gas giant because the exterior is predominantly composed of gas and it lacks a definite surface, although it may have a solid core.[20] The rotation of the planet causes it to take the shape of an oblate spheroid; that is, it is flattened at the poles and bulges at the equator. Its equatorial and polar radii differ by almost 10%: 60,268 km versus 54,364 km, respectively.[3] Jupiter, Uranus, and Neptune, the other gas giants in the Solar System, are also oblate but to a lesser extent. Saturn is the only planet of the Solar System that is less dense than water—about 30% less.[21] Although Saturns core is considerably denser than water, the average specific density of the planet is 0.69 g/cm3 due to the gaseous atmosphere. Jupiter has 318 times the Earths mass,[22] while Saturn is 95 times the mass of the Earth,[3] Together, Jupiter and Saturn hold 92% of the total planetary mass in the Solar System.[23] Internal structure Saturn is termed a gas giant, but it is not entirely gaseous. The planet primarily consists of hydrogen, which becomes a non-ideal liquid when the density is above 0.01 g/cm3. This density is reached at a radius containing 99.9% of Saturns mass. The temperature, pressure and density inside the planet all rise steadily toward the core, which, in the deeper layers of the planet, cause hydrogen to transition into a metal.[23] Standard planetary models suggest that the interior of Saturn is similar to that of Jupiter, having a small rocky core surrounded by hydrogen and helium with trace amounts of various volatiles.[24] This core is similar in composition to the Earth, but more dense. Examination of the gravitational moment of the planet, in combination with physical models of the interior, allowed French astronomers Didier Saumon and Tristan Guillot to place constraints on the mass of the planets core. In 2004, they estimated that the core must be 9–22 times the mass of the Earth,[25][26] which corresponds to a diameter of about 25,000 km.[27] This is surrounded by a thicker liquid metallic hydrogen layer, followed by a liquid layer of helium-saturated molecular hydrogen that gradually transitions into gas with increasing altitude. The outermost layer spans 1,000 km and consists of a gaseous atmosphere.[28][29][30] Saturn has a hot interior, reaching 11,700 °C at the core, and the planet radiates 2.5 times more energy into space than it receives from the Sun. Most of this extra energy is generated by the Kelvin–Helmholtz mechanism of slow gravitational compression, but this alone may not be sufficient to explain Saturns heat production. An additional mechanism may be at play whereby Saturn generates some of its heat through the raining out of droplets of helium deep in its interior. As the droplets descend through the lower-density hydrogen, the process releases heat by friction and leaves the outer layers of the planet depleted of helium.[31][32] These descending droplets may have accumulated into a helium shell surrounding the core.[24] Diagram of Saturn Diagram of Saturn Atmosphere Auroral lights at Saturn’s north pole.[33] The outer atmosphere of Saturn contains 96.3% molecular hydrogen and 3.25% helium by volume.[34] The proportion of helium is significantly deficient compared to the abundance of this element in the Sun.[24] The quantity of elements heavier than helium are not known precisely, but the proportions are assumed to match the primordial abundances from the formation of the Solar System. The total mass of these heavier elements is estimated to be 19–31 times the mass of the Earth, with a significant fraction located in Saturns core region.[35] Trace amounts of ammonia, acetylene, ethane, propane, phosphine and methane have been detected in Saturns atmosphere.[36][37][38] The upper clouds are composed of ammonia crystals, while the lower level clouds appear to consist of either ammonium hydrosulfide (NH4SH) or water.[39] Ultraviolet radiation from the Sun causes methane photolysis in the upper atmosphere, leading to a series of hydrocarbon chemical reactions with the resulting products being carried downward by eddies and diffusion. This photochemical cycle is modulated by Saturns annual seasonal cycle.[38] Cloud layers A global storm girdles the planet in 2011. The head of the storm (bright area) passes the tail circling around the left limb. Saturns atmosphere exhibits a banded pattern similar to Jupiters, but Saturns bands are much fainter and are much wider near the equator. The nomenclature used to describe these bands is the same as on Jupiter. Saturns finer cloud patterns were not observed until the flybys of the Voyager spacecraft during the 1980s. Since then, Earth-based telescopy has improved to the point where regular observations can be made.[40] The composition of the clouds varies with depth and increasing pressure. In the upper cloud layers, with the temperature in the range 100–160 K and pressures extending between 0.5–2 bar, the clouds consist of ammonia ice. Water ice clouds begin at a level where the pressure is about 2.5 bar and extend down to 9.5 bar, where temperatures range from 185–270 K. Intermixed in this layer is a band of ammonium hydrosulfide ice, lying in the pressure range 3–6 bar with temperatures of 290–235 K. Finally, the lower layers, where pressures are between 10–20 bar and temperatures are 270–330 K, contains a region of water droplets with ammonia in aqueous solution.[41] Saturns usually bland atmosphere occasionally exhibits long-lived ovals and other features common on Jupiter. In 1990, the Hubble Space Telescope imaged an enormous white cloud near Saturns equator that was not present during the Voyager encounters and in 1994, another, smaller storm was observed. The 1990 storm was an example of a Great White Spot, a unique but short-lived phenomenon that occurs once every Saturnian year, roughly every 30 Earth years, around the time of the northern hemispheres summer solstice.[42] Previous Great White Spots were observed in 1876, 1903, 1933 and 1960, with the 1933 storm being the most famous. If the periodicity is maintained, another storm will occur in about 2020.[43] The winds on Saturn are the second fastest among the Solar Systems planets, after Neptunes. Voyager data indicate peak easterly winds of 500 m/s (1800 km/h).[44] In images from the Cassini spacecraft during 2007, Saturns northern hemisphere displayed a bright blue hue, similar to Uranus. The color was most likely caused by Rayleigh scattering.[45] Infrared imaging has shown that Saturns south pole has a warm polar vortex, the only known example of such a phenomenon in the Solar System.[46] Whereas temperatures on Saturn are normally −185 °C, temperatures on the vortex often reach as high as −122 °C, believed to be the warmest spot on Saturn.[46] North pole hexagonal cloud pattern Saturn - North polar hexagon and vortex as well as rings (April 2, 2014). Main article: Saturns hexagon A persisting hexagonal wave pattern around the north polar vortex in the atmosphere at about 78°N was first noted in the Voyager images.[47][48][49] The sides of the hexagon are each about 13,800 km (8,600 mi) long, which is longer than the diameter of the Earth.[50] The entire structure rotates with a period of 10h 39m 24s (the same period as that of the planets radio emissions) which is assumed to be equal to the period of rotation of Saturns interior.[51] The hexagonal feature does not shift in longitude like the other clouds in the visible atmosphere.[52] The patterns origin is a matter of much speculation. Most astronomers believe it was caused by some standing-wave pattern in the atmosphere. Polygonal shapes have been replicated in the laboratory through differential rotation of fluids.[53][54] South pole vortex Saturns south pole storm HST imaging of the south polar region indicates the presence of a jet stream, but no strong polar vortex nor any hexagonal standing wave.[55] NASA reported in November 2006 that Cassini had observed a hurricane-like storm locked to the south pole that had a clearly defined eyewall.[56][57] This observation is particularly notable because eyewall clouds had not previously been seen on any planet other than Earth. For example, images from the Galileo spacecraft did not show an eyewall in the Great Red Spot of Jupiter.[58] The south pole storm may have been present for billions of years.[59] This vortex is comparable to the size of Earth, and it has winds of 550 km/h.[59] Other features Cassini has observed a series of cloud features nicknamed String of Pearls found in northern latitudes. These features are cloud clearings that reside in deeper cloud layers.[60] Magnetosphere Main article: Magnetosphere of Saturn HST UV image of Saturn taken near equinox showing both polar aurorae Saturn has an intrinsic magnetic field that has a simple, symmetric shape – a magnetic dipole. Its strength at the equator – 0.2 gauss (20 µT) – is approximately one twentieth of that of the field around Jupiter and slightly weaker than Earths magnetic field.[16] As a result Saturns magnetosphere is much smaller than Jupiters.[61] When Voyager 2 entered the magnetosphere, the solar wind pressure was high and the magnetosphere extended only 19 Saturn radii, or 1.1 million km (712,000 mi),[62] although it enlarged within several hours, and remained so for about three days.[63] Most probably, the magnetic field is generated similarly to that of Jupiter – by currents in the liquid metallic-hydrogen layer called a metallic-hydrogen dynamo.[61] This magnetosphere is efficient at deflecting the solar wind particles from the Sun. The moon Titan orbits within the outer part of Saturns magnetosphere and contributes plasma from the ionized particles in Titans outer atmosphere.[16] Saturns magnetosphere, like Earths, produces aurorae.[64] Orbit and rotation The average distance between Saturn and the Sun is over 1.4×109 km (9 AU). It takes Saturn 10,759 Earth days (or about 29 1⁄2 Earth years), to finish one revolution around the Sun. The average distance between Saturn and the Sun is over 1.4 billion kilometres (9 AU). With an average orbital speed of 9.69 km/s,[3] it takes Saturn 10,759 Earth days (or about 29½ years),[65] to finish one revolution around the Sun.[3] The elliptical orbit of Saturn is inclined 2.48° relative to the orbital plane of the Earth.[3] The perihelion and aphelion distances are, respectively, 9.022 and 10.053 au, on average.[66] The visible features on Saturn rotate at different rates depending on latitude and multiple rotation periods have been assigned to various regions (as in Jupiters case). System I has a period of 10 h 14 min 00 s (844.3°/d) and encompasses the Equatorial Zone, the South Equatorial Belt and the North Equatorial Belt. All other Saturnian latitudes, excluding the north and south polar regions, are indicated as System II and have been assigned a rotation period of 10 h 38 min 25.4 s (810.76°/d). The polar regions are considered to have rotation rates similar to System I. System III refers to Saturns internal rotation rate. Based on radio emissions from the planet in the period of the Voyager flybys, it has been assigned a rotation period of 10 h 39 min 22.4 s (810.8°/d). Because it is close to System II, it has largely superseded it.[67] A precise value for the rotation period of the interior remains elusive, however. While approaching Saturn in 2004, Cassini found that the radio rotation period of Saturn had increased appreciably, to approximately 10 h 45 m 45 s (± 36 s).[68][69] In March 2007, it was found that the variation of radio emissions from the planet did not match Saturns rotation rate. This variance may be caused by geyser activity on Saturns moon Enceladus. The water vapor emitted into Saturns orbit by this activity becomes charged and creates a drag upon Saturns magnetic field, slowing its rotation slightly relative to the rotation of the planet.[70][71][71] The latest estimate of Saturns rotation (as an indicated rotation rate for Saturn as a whole) based on a compilation of various measurements from the Cassini, Voyager and Pioneer probes was reported in September 2007 is 10 hours, 32 minutes, 35 seconds.[72] Planetary rings Main article: Rings of Saturn The rings of Saturn (imaged here by Cassini in 2007) are the most massive and conspicuous in the Solar System.[29] False-color UV image of Saturns outer B and A rings; dirtier ringlets in the Cassini Division and Enke Gap show up red. Saturn is probably best known for the system of planetary rings that makes it visually unique.[29] The rings extend from 6,630 km to 120,700 km above Saturns equator, average approximately 20 meters in thickness and are composed of 93% water ice with traces of tholin impurities and 7% amorphous carbon.[73] The particles that make up the rings range in size from specks of dust up to 10 m.[74] While the other gas giants also have ring systems, Saturns is the largest and most visible. There are two main hypotheses regarding the origin of the rings. One hypothesis is that the rings are remnants of a destroyed moon of Saturn. The second hypothesis is that the rings are left over from the original nebular material from which Saturn formed. Some ice in the central rings comes from the moon Enceladuss ice volcanoes.[75] In the past, astronomers believed the rings formed alongside the planet when it formed billions of years ago.[76] Instead, the age of these planetary rings is probably some hundreds of millions of years.[77] Beyond the main rings at a distance of 12 million km from the planet is the sparse Phoebe ring, which is tilted at an angle of 27° to the other rings and, like Phoebe, orbits in retrograde fashion.[78] Some of the moons of Saturn, including Pandora and Prometheus, act as shepherd moons to confine the rings and prevent them from spreading out.[79] Pan and Atlas cause weak, linear density waves in Saturns rings that have yielded more reliable calculations of their masses.[80] Natural satellites Main article: Moons of Saturn A montage of Saturn and its principal moons (Dione, Tethys, Mimas, Enceladus, Rhea and Titan; Iapetus not shown). This famous image was created from photographs taken in November 1980 by the Voyager 1 spacecraft. Saturn has at least 150 moons and moonlets, 53 of which have formal names.[81][82] Titan, the largest, comprises more than 90% of the mass in orbit around Saturn, including the rings.[83] Saturns second largest moon, Rhea, may have a tenuous ring system of its own,[84] along with a tenuous atmosphere.[85][86][87][88] Possible beginning of a new moon of Saturn (April 15, 2013). Many of the other moons are small: 34 are less than 10 km in diameter and another 14 less than 50 km but larger than 10 km.[89] Traditionally, most of Saturns moons have been named after Titans of Greek mythology. Titan is the only satellite in the Solar System with a major atmosphere[90][91] in which a complex organic chemistry occurs. It is the only satellite with hydrocarbon lakes.[92][93] On June 6, 2013, scientists at the IAA-CSIC reported the detection of polycyclic aromatic hydrocarbons in the upper atmosphere of Titan, a possible precursor for life.[94] On June 23, 2014, NASA claimed to have strong evidence that nitrogen in the atmosphere of Titan came from materials in the Oort cloud, associated with comets, and not from the materials that formed Saturn in earlier times.[95] Saturns moon Enceladus has often been regarded as a potential base for microbial life.[96][97][98][99] Evidence of this possibility includes the satellites salt-rich particles having an ocean-like composition that indicates most of Enceladuss expelled ice comes from the evaporation of liquid salt water.[100][101][102] In April 2014, NASA scientists reported the possible beginning of a new moon, within the A Ring, of the planet Saturn.[103] History of exploration Main article: Exploration of Saturn There have been three main phases in the observation and exploration of Saturn. The first era was ancient observations (such as with the naked eye), before the invention of the modern telescopes. Starting in the 17th century progressively more advanced telescopic observations from earth have been made. The other type is visitation by spacecraft, either by orbiting or flyby. In the 21st century observations continue from the earth (or earth-orbiting observatories) and from the Cassini orbiter at Saturn. Ancient observations See also: Saturn (mythology) Saturn has been known since prehistoric times.[104] In ancient times, it was the most distant of the five known planets in the solar system (excluding Earth) and thus a major character in various mythologies. Babylonian astronomers systematically observed and recorded the movements of Saturn.[105] In ancient Roman mythology, the god Saturnus, from which the planet takes its name, was the god of agriculture.[106] The Romans considered Saturnus the equivalent of the Greek god Cronus.[106] The Greeks had made the outermost planet sacred to Cronus,[107] and the Romans followed suit. (In modern Greek, the planet retains its ancient name Cronus—Κρόνος: Kronos.)[108] The Greek scientist Ptolemy based his calculations of Saturns orbit on observations he made while the planet was in opposition.[109] In Hindu astrology, there are nine astrological objects, known as Navagrahas. Saturn, one of them, is known as Shani, judges everyone based on the good and bad deeds performed in life.[106][109] Ancient Chinese and Japanese culture designated the planet Saturn as the earth star (土星). This was based on Five Elements which were traditionally used to classify natural elements.[110] In ancient Hebrew, Saturn is called Shabbathai.[111] Its angel is Cassiel. Its intelligence or beneficial spirit is Agiel (layga) and its spirit (darker aspect) is Zazel (lzaz). In Ottoman Turkish, Urdu and Malay, its name is Zuhal, derived from Arabic زحل. European observations (17th–19th centuries) Robert Hooke noted the shadows (a and b) cast by both the globe and the rings on each other in this drawing of Saturn in 1666. Saturns rings require at least a 15-mm-diameter telescope[112] to resolve and thus were not known to exist until Galileo first saw them in 1610.[113][114] He thought of them as two moons on Saturns sides.[115][116] It was not until Christiaan Huygens used greater telescopic magnification that this notion was refuted. Huygens discovered Saturns moon Titan; Giovanni Domenico Cassini later discovered four other moons: Iapetus, Rhea, Tethys and Dione. In 1675, Cassini discovered the gap now known as the Cassini Division.[117] No further discoveries of significance were made until 1789 when William Herschel discovered two further moons, Mimas and Enceladus. The irregularly shaped satellite Hyperion, which has a resonance with Titan, was discovered in 1848 by a British team.[118] In 1899 William Henry Pickering discovered Phoebe, a highly irregular satellite that does not rotate synchronously with Saturn as the larger moons do.[118] Phoebe was the first such satellite found and it takes more than a year to orbit Saturn in a retrograde orbit. During the early 20th century, research on Titan led to the confirmation in 1944 that it had a thick atmosphere – a feature unique among the solar systems moons.[119] Modern NASA and ESA probes Pioneer 11 flyby Pioneer 11 (a.k.a Pioneer-Saturn) Pioneer 11 carried out the first flyby of Saturn in September 1979, when it passed within 20,000 km of the planets cloud tops. Images were taken of the planet and a few of its moons, although their resolution was too low to discern surface detail. The spacecraft also studied Saturns rings, revealing the thin F-ring and the fact that dark gaps in the rings are bright when viewed at high phase angle (towards the sun), meaning that they contain fine light-scattering material. In addition, Pioneer 11 measured the temperature of Titan.[120] Voyager flybys In November 1980, the Voyager 1 probe visited the Saturn system. It sent back the first high-resolution images of the planet, its rings and satellites. Surface features of various moons were seen for the first time. Voyager 1 performed a close flyby of Titan, increasing knowledge of the atmosphere of the moon. It proved that Titans atmosphere is impenetrable in visible wavelengths, therefore no surface details were seen. The flyby changed the spacecrafts trajectory out from the plane of the solar system.[121] Almost a year later, in August 1981, Voyager 2 continued the study of the Saturn system. More close-up images of Saturns moons were acquired, as well as evidence of changes in the atmosphere and the rings. Unfortunately, during the flyby, the probes turnable camera platform stuck for a couple of days and some planned imaging was lost. Saturns gravity was used to direct the spacecrafts trajectory towards Uranus.[121] The probes discovered and confirmed several new satellites orbiting near or within the planets rings, as well as the small Maxwell Gap (a gap within the C Ring) and Keeler gap (a 42 km wide gap in the A Ring). Cassini–Huygens spacecraft On July 1, 2004, the Cassini–Huygens space probe performed the SOI (Saturn Orbit Insertion) maneuver and entered into orbit around Saturn. Before the SOI, Cassini had already studied the system extensively. In June 2004, it had conducted a close flyby of Phoebe, sending back high-resolution images and data. Cassini - Titan flyby radio signal studies (artist concept; June 17, 2014) Cassinis flyby of Saturns largest moon, Titan, has captured radar images of large lakes and their coastlines with numerous islands and mountains. The orbiter completed two Titan flybys before releasing the Huygens probe on December 25, 2004. Huygens descended onto the surface of Titan on January 14, 2005, sending a flood of data during the atmospheric descent and after the landing.[122] Cassini has since conducted multiple flybys of Titan and other icy satellites. NASA-ESAs Cassini spacecraft photographs the Earth and Moon (visible bottom-right) from Saturn (July 19, 2013). Saturns North polar vortex (animation) (infrared) Since early 2005, scientists have been tracking lightning on Saturn. The power of the lightning is approximately 1,000 times that of lightning on Earth.[123] In 2006, NASA reported that Cassini had found evidence of liquid water reservoirs that erupt in geysers on Saturns moon Enceladus. Images had shown jets of icy particles being emitted into orbit around Saturn from vents in the moons south polar region. According to Andrew Ingersoll, California Institute of Technology, Other moons in the solar system have liquid-water oceans covered by kilometers of icy crust. Whats different here is that pockets of liquid water may be no more than tens of meters below the surface.[124] Over 100 geysers have been identified on Enceladus.[125] In May 2011, NASA scientists at an Enceladus Focus Group Conference reported that Enceladus is emerging as the most habitable spot beyond Earth in the Solar System for life as we know it.[126][127] Cassini photographs have led to other significant discoveries. They have revealed a previously undiscovered planetary ring, outside the brighter main rings of Saturn and inside the G and E rings. The source of this ring is believed to be the crashing of a meteoroid off two of the moons of Saturn.[128] In July 2006, Cassini images provided evidence of hydrocarbon lakes near Titans north pole, the presence of which were confirmed in January 2007. In March 2007, additional images near Titans north pole revealed hydrocarbon seas, the largest of which is almost the size of the Caspian Sea.[129] In October 2006, the probe detected an 8,000 km diameter cyclone-like storm with an eyewall at Saturns south pole.[130] Enceladus - South Pole - Geysers spray water from many locations along the tiger stripes.[125] From 2004 to November 2, 2009, the probe discovered and confirmed 8 new satellites. Its primary mission ended in 2008 when the spacecraft had completed 74 orbits around the planet. The probes mission was extended to September 2010 and then extended again to 2017, to study a full period of Saturns seasons.[131] In April 2013 Cassini sent back images of a hurricane at the planets north pole 20 times larger than those found on Earth, with winds faster than 530 km/h.[132] On July 19, 2013, Cassini was pointed towards Earth to capture an image of the Earth and the Moon (and, as well, Venus and Mars) as part of a natural light, multi-image portrait of the entire Saturn system. The event was unique as it was the first time NASA informed the people of Earth that a long-distance photo was being taken in advance.[133] Observation Amateur telescopic view Saturn is the most distant of the five planets easily visible to the naked eye, the other four being Mercury, Venus, Mars and Jupiter. (Uranus and occasionally 4 Vesta are visible to the naked eye in dark skies.) Saturn appears to the naked eye in the night sky as a bright, yellowish point of light with an apparent magnitude of usually between +1 and 0. It takes approximately 29.5 years for the planet to complete an entire circuit of the ecliptic against the background constellations of the zodiac. Most people will require an optical aid (very large binoculars or a small telescope) that magnifies at least 30 times to achieve an image of Saturns rings, in which clear resolution is present.[29][112] Twice every Saturnian year (roughly every 15 Earth years), the rings briefly disappear from view, due to the way in which they are angled and because they are so thin.[134] Such a disappearance will next occur in 2025, but Saturn will be too close to the sun for any ring-crossing observation to be possible.[135] Saturn and its rings are best seen when the planet is at, or near, opposition, the configuration of a planet when it is at an elongation of 180°, and thus appears opposite the Sun in the sky. A Saturnian opposition occurs every year—approximately every 378 days—and results in the planet appearing at its brightest. However, both the Earth and Saturn orbit the sun on eccentric orbits, which means their distances from the sun vary over time, and therefore so do their distances from each other, hence varying the brightness of Saturn from one opposition to the other. Also, Saturn appears brighter when the rings are angled such that they are more visible. For example, during the opposition of December 17, 2002, Saturn appeared at its brightest due to a favorable orientation of its rings relative to the Earth,[136] even though Saturn was closer to the Earth and Sun in late 2003.[136] Saturn eclipses the Sun, as seen from Cassini. Also, from time to time Saturn is occulted by the moon (that is, the Moon covers up Saturn in the sky). As with all of the planets in our solar system, occultations of Saturn occur in “seasons”. Saturnian occultations will take place 12 or more times over a 12-month period, followed by about a five-year period in which no such activity is registered.[137] Australian astronomy experts Hill and Horner explain the seasonal nature of Saturnian occultations: This is the result of the fact that the moon’s orbit around the Earth is tilted to the orbit of the Earth around the sun – and so most of the time, the moon will pass above or below Saturn in the sky, and no occultation will occur. It is only when Saturn lies near the point that the moon’s orbit crosses the “plane of the ecliptic” that occultations can happen – and then they occur every time the moon swings by, until Saturn moves away from the crossing point.[137] In culture Saturn, from a 1550 edition of Guido Bonattis Liber astronomiae Further information: Saturn in fiction Saturn in astrology (Saturn symbol.svg) is the ruling planet of Capricorn and, traditionally, Aquarius. Saturn, the Bringer of Old Age is a movement in Gustav Holsts The Planets. The Saturn family of rockets were developed by a team of mostly German rocket scientists led by Wernher von Braun to launch heavy payloads to Earth orbit and beyond.[138] Originally proposed as a military satellite launcher, they were adopted as the launch vehicles for the Apollo program. The day Saturday is named after the planet Saturn, which is derived from the Roman god of agriculture, Saturn (linked to the Greek god Cronus).[139][140] In Saturns Rings is an upcoming movie from director Stephen van Vuuren about Saturn. It features more than a million photographs of the planet assembled with various techniques. The film is expected to be released in late 2014. 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(Audio help) More spoken articles Sound-icon.svg Find more about Saturn at Wikipedias sister projects Search Wiktionary Definitions from Wiktionary Search Commons Media from Commons Search Wikinews News stories from Wikinews Search Wikibooks Textbooks from Wikibooks Search Wikiversity Learning resources from Wikiversity Saturn profile at NASAs Solar System Exploration site Saturn Fact Sheet, by NASA Gazeteer of Planetary Nomenclature – Saturn (USGS) Cassini–Huygens mission to Saturn, by NASA Research News about Saturn General information about Saturn Studies on the Rings of Saturn Astronomy Cast: Saturn Saturn in Daytime (12 inch telescope) Saturn Rev 175 Raw Preview Haese, Paul. Capturing Saturn. Sixty Symbols. Brady Haran for the University of Nottingham.
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