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Solar System

Webpages concerning "Solar System"

Provides detailed information related to known bodies in orbit around the sun. Ephemerides, physical parameters, Earth close-approaches, observer tools, etc.
http://ssd.jpl.nasa.gov/
Keywords:
Ephemeris, Ephemerides, Orbital Dynamics, Orbital Elements, Orbits, Horizons, Planets, Satellites, Comets, Asteroids, Physical Parameters, Astronomical Constants, Radar Astrometry, Discovery Circumstances, Solar System Dynamics, JPL

http://ssd.jpl.nasa.gov/

New ideas about the rotation of sun and planets
http://www.heeke.com/franz
Keywords:
sun's motion, sunspots, differential rotation, planets, planetary rings, mean, density, of, planets, origin, of, solar, system, climate variations

http://www.heeke.com/franz

A guide to the Solar System for visitors of all ages featuring a scale model, interactive quiz, text and images
http://www.solarsystem.org.uk/
Keywords:
solar, system, planets, mercury, venus, earth, mars, jupiter, saturn, uranus, neptune, pluto, Sun, Moon, space, quiz, data, facts, education, learn

http://www.solarsystem.org.uk/

Planetary nomenclature, like terrestrial nomenclature, is used to uniquely identify a feature on the surface of a planet or satellite so that the feature can be easily located, described, and discussed. This volume contains detailed information about all names of topographic and albedo features on planets and satellites (and some planetary ring and ring-gap systems) t...
http://planetarynames.wr.usgs.gov/
Keywords:
nomenclature, astrogeology, planetary geology, space science, earth science, geology, geologic mapping, planetary naming, Mars, Earth, Venus, Jupiter, Saturn, Uranus, Mercury, Neptune, Pluto, comet, asteroid, IAU, International Astronomical Union

http://planetarynames.wr.usgs.gov/

Views of the Solar System presents a multimedia adventure unfolding the splendor of the Sun, planets, moons, comets and asteroids. Discover the history of space exploration, rocketry, early astronauts, space missions, and a large image/video archive.
http://www.solarviews.com/eng/homepage.htm
Keywords:
solar system, rocketry, astronauts, sun, sol, solar, solar flare, sun spot, sunspot, mercury, venus, earth, moon, luna, lunar, crater, mars, martian, deimos, phobos, asteroid, gaspra, ida, dactyl, toutatis, castalia, vesta, geographos, mathilde, jupiter, jovian, galileo, galilean moons, adrastea, amalthea, ananke, callisto, carme, elara, europa, ganymede, himalia, io, leda, lysithea, metis, ...

http://www.solarviews.com/eng/homepage.htm

Your travel guide to the Solar System from BBCi. Includes exclusive video and audio clips and an interactive 3D tour.
http://www.bbc.co.uk/science/space/solarsystem/index.shtml
Keywords:
solar system, solar, system, planets, planet, space, astronomy, 3D, 3-d, three dimensional

http://www.bbc.co.uk/science/space/solarsystem/index.shtml

Free Software for Planetary Science
http://members.tripod.com/petermasek/marinerall.html
Keywords:
Mariner 10, Mercury, Mercury Mariner 10, Venus Mariner 10, Mariner 10 Mission, Mariner 6, Mariner 7, Mariner 9, Mariner 10

http://members.tripod.com/petermasek/marinerall.html

Information about our solar system and its planets, moons, asteroids and comets. Includes some of the major planetary missions and information about the Kuiper belt and Oort cloud. Plus 3D rotating models.
http://www.dunnbypaul.net/solarsystem/Main_A.html
Keywords:
solar system, solarsystem, our solar system, the solar system, oursolarsystem, planets, sun, star, asteroid belt, astroid belt, comets, kuiper belt, astronomy, mercury, venus, earth, mars, jupiter, saturn, uranus, neptune, pluto, moon, moons, solar system, solar, sun, astral, space, astronomy, solar system, astral system, stellar system, planetary missions, astrogeology, planetology

http://www.dunnbypaul.net/solarsystem/Main_A.html

Welcome to Planet explorer,explore all the known planets in the universe, Keep your head above the clouds
http://www.d.smiley1.btinternet.co.uk/
Keywords:
planets, explore, universe, mercury, venus, earth, mars, jupiter, saturn, neptune, uranus, pluto, planet, news

http://www.d.smiley1.btinternet.co.uk/

Ralph Aeschliman's image maps, albedo maps and topo maps of Mars, Venus, the Moon. Here are selected images of Mars, image maps of Spirit and Opportunity rover landing sites, maps of Valles Marineris. The new online Atlas of Mars divides Mars into 20 quadrangles and has maps of each. These are the North Pole, Alba Patera, Tempe Terra, Cydonia, Nilosyrtis, Utopia, Cebrenia, Tharsis, Marineris, Meri...
http://ralphaeschliman.com
Keywords:
Ralph Aeschliman, Online, Atlas, of, Mars, Mars, Mars map, Mars topo map, North Pole, Alba Patera, Tempe Terra, Cydonia, Nilosyrtis, Utopia, Cebrenia, Tharsis, Marineris, Meridiani, Syrtis Major, Hesperia, Memnonia, Icaria, Argyre, Noachis, Hellas, Prometheus, Cimmeria, Australe, South Pole, Lunar map, Moon map, Taurus-Littrow Valley, Apollo 17, Mars image, Spirit, Mars rover, Opportunity, ...

http://ralphaeschliman.com

Space Exploration from Astronomy and Space Exploration, Astronauts to Telescopes and more. Apollo, Space Shuttles, Astronauts and other Space Exploration Replicas.
http://www.skyscopes.com/
Keywords:
skyscopes, skyscopes.com, Apollo, SpaceShuttle, shuttle, Mercury, Mars, Jupiter, Saturn, Neptune, Uranus, Pluto, Asteroids, Comets, astronomy, astronomer, astronomers, astronomical, space, information, products, telescopes, telescope, eyepiece, eyepieces, barlow, barlows, meade, lx, lx-200, lx-90, digital, etx, etx-90, etx-60, etx-70, etx-90, vehicles, iss, space, rockets, mars, venus, sun, ...

http://www.skyscopes.com/

The Solar System Exploration Home Page is part of NASA's Office of Space Science and describes NASA's program to explore the solar system.
http://solarsystem.nasa.gov/index.cfm
Keywords:
Solar System Exploration, SSE, Space, NASA, National, Aeronautics, and, Space, Administration, JPL, Jet Propulsion Laboratory, Planets

http://solarsystem.nasa.gov/index.cfm

Information about each planet and moon in our solar system with many pictures of each planet, discussion of the history of its discovery and exploration, and its physical characteristics. In addition to the planets, there are also pages about the Sun, many moons, and asteroids, comets and meteorites.
http://www.nineplanets.org/
Keywords:
planet, planets, telescope, telescopes, meade, celestron, orion, binocular, binoculars, NASA, space, solar system, mercury, venus, mars, earth, jupiter, saturn, uranus, neptune, pluto, moon, satellite

http://www.nineplanets.org/

Editors of the World Book Encyclopedia have prepared a feature on the outer planets of the solar system, including information on the atmospheres and surfaces of Neptune, Uranus, and Pluto, and what scientists have learned from studying the planets.
http://www2.worldbook.com/features/outerplanets/html/index.html
Keywords:
planet, solar system, Neptune, Uranus, Pluto, Triton, satellites, moons, World Book, World Book Encyclopedia, encyclopedia, encyclopedias, World Book, Inc., World, Book, Multimedia, Encyclopedia

http://www2.worldbook.com/features/outerplanets/html/index.html

All sorts of amazing useful information about the Solar System including planets, vital statistics, images, the sun and all latest news.
http://www.solarspace.co.uk/
Keywords:
solar, solar system, star, sun, asteroid, comet, meteor, meteorite, asteroid belt, mercury, venus, earth, moon, mars, jupiter, saturn, uranus, neptune, pluto, space, picture, image, immagini, sistema solare

http://www.solarspace.co.uk/

Pictures and quizzes about all the planets in the solar system.
http://www.the-solar-system.net/
Keywords:
solar, system, pictures, planets

http://www.the-solar-system.net/

New Equation to calculate the rotation of any large body circled by satellite.
http://www.geocities.com/saeles/planetsrotation.htm
Keywords:
astronomy, solar system, sun, sunspots, moon, planats, celestial mechanics, spining, earth, mars, jupiter, saturn, uranus, neptune, pluto

http://www.geocities.com/saeles/planetsrotation.htm

The Solarsystem: Astronomical information and space art. Solarsystem in the past and the present solarsystem. Terrestrial planets of the inner solarsystem... Jovian planets in the outer solarsystem, Kuiper belt objects
http://www.novacelestia.com/space_art_solar_system.html
Keywords:
space art, astronomical illustrations, astronomy, solar system creation, sun, mercury, venus, earth, mars, asteroid belt, jupiter, saturn, uranus, neptune, kuiper belt, pluto, comets, oort cloud

http://www.novacelestia.com/space_art_solar_system.html

Home page for the USGS Astrogeology Program, featuring planetary imagery, research, GIS, mapping, and image processing software.
http://astrogeology.usgs.gov/
Keywords:
astrogeology, planetary geology, space science, earth science, geology, geologic mapping, image processing, planetary imagery, Mars, Earth, Venus, Jupiter, Saturn, Uranus, Mercury, Neptune, Pluto, comet, asteroid, meteor, remote sensing

http://astrogeology.usgs.gov/

The definitive guide to anything and everything about the solarsystem. Also with a quiz to test your knowledge
http://www.evula.org/solarsystem
Keywords:
solar, system, solar system, solar knowledge, sun, mercury, venus, earth, mars, asteroid belt, ceres, jupiter, saturn, uranus, neptune, pluto, kupier belt, oort cloud, sol, milky way

http://www.evula.org/solarsystem

Discover The Planets is your ultimate source for any and all information you need about our corner of the Universe!
http://www.discovertheplanets.com
Keywords:
Discover The Planets, Planets, The Sun, Mercury, NASA, Venus, Voyager, The Moon, Luna, Earth, Discover The Planets, Pictures, Images, Mars, Jupiter, Saturn, Neptune, Pluto

http://www.discovertheplanets.com

Gravitation Simulation Applet. Solar System model. Lagrange points. Zoom in/out, destroy, create planets.
http://www.cuug.ab.ca/~kmcclary/
Keywords:
gravity simulator, solar system model, solar system simulator, solar system, lagrange point, scale model, trojan asteroids, orrery

http://www.cuug.ab.ca/~kmcclary/

Learn about the solar system - and beyond! The amazing planets, their moons, asteroids, comets and the sun - our star. Resources for educators, books, software etc.
http://www.harmsy.freeuk.com/orrery.html
Keywords:
orrery, planets, mercury, venus, earth, mars, jupiter, saturn, uranus, neptune, pluto, sun, asteroids, comets, education, science, space, kuiper belt, gcse, a-level, zodiac, astrology, astronomy, photodesk, stars, supernova, neutron, galaxies

http://www.harmsy.freeuk.com/orrery.html

Solar System Dynamics by Carl D. Murray and Stanley F. Dermott : the first textbook to provide a comprehensive description of the dynamical features of the Solar System.
http://ssdbook.maths.qmw.ac.uk/
Keywords:
Murray, Carl Murray, Carl D. Murray, Dermott, Stanley Dermott, Stanley F. Dermott, Solar System Dynamics, asteroid, asteroids, astronomer, astronomers, astronomy, astrophysicist, astrophysicists, astrophysics, celestial dynamics, celestial mechanics, chaos, chaotic, comet, cometary, comets, disturbing function, disturbing functions, dynamics, equilibrium, equilibrium points, evolution, ...

http://ssdbook.maths.qmw.ac.uk/

Part of the NASA Regional Planetary Image Facility (RPIF) network. Holdings include planetary images, maps, and related mission and planetary geology documents and books.
http://www.planetary.brown.edu/planetary/data_center/
Keywords:
Brown University, NASA, Regional, Planetary, Image, Facilities, RPIF, Planetary Data Center, northeast regional, planetary, planets, space, US space program, planetary geology, geophysics, photographic prints, CD-ROMs, microfilms, transparencies, maps, mission support documents, images

http://www.planetary.brown.edu/planetary/data_center/

http://www.arnaudxx.net/index.php
Keywords:
Ephemerides, éphémérides, Planetes, Planètes, Satellites, Astéroïdes, Asteroides, Astrology, Comètes, Cometes, Système solaire, Systeme solaire, Ephémérides haute précision, Ephemerides haute précision, Mercure, Venus, Terre, Mars, Jupiter, Saturne, Uranus, Neptune, Pluton, Lune, Phobos, Deimos, Io, Europe, ...

http://www.arnaudxx.net/index.php

http://www-curator.jsc.nasa.gov/curator/curator.htm
Keywords:
astromaterials, curation, JSC, NASA, curator, moon rocks, moon, Antarctica, meteorites, Antarctic meteorites, stratospheric dust, cosmic dust, space-exposed hardware, LDEF

http://www-curator.jsc.nasa.gov/curator/curator.htm

http://www.angelfire.com/space/aniketworld/
Keywords:
Animal, Exhibit, Zoo, Architecture, Landscape, Design, Zooplanung

http://www.angelfire.com/space/aniketworld/

http://www.windows.ucar.edu/

http://www.windows.ucar.edu/

http://www.geocities.com/eagle_speaks/SolarSim/Appframe.html

http://www.geocities.com/eagle_speaks/SolarSim/Appframe.html

http://pds.jpl.nasa.gov/planets/

http://pds.jpl.nasa.gov/planets/

http://csep10.phys.utk.edu/astr161/lect/

http://csep10.phys.utk.edu/astr161/lect/

http://www.mardiros.net/atmosphere/

http://www.mardiros.net/atmosphere/

http://nssdc.gsfc.nasa.gov/planetary/factsheet/index.html

http://nssdc.gsfc.nasa.gov/planetary/factsheet/index.html

http://stardate.org/resources/ssguide/

http://stardate.org/resources/ssguide/

http://www.eoascientific.com/prototype/newcampus/space/space.html

http://www.eoascientific.com/prototype/newcampus/space/space.html

http://www.astronomytoday.com/astronomy/solarsystem.html

http://www.astronomytoday.com/astronomy/solarsystem.html

http://www.planetary.org/learn/solarsystem/index.html

http://www.planetary.org/learn/solarsystem/index.html

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Wikipedia-Article "Solar System"

Presentation of the solar system (not to scale)
Enlarge
Presentation of the solar system (not to scale)

The solar system comprises our Sun and the retinue of celestial objects gravitationally bound to it. Traditionally, this is said to consist of the Sun, nine planets and their 158 currently known moons; however, a large number of other objects, including asteroids, meteoroids, planetoids, comets, and interplanetary dust, orbit the Sun as well.

Although the term "solar system" is frequently applied to other star systems and the planetary systems which may comprise them, it should strictly refer to our system specifically: the word "solar" is derived from the Sun's Latin name, Sol (and the term sometimes appears as Solar System). When talking about another stellar system (or planetary system), including the star(s) and bodies associated with them through gravity, it is usual to shorten it to "the <name> system" (e.g. "the Alpha Centauri system" or "the 51 Pegasi system").

In September 2003, astronomers at Mount Palomar Observatory discovered 2003 UB313, a distant object currently being considered as a possible new planet as it is larger than Pluto (the status of which has also been contentious). Later, astronomers at the Keck Telescope revealed that it has a moon in orbit around it.

Contents

Structure and layout of the solar system

The Sun (astronomical symbol ☉) is a main sequence G2 star that contains 99.86% of the system's known mass. Its two largest orbiting bodies, Jupiter and Saturn, account for 91% of the remainder (The Oort Cloud might hold a substantial percentage, but as yet its existence is unconfirmed).

In broad terms, the charted regions of our solar system consist of the Sun and its planetary system: the eight bodies in relatively unique orbits (commonly called planets or major planets) and two belts of smaller objects (which can be called minor planets, planetoids, meteoroids, planetesimals or, in the case of Pluto, planets). Objects in orbit round the Sun all lie within the same shallow plane, called the ecliptic, and all orbit in the same direction. Many are in turn orbited by moons, and the largest are encircled by planetary rings of dust and other particles.

The major planets are, in order, Mercury (☿), Venus (♀), Earth (♁), Mars (♂), Jupiter (♃), Saturn (♄), Uranus (♅/), Neptune (♆), and Pluto (♇), though Pluto's status has been thrown into question by the discovery of 2003UB313 (see below). Eight of the nine planets are named after or derived from gods and goddesses from Greco-Roman mythology; Earth, a Germanic word, is known in many Romance languages as Terra, the Roman goddess of the Earth.

Distances within the solar system are measured most often in astronomical units, or AU. One AU is the distance between the Earth and the Sun, or 149 598 000 kilometres (roughly 150 Gm). Pluto is roughly 38 AU (5.9 Tm) from the Sun, while Jupiter lies at roughly 5.2 AU (778 Gm). For very large distances within the solar system, such as regions beyond Pluto or the orbital circumferences of planets, the terametre (Tm, one milliard kilometres) is sometimes used.

Despite the fact that many diagrams (like the image at the top of this article), for practicality's sake, represent the solar system as having each orbit the same distance apart, in actuality the orbits are largely arranged geometrically, that is, each is roughly double the distance from the Sun as the one before it. Venus’s distance from the Sun is roughly double that of Mercury, Earth’s distance is roughly double that of Venus, Mars’s double that of Earth and so on. This relationship is roughly expressed in the Titius-Bode law, a mathematical formula for predicting the semi-major axes of planets in AU. In its simplest form, it is written:

a= 0.4 + 0.3\times k

where k=0, 1, 2, 4, 8, 16, 32, 64, 128.

By this formulation, we would expect Mercury's orbit (k=0) to be 0.4 AU, and Mars's orbit (k=4) to be at 1.6 AU. In fact their orbits are 0.38 and 1.52 AU.Ceres, the largest asteroid, lies at k=8.

This law is only a rough guide, and doesn't fit all of the planets (Neptune is far closer than predicted, though Pluto lies at Neptune's predicted orbit). As of now, there is no scientific explanation for why this law "works," and many claim it is merely a coincidence.

This illustration shows the approximate sizes of the planets relative to one another and the Sun.
Enlarge
This illustration shows the approximate sizes of the planets relative to one another and the Sun.

Origin and evolution of the solar system

The current hypothesis of solar system formation is the nebular hypothesis, first proposed in 1755 by Immanuel Kant. It states the solar system was formed from a gaseous cloud called the solar nebula. It had a diameter of 100 AU and was 2-3 times the mass of the Sun. Over time, a disturbance, possibly a nearby supernova, sent shock waves into space, which squeezed the nebula, pushing more and more of its matter inward until gravitational forces overcame its internal gas pressure and it began to collapse. As the nebula collapsed, it decreased in size, which in turn caused it to spin faster to conserve angular momentum. And as the competing forces associated with gravity, gas pressure, magnetic fields, and rotation acted on it, the contracting nebula began to flatten into a spinning pancake shape with a bulge at the center.

When the nebula further condensed, a protostar was formed in the middle. This system was heated by the friction of the rocks colliding into each other. Lighter elements such as hydrogen and helium evaporated out of the centre and migrated to the edges of the disc, thus concentrating the heavier elements to form dust and rocks in the centre. These heavier elements clumped together to form planetesimals and protoplanets. In the outer regions of this solar nebula, ice and volatile gases were able to survive, and as a result, the inner planets are rocky and the outer planets were massive enough to capture large amounts of lighter gases, such as hydrogen and helium.

After 100 million years, the pressures and densities of hydrogen in the centre of the collapsed nebula became great enough for the protosun to sustain thermonuclear fusion reactions. As a result of this, hydrogen was converted to helium, and a great amount of heat was released.

1H → 4He + neutrinos + photons

During that time, the protostar turned into the Sun and the protoplanets and planetesimals were transformed into planets. All of the planets formed in a relatively short time of a few million years.

Regions of the solar system

Heliospheric current sheet, the largest structure in the Solar System, results from the influence of the Sun's rotating magnetic field on the plasma in the interplanetary medium (Solar Wind) [1]. (click to enlarge)
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Heliospheric current sheet, the largest structure in the Solar System, results from the influence of the Sun's rotating magnetic field on the plasma in the interplanetary medium (Solar Wind) [1]. (click to enlarge)

According to their location, the objects in the solar system are divided into three zones: Zone I or the inner solar system, including terrestrial planets and the Main belt of asteroids; Zone II, including the giant planets, their satellites and the centaurs, and Zone III, or the outer solar system, comprising the area of the Trans-Neptunian objects including the Kuiper Belt, the Oort cloud, and the vast region in between.

Interplanetary medium

The environment in which the solar system resides is called the interplanetary medium. The Sun radiates a continuous stream of charged particles, a plasma known as solar wind, which forms a very tenuous "atmosphere" (the heliosphere), permeating the interplanetary medium in all directions for at least ten billion (10×109) miles (16 Tm or 16×109 km) into space. Small quantities of dust are also present in the interplanetary medium and are responsible for the phenomenon of zodiacal light. Some of the dust is likely interstellar dust from outside the solar system. The influence of the Sun's rotating magnetic field on the interplanetary medium creates the largest structure in the Solar System, the heliospheric current sheet.

The inner planets

The four inner or terrestrial planets are characterised by their dense, rocky makeup. They formed in the hotter regions close to the Sun, where lighter and more volatile materials evaporated, leaving only those with high melting points, such as silicates, which form the planets' solid crusts and semi-liquid mantles, and iron, which forms their cores. All have impact craters and many possess tectonic surface features, such as rift valleys and volcanoes. The four inner planets are:

Earth is the largest of the inner planets
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Earth is the largest of the inner planets
  • Mercury (0.39 AU from the Sun): The closest planet to the Sun is also the smallest and most atypical of the inner planets, having no atmosphere and, to date, no observed geological activity save that produced by impacts. Its relatively large iron core suggests that it was once a much larger world whose outer mantle was sheared off in early formation by the Sun’s gravity.
  • Venus (0.72 AU): The first truly terrestrial planet, Venus, like the Earth, possesses a thick silicate mantle around an iron core, as well as a substantial atmosphere and evidence of one-time internal geological activity, such as volcanoes. It is much drier than Earth, and its atmosphere is 90 times as dense as Earth’s, however, and composed overwhelmingly of carbon dioxide with traces of sulfuric acid.
  • Earth/Moon (1 AU): The largest of the inner planets, Earth is also the only one to demonstrate unequivocal evidence of ongoing geological activity. Its liquid hydrosphere, unique among the terrestrials, is probably the reason why Earth is also the only planet where multi-plate tectonics has been observed, since water acts as a lubricant for subduction. Its atmosphere is radically different from the other terrestrials, having been altered by the presence of life to contain 21 percent free oxygen. Its satellite, the Moon, is sometimes considered a terrestrial planet in a co-orbit with its partner, since its orbit around the Sun never actually loops back on itself when observed from above. The Moon possesses many of the features in common with other terrestrial planets, though it lacks an iron core.
  • Mars (1.5 AU): Smaller than the Earth or Venus, Mars possesses a tenuous atmosphere of carbon dioxide. Its surface, peppered with vast volcanoes and rift valleys such as Valles Marineris, shows that it was once geologically active and recent evidence suggests it may have continued to be so until very recently. Mars possesses two tiny moons thought to be captured asteroids.

The asteroid belt

Asteroids are objects smaller than planets that mostly occupy the orbit between Mars and Jupiter, between 2.3 and 3.3 AU from the Sun, and are composed in significant part of non-volatile minerals. The main belt contains tens of thousands (possibly millions) over 1 km across, though they can be as small as dust. Despite their large numbers, the total mass of the main asteroid belt is unlikely to be more than a thousandth that of the Earth. Asteroids with a diameter of less than 50 m are called meteoroids. The largest asteroid, Ceres, has a diameter of roughly 1000 km; large enough to be spherical, which would make it a planet by some definitions of the word. The asteroids are thought to be the remnants of a small terrestrial planet that failed to coalesce due to the gravitational interference of Jupiter. They are subdivided into asteroid groups and families based on their specific orbital characteristics. Asteroid moons are asteroids that orbit larger asteroids. They are not as clearly distinguished as planetary moons, sometimes being almost as large as their partners.

Trojan asteroids are located in either of Jupiter's L4 or L5 points, though the term is also sometimes used for asteroids in any other planetary Lagrange point as well.

The inner solar system is dusted with rogue asteroids, many of which cross the orbits of the inner planets.

The outer planets

The four outer planets, or gas giants, (sometimes called Jovian planets) are so large they collectively make up 99 percent of the mass known to orbit the Sun. Their large sizes and distance from the Sun meant they could hold on to much of the hydrogen and helium too light for the smaller and hotter terrestrial planets to retain.

Jupiter is the largest of the outer planets, and the largest planet in the solar system.
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Jupiter is the largest of the outer planets, and the largest planet in the solar system.
  • Jupiter (5.2 AU), at 318 Earth masses, is 2.5 times the mass of all the other planets put together. Its composition of largely hydrogen and helium is not very different from that of the Sun. Three of its 63 satellites, Ganymede, Io and Europa, share elements in common with the terrestrial planets, such as volcanism and internal heating. Jupiter has a faint, smoky ring.
  • Saturn (9.5 AU), famous for its extensive ring system, shares many qualities in common with Jupiter, including its atmospheric composition, though it is far less massive, being only 95 Earth masses. Two of its 49 moons, Titan and Enceladus, show signs of geological activity, though they are largely made of ice. Titan is the only satellite in the solar system with a substantial atmosphere.
  • Uranus (19.6 AU) and Neptune (30 AU), while having many characteristics in common with the other gas giants, are nonetheless more similar to each other than they are to Jupiter or Saturn. They are both substantially smaller, being only 14 and 17 Earth masses, respectively. Their atmospheres contain a smaller percentage of hydrogen and helium, and a higher percentage of “ices”, such as water, ammonia and methane. For this reason some astronomers suggested that they belong in their own category, “Uranian planets,” or “ice giants.” Both planets possess dark, insubstantial ring systems. Neptune’s largest moon Triton is geologically active.

Centaurs are icy comet-like bodies that have less-eccentric orbits so that they remain in the region between Jupiter and Neptune. The first centaur to be discovered, 2060 Chiron, has been called a comet since it has been shown to develop a tail, or coma, just as comets do when they approach the sun.

The trans-Neptunian region

The area beyond Neptune, often referred to as the outer solar system or simply the "trans-Neptunian region", is still largely unexplored.

The Kuiper belt

This region's first formation, which actually begins inside the orbit of Neptune, is the Kuiper belt, a great ring of debris, similar to the asteroid belt but composed mainly of ice and far greater in extent, which lies between 30 to 50 AU from the Sun. This region is thought to be the place of origin for short-period comets, such as Halley's comet. Though there are estimated to be over 70,000 Kuiper belt objects with a diameter greater than 100 km, the total mass of the Kuiper belt is relatively low, perhaps equalling or just exceeding the mass of the Earth. Many Kuiper belt objects have orbits that take them outside the plane of the ecliptic.

  • Pluto, the solar system's smallest planet, is considered to be part of the Kuiper Belt population. Like others in the belt, it has a relatively eccentric orbit inclined 17 degrees to the ecliptic and ranging from 29.7 AU from the Sun at perihelion to 49.5 AU at aphelion. It has a large moon (the largest in the solar system relative to its own size), called Charon, and, new observations suggest, two other, much smaller moons. Like the Earth/Moon, Pluto and Charon are often considered a double planet. A member of the traditional nine planets, Pluto's tiny mass (less than 1% of Earth's) and diameter have called this status into question.

Kuiper belt objects with Pluto-like orbits are called Plutinos. Other Kuiper belt objects have resonant orbits and are grouped accordingly. The remaining Kuiper belt objects, in more "classical" orbits, are classified as Cubewanos.

The Kuiper Belt has a very sharply defined edge. At around 49 AU, a sharp dropoff occurs in the number of objects observed. This dropoff is known as the "Kuiper Cliff", and as yet its cause is unknown. Some speculate that something must exist beyond the belt large enough to sweep up the remaining debris, perhaps as large as Earth or Mars. This view is still controversial, however.

The scattered disc

Overlapping the Kuiper belt but extending much further outwards is the scattered disc. Scattered disc objects are believed to have been originally native to the Kuiper belt, but were ejected into erratic orbits in the outer fringes.

One particular scattered disc object, originally found in 2003 but confirmed two years later by Mike Brown, has renewed the old debate about what constitutes a planet since, though its size is not yet known, it is almost certainly larger than Pluto. It currently has no name, but has been given the provisional designation 2003 UB313, and has been nicknamed "Xena" by its discoverers, after the television character. It has many similarities with Pluto: its orbit is highly eccentric, with a perihelion of 38.2 AU (roughly Pluto's distance from the Sun) and an aphelion of 97.6 AU, and is steeply inclined to the ecliptic plane, indeed, at 44 degrees, more so than any known object in the solar system. Like Pluto, it is believed to consist largely of rock and ice, and has a moon. Whether it and the largest Kuiper belt objects should be considered planets or whether instead Pluto should be reclassified as a minor planet has not yet been resolved.

A new region?

Sedna, the newly discovered Pluto-like object with a gigantic, highly elliptical 10,500-year orbit that takes it from about 76 to 928 AU, has too distant a perihelion to be a scattered member of the Kuiper Belt and could be the first in an entirely new population. 2000 CR105 is also believed to be a member of this population.

Comets

Comets are composed largely of volatile ices and have highly eccentric orbits, generally having a perihelion within the orbit of the inner planets and an aphelion far beyond Pluto. Short-period comets exist with apoapses closer than this, however, and old comets that have had most of their volatiles driven out by solar warming are often categorized as asteroids. Long period comets have orbits lasting thousands of years. Some comets with hyperbolic orbits may originate outside the solar system.

And beyond

The point at which the solar system ends and interstellar space begins is not precisely defined, since its outer boundaries are delineated by two separate forces: the solar wind and the Sun's gravity.

The Voyagers entering the heliosheath
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The Voyagers entering the heliosheath

The heliosphere expands outward in a great bubble to about 95 AU, or three times the orbit of Pluto. The edge of this bubble is known as the termination shock; the point at which the solar wind collides with the opposing winds of the interstellar medium. Here the wind slows, condenses and becomes more turbulent, forming a great oval structure known as the heliosheath that looks and behaves very much like a comet's tail; extending outward for a further 40 AU at its stellar-windward side, but tailing many times that distance in the opposite direction. The outer boundary of the sheath, the heliopause, is the point at which the solar wind finally terminates, and one enters the environment of interstellar space. Beyond the heliopause, at around 230 AU, lies the bow shock, a plasma "wake" left by the Sun as it travels through the Milky Way.

But even at this point, we could not be said to have left the solar system, for the Sun's gravity will still hold sway even up to the Oort cloud, the great mass of icy objects, currently hypothetical, believed to be the source for all long-period comets and to surround our solar system like a shell from 50,000 to 100,000 AU beyond the Sun, or almost halfway to the next star system. The vast majority of the solar system, therefore, is completely unknown.

Age of the solar system

Scientists estimate that the solar system is 4.6 billion years old. To calculate this figure, they examine an unstable element, which is subject to radioactive decay. By observing how much this element has decayed, they can calculate how old this element is. The oldest rocks on earth are approximately 3.9 billion years old, however it is hard to find these rocks as the earth has been thoroughly resurfaced. To estimate the age of the solar system, scientists must find rocks from space, such as meteorites – which are formed during the early condensation of the solar nebula. The oldest meteorite was found to have an age of 4.6 billion years, hence the solar system must be at least 4.6 billion years old.

Galactic orbit of the solar system

The solar system is part of the Milky Way galaxy, a spiral galaxy with a diameter of about 100,000 light years containing approximately 200 billion stars, of which our Sun is rather large and bright. (The vast majority of stars are red dwarfs; our Sun is placed near the middle of the Hertzsprung-Russell diagram, but stars larger and hotter than it are rare, whereas stars dimmer and cooler than it are very common, although we can observe only those few other red dwarfs that are very near our Sun in space).

Estimates place the solar system at between 25,000 and 28,000 light years from the galactic center in the Orion Arm. Its speed is about 220 kilometres per second, and it completes one revolution every 226 million years. At the galactic location of the solar system, the escape velocity with regard to the gravity of the Milky Way is about 1000 km/s.

The solar system appears to have a very unusual orbit. It is both extremely close to being circular, and at nearly the exact distance at which the orbital speed matches the speed of the compression waves that form the spiral arms. The solar system appears to have remained between spiral arms for most of the existence of life on Earth. The radiation from supernovae in spiral arms could theoretically sterilize planetary surfaces, preventing the formation of large animal life on land. By remaining out of the spiral arms, Earth may be unusually free to form large animal life on its surface.

Planetary system formation

For many years, our solar system had the only planetary system known, and so theories of planetary formation only had to explain one system to be plausible. The discovery in recent years of many extrasolar planets has uncovered systems very different to our own, and theories have had to be revised accordingly.

Exoplanets have not been seen by astronomers yet, however we know they exist because of the gravitational tug the planets induce on the star, and hence making the star ‘wobble’. Astronomers can calculate how massive the planets are by observing how much the star wobbles. Exoplanets can also be observed more directly by their occultation of the stars' discs, which dims them slightly.

In October, 1995, astronomers Michel Mayor and Didier Queloz announced the discovery of a massive planet orbiting 51 Pegasi – a Sun-like star in the constellation Pegasus. This planet is about half as massive as Jupiter, and had an orbital period of 4.2 Earth days, due to its closeness to the star (0.05 AU). Since then, over 160 more planets have been identified.

Many extrasolar planetary systems contain such a “hot Jupiter”: a planet comparable to or larger than Jupiter orbiting very close to the parent star, perhaps orbiting it in a matter of days. It has been hypothesised that while the giant planets in these systems formed in the same place as the gas giants in our system did, some sort of migration took place which resulted in the giant planet spiralling in towards the parent star. Any terrestrial planets which had previously existed would presumably either be destroyed or ejected from the system.

There has also been some photographic evidence to suggest that regions in the Orion Nebula, which is 1500 light years from Earth, have star systems forming.

Discovery of the solar system

The planets out to Saturn were known to ancient astronomers, who observed the wandering of these objects against the apparently fixed pattern of stars. Venus and Mercury were each identified as single objects despite the difficulty of connecting "evening" and "morning stars". It was also identified that the two non-pointlike objects, the sun and the Moon, moved across the same fixed background. However knowledge of the nature of these celestial drifters was entirely speculative and largely incorrect.

The nature and structure of the solar system were long misperceived, for at least two reasons:

  • The Earth was considered stationary, and the motion of objects in the sky was therefore taken at face value: the sun was thought to orbit the Earth, for example (This conception of the universe, in which the Earth is at the center, is called the Geocentric model; geos means "Earth" in Greek).
  • Many solar system objects and phenomena cannot be perceived at all without technical aid.

Over the last several hundred years, conceptual and technological advances have helped us understand the solar system much better.

The first and most fundamental of the conceptual advances was the Copernican Revolution, which proposed that the planets