The Milky Way is the galaxy that contains the Earth. This name derives from its appearance as a dim "milky" glowing band arching across the night sky, in which the naked eye cannot distinguish individual stars. The term
"Milky Way" is a translation of the Classical Latin via lactea, from the Hellenistic Greek γαλαξίας κύκλος (pr.galaxías kýklos, "milky circle").
The Galaxy has this appearance because it is a disk-shaped structure that is being viewed from inside. Earth is located within the Galactic plane of this disk, around two thirds of the way out from the center, on the inner edge of a spiral-shaped concentration of gas and dust called the Orion–Cygnus Arm. The concept of this faint band of light
being made up of stars was proven in 1610 when Galileo Galilei used his telescope to resolve it into individual stars.
In the 1920s observations by astronomer Edwin Hubble showed that the Milky Way was just one of around 200 billion galaxies in the observable universe.
The Milky Way is a barred spiral galaxy 100,000–120,000 light-years in diameter containing 200–400 billion stars. The Galaxy is estimated to contain at least as many planets, 10 billion of which could be located in the habitable zone of their parent star. Depending on its structure the entire Galaxy has a rotational rate of once every 15 to 50
million years. The Galaxy is also moving at a velocity of 552 to 630 km per second, depending on the relative frame
of reference. It is estimated to be about 13.2 billion years old, nearly as old as the Universe. The Milky Way is part of the Local Group of galaxies.
Appearance
All the stars that can be seen with the naked eye are part of the Milky
Way Galaxy. When observing the night sky, the term "Milky Way" is
limited to the hazy band of white light.The light originates from
un-resolved stars and other material that lie within the Galactic plane.
Dark regions within the band, such as the Great Rift and the Coalsack,
correspond to areas where light from distant stars is blocked by
interstellar dust.
The Milky Way has a relatively low surface brightness. Its visibility
can be greatly reduced by background light such as light pollution or
stray light from the moon. It is readily visible when the limiting
magnitude is +5.1 or better, while showing a great deal of detail at
+6.1. This makes the Milky Way difficult to see from any
brightly-lit urban or suburban location but very prominent when
viewed from a rural area when the moon is below the horizon.
The center of the Galaxy lies in the direction of the constellation
Sagittarius; it is here that the Milky Way is brightest. From Sagittarius,
the hazy band of white light appears to pass westward through the
constellations of Scorpius, Ara, Norma, Triangulum Australe, Circinus,
Centaurus, Musca, Crux, Carina, Vela, Puppis, Canis Major,
Monoceros, Orion and Gemini, Taurus, to the Galactic anticenter in Auriga. From there, it passes through Perseus,Andromeda, Cassiopeia, Cepheus and Lacerta, Cygnus, Vulpecula, Sagitta, Aquila, Ophiuchus, Scutum, and back to Sagittarius. The fact that the band divides the night sky into two roughly equal hemispheres indicates that the Solar System lies close to the Galactic plane. The Galactic plane is inclined by about 60 degrees to the ecliptic (the plane of the Earth's orbit). Relative to the celestial equator, it passes as far north as the constellation of Cassiopeia and as far south as the constellation of Crux,indicating the high inclination of Earth's equatorial plane and the plane of the ecliptic relative to the Galactic plane.
The north Galactic pole is situated at right ascension 12h 49m, declination +27.4° (B1950) near beta Comae Berenices, and the south Galactic pole is near alpha Sculptoris.
Size
The stellar disk of the Milky Way Galaxy is approximately 100,000 light-years (30 kiloparsecs, 9×1017 km) in diameter, and is considered to be, on average, about 1000 ly (unknown operator: u'strong' kpc) thick. It is estimated to contain at least 100 billion stars and possibly up to 400 billion stars. The exact figure depends on the number of very low-mass, or dwarf stars, which are hard to detect, especially at distances of more than 300 ly (unknown operator: u'strong' pc) from the Sun. Hence, current estimates of the total number remain highly uncertain, though it is often speculated to be around 250 billion. This can be compared to the one trillion (1012) stars of the neighboring Andromeda Galaxy.
The disk of stars in the Milky Way does not have a sharp edge beyond which there are no stars. Rather, the concentration of stars drops smoothly with distance from the center of the Galaxy. Beyond a radius of roughly 40000 ly (unknown operator: u'strong' kpc), the number of stars per cubic parsec drops much faster with radius, for reasons that are not understood. Both gravitational microlensing and planetary transit observations indicate that there may be at least as many planets bound to stars as there are stars in the Milky Way,while microlensing measurements also indicate that there are more rogue planets not bound to host stars than there are stars. Earth-sized planets may be more numerous than gas giants.
Filling the place between the stars within and around the stellar disk is a disk of gas called the interstellar medium.The disk of gas has at least a comparable extent in radius to the stars, while the thickness of the gas layer ranges from hundreds of light years for the colder gas to thousands of light years for warmer gas.
As a guide to the relative physical scale of the Milky Way, if it were reduced to 100 meters (unknown operator:u'strong' yd) in diameter, the Solar System, including the hypothesized Oort cloud, would be no more than 1
millimeter (unknown operator: u'strong' in) in width, or a grain of sand in a football field. The Galactic Halo extends outward, but is limited in size by the orbits of two Milky Way satellites, the Large and the Small Magellanic Clouds, whose perigalacticon is at about 180000 ly (unknown operator: u'strong' kpc). At this distance or beyond, the orbits of most halo objects would be disrupted by the Magellanic Clouds, and the objects
would likely be ejected from the vicinity of the Milky Way.
Composition and structure
The Galaxy consists of a bar-shaped core region surrounded by a disk
of gas, dust and stars. The gas, dust and stars are organized in roughly
logarithmic spiral arm structures (see Spiral arms below). The mass
distribution within the Galaxy closely resembles the Sbc Hubble
classification, which is a spiral galaxy with relatively loosely wound
arms. Astronomers first began to suspect that the Milky Way is a
barred spiral galaxy, rather than an ordinary spiral galaxy, in the
1990s. Their suspicions were confirmed by the Spitzer Space
Telescope observations in 2005 that showed the Galaxy's central bar
to be larger than previously suspected.Estimates for the mass of the Milky Way vary, depending upon the method and data used. Recent estimates at the low end have placed the mass of the Milky Way at 5.8×1011 solar masses (M☉), somewhat smaller than the Andromeda Galaxy. Other measurements by the Very Long Baseline Array (VLBA) have found velocities as large as 254 km/s for stars at the edge of the Milky Way, higher than the previously accepted value of 220 km/s.As the
orbital velocity depends on the mass enclosed, this implies that the Milky Way is more massive, roughly equaling the mass of Andromeda Galaxy at 7×1011 M☉ within 50 kiloparsecs (unknown operator: u'strong' ly) of its
center. A recent measurement of the radial velocity of halo stars finds the mass enclosed within 80 kiloparsecs is
7×1011 M☉. Most of the mass of the Galaxy is thought to be dark matter, which forms a dark matter halo that is spread out relatively uniformly to a distance beyond one hundred kiloparsecs from the Galactic Center. Modelling of the Milky Way suggests that the overall mass of the entire Galaxy lies in the range 1-1.5×1012 M☉ This mass in baryonic matter is estimated to include 200 to 400 billion stars. Its integrated absolute visual
magnitude has been estimated to be −20.9 Galactic Center
The Galactic disk, which bulges outward at the Galactic Center, has a
diameter of 70000–100000 light-years (unknown operator:
u'strong'unknown operator: u'strong'unknown operator: u'strong'
unknown operator: u'strong'). The exact distance from the Sun to
the Galactic Center is actively debated. The latest estimates from
geometric-based methods and standard candles yield distances to the
Galactic Center of 8.0–8.7 kpc (unknown operator:
u'strong'unknown operator: u'strong'unknown operator: u'strong'
unknown operator: u'strong').The fact that the estimates span nearly 1 kpc only underscores the true uncertainty associated with the distance to the Galactic Center. The Galactic Center harbors a compact object of very large mass as determined by the motion of material around the center.The intense radio source named Sagittarius A* is thought to mark the center of the Milky Way. The compact concentration of
mass around Sagittarius A* is best explained as a supermassive black hole. Similar observations indicate that there are supermassive black holes located near the center of most normal galaxies.
The nature of the Galaxy's bar is also actively debated, with estimates for its half-length and orientation spanning from 1–5 kpc () (short or a long bar) and 10–50 degrees.Certain authors advocate that the Galaxy features two distinct bars, one nestled within the other.The bar is delineated by red clump stars, however, RR Lyr variables do not trace a prominent Galactic bar. The bar may be surrounded by a ring called the "5-kpc ring" that contains a large fraction of the molecular hydrogen present in the Galaxy, as well as most of the Milky Way's star formation activity. Viewed from the Andromeda Galaxy, it would be the brightest feature of our own Galaxy.Spiral arms Beyond the gravitational influence of the Galactic bars, astronomers generally organize the interstellar medium and stars in the disk of the Milky Way in four spiral arms.[57] All of these arms contain more interstellar gas and dust than the Galactic average as well as a high concentration of star formation, traced by H II regions and molecular clouds. Counts of stars in near infrared light indicate that two arms contain approximately 30% more
red giant stars than would be expected in the absence of a spiral arm, while two do not contain more red giant stars
than regions outside of arms.
Maps of the Milky Way's spiral structure are notoriously uncertain and exhibit striking
difference. Some 150 years after Alexander (1852) first suggested that the Milky Way
was a spiral, there is currently no consensus on the nature of the Galaxy's spiral arms. Perfect logarithmic spiral
patterns ineptly describe features near the Sun, namely since galaxies commonly exhibit arms that branch,
merge, twist unexpectedly, and feature a degree of irregularity. The possible scenario of the Sun within a
spur / Local arm emphasizes that point and indicates that such features are likely not unique, and exist elsewhere
in the Galaxy.As in most spiral galaxies, each spiral arm can be described as a logarithmic spiral. Estimates of the pitch angle of
the arms range from ≈7° to ≈25°. Until recently, there were thought to be four major spiral arms which all start near the Galaxy's center. Two spiral arms, the Scutum-Centaurus arm and the Carina-Sagittarius arm, have tangent points inside the Sun's orbit around the center of the Milky Way. If these arms contain an overdensity of stars compared to the average
density of stars in the Galactic disk, it would be detectable by counting the stars near the tangent point. Two surveys
of near-infrared light, which is sensitive primarily to red giant stars and not affected by dust extinction, detected the
predicted overabundance in the Scutum-Centaurus arm but not in the Carina-Sagittarius arm. In 2008, Robert
Benjamin of the University of Wisconsin–Whitewater used this observation to suggest that the Milky Way possesses
only two major stellar arms: the Perseus arm and the Scutum-Centaurus arm. The rest of the arms contain excess gas
but not excess stars. This would mean that the Milky Way is similar in appearance to NGC 1365.
Outside of the major spiral arms is the Monoceros Ring (or Outer Ring), proposed by astronomers Brian Yanny and
Heidi Jo Newberg, a ring of gas and stars torn from other galaxies billions of years ago.
As is typical for many galaxies, the distribution of mass in the Milky Way Galaxy is such that the orbital speed of
most stars in the Galaxy does not depend strongly on their distance from the center. Away from the central bulge or
outer rim, the typical stellar velocity is between 210 and 240 km/s.Hence the orbital period of the typical star is
directly proportional only to the length of the path traveled. This is unlike the situation within the Solar System,
where two-body gravitational dynamics dominate and different orbits are expected to have significantly different
velocities associated with them. This difference is one of the major pieces of evidence for the existence of dark
matter. Another interesting aspect is the so-called "wind-up problem" of the spiral arms. If the inner parts of the arms
rotate faster than the outer part, then the galaxy will wind up so much that the spiral structure will be thinned out.
But this is not what is observed in spiral galaxies; instead, astronomers propose that the spiral pattern is a density
wave emanating from the Galactic Center. This can be likened to a moving traffic jam on a highway—the cars are all
moving, but there is always a region of slow-moving cars. This model also agrees with enhanced star formation in or
near spiral arms; the compressional waves increase the density of molecular hydrogen and protostars form as a
result.
Halo
The Galactic disk is surrounded by a spheroidal halo of old stars and globular clusters, of which 90% lie within
100000 light-years (unknown operator: u'strong' kpc),suggesting a stellar halo diameter of 200,000
light-years. However, a few globular clusters have been found farther, such as PAL 4 and AM1 at more than 200,000
light-years away from the Galactic Center. About 40% of these clusters are on retrograde orbits, which means they
move in the opposite direction from the Milky Way rotation.The globular clusters can follow rosette orbits about
the Galaxy, in contrast to the elliptical orbit of a planet.
While the disk contains gas and dust which obscure the view in some wavelengths, the spheroid component does not.
Active star formation takes place in the disk (especially in the spiral arms, which represent areas of high density), but
not in the halo. Open clusters also occur primarily in the disk.
Discoveries in the early 21st century have added dimension to the knowledge of the Milky Way's structure. With the
discovery that the disk of the Andromeda Galaxy (M31) extends much further than previously thought, the
possibility of the disk of the Milky Way Galaxy extending further is apparent, and this is supported by evidence from
the discovery of the Outer Arm extension of the Cygnus Arm. With the discovery of the Sagittarius Dwarf
Elliptical Galaxy came the discovery of a ribbon of galactic debris as the polar orbit of the dwarf and its interaction
with the Milky Way tears it apart. Similarly, with the discovery of the Canis Major Dwarf Galaxy, it was found that
a ring of galactic debris from its interaction with the Milky Way encircles the Galactic disk.
On January 9, 2006, Mario Jurić and others of Princeton University announced that the Sloan Digital Sky Survey of
the northern sky found a huge and diffuse structure (spread out across an area around 5,000 times the size of a full
moon) within the Milky Way that does not seem to fit within current models. The collection of stars rises close to
perpendicular to the plane of the spiral arms of the Galaxy. The proposed likely interpretation is that a dwarf galaxy
is merging with the Milky Way. This galaxy is tentatively named the Virgo Stellar Stream and is found in the
direction of Virgo about 30000 light-years (unknown operator: u'strong' kpc) away.
Gamma-ray bubbles
On November 9, 2010, Doug Finkbeiner of the Harvard–Smithsonian
Center for Astrophysics announced that he had detected two gigantic
spherical bubbles of energy erupting to the north and the south from
the center of the Milky Way, using data of the Fermi Gamma-ray
Space Telescope. The diameter of each of the bubbles is about 25000
light-years (unknown operator: u'strong' kpc); they stretch up to
Grus and to Virgo on the night-sky of the southern hemisphere. Their
origin remains unclear, so far.
Sun's location and neighborhood
The Sun (and therefore the Earth and the Solar System) may be found
close to the inner rim of the Galaxy's Orion Arm, in the Local Fluff
inside the Local Bubble, and in the Gould Belt, at a distance of
8.33 ± 0.35 kiloparsecs (unknown operator: u'strong' ± unknown
operator: u'strong' ly) from the Galactic Center. The Sun is
currently 5–30 parsecs (unknown operator: u'strong'unknown
operator: u'strong'unknown operator: u'strong' unknown
operator: u'strong') from the central plane of the Galactic disk.
The distance between the local arm and the next arm out, the Perseus
Arm, is about 6500 light-years (unknown operator:
u'strong' kpc). The Sun, and thus the Solar System, is found in the
Galactic habitable zone.
There are about 208 stars brighter than absolute magnitude 8.5 within
15 parsecs (unknown operator: u'strong' ly) of the Sun, giving a density of 0.0147 such stars per cubic parsec, or
0.000424 per cubic light-year (from List of nearest bright stars). On the other hand, there are 64 known stars (of any
magnitude, not counting 4 brown dwarfs) within 5 parsecs (unknown operator: u'strong' ly) of the Sun, giving a
density of 0.122 stars per cubic parsec, or 0.00352 per cubic light-year (from List of nearest stars), illustrating the
fact that most stars are less bright than absolute magnitude 8.5.
The Apex of the Sun's Way, or the solar apex, is the direction that the Sun travels through space in the Milky Way.
The general direction of the Sun's Galactic motion is towards the star Vega near the constellation of Hercules, at an
Milky Way 8
angle of roughly 60 sky degrees to the direction of the Galactic Center. The Sun's orbit around the Galaxy is
expected to be roughly elliptical with the addition of perturbations due to the Galactic spiral arms and non-uniform
mass distributions. In addition, the Sun oscillates up and down relative to the Galactic plane approximately 2.7 times
per orbit. This is very similar to how a simple harmonic oscillator works with no drag force (damping) term. These
oscillations were until recently thought to coincide with mass extinction periods on Earth. However, a reanalysis
of the effects of the Sun's transit through the spiral structure based on CO data has failed to find these
correlations.
It takes the Solar System about 225–250 million years to complete one orbit around the Galaxy (a Galactic year),
so the Sun is thought to have completed 18–20 orbits during its lifetime and 1/1250 of a revolution since the origin
of humans. The orbital speed of the Solar System about the center of the Galaxy is approximately 220 km/s or
0.073% of the speed of light. At this speed, it takes around 1,400 years for the Solar System to travel a distance of 1
light-year, or 8 days to travel 1 AU (astronomical unit).
Formation
The Milky Way began as one or several small overdensities in the mass distribution in the Universe shortly after the
Big Bang. Some of these overdensities were the seeds of globular clusters in which the oldest remaining stars in
what is now the Milky Way formed. These stars and clusters now comprise the stellar halo of the Galaxy. Within a
few billion years of the birth of the first stars, the mass of the Milky Way was large enough so that it was spinning
relatively quickly. Due to conservation of angular momentum, this led the gaseous interstellar medium to collapse
from a roughly spheroidal shape to a disk. Therefore, later generations of stars formed in this spiral disk. Most
younger stars, including the Sun, are observed to be in the disk.
Since the first stars began to form, the Milky Way has grown through both galaxy mergers and accretion of gas
directly from the Galactic halo. The Milky Way is currently in the process of stripping material from its two
nearest satellite galaxies, the Large and Small Magellanic Clouds, through the Magellanic Stream. Direct accretion
of gas is observed in high velocity clouds like the Smith Cloud.
Age
The ages of individual stars in the Milky Way can be estimated by
measuring the abundance of long-lived radioactive elements such as
thorium-232 and uranium-238, then comparing the results to estimates
of their original abundance, a technique called
nucleocosmochronology. These yield values of about 14.0 ± 2.4 Ga for
CS 31082-001 and 13.8 ± 4 Ga for BD+17° 3248. Once a white dwarf
star is formed, it begins to undergo radiative cooling and the surface
temperature steadily drops. By measuring the temperatures of the
coolest of these white dwarfs and comparing them to their expected
initial temperature, an age estimate can be made. With this technique,
the age of the globular cluster M4 was estimated as 12.7 ± 0.7 Ga. Globular clusters are among the oldest objects in
the Milky Way Galaxy, which thus set a lower limit on the Galaxy age. Age estimates of the oldest of these clusters
gives a best fit estimate of 12.6 Ga, and a 95% confidence upper limit of 16 Ga.
In 2007, a star in the Galactic halo, HE 1523-0901, was estimated to be about 13.2 billion years old, ≈0.5 billion
years less than the age of the universe. As the oldest known object in the Milky Way at that time, this measurement
placed a lower limit on the age of the Milky Way.This estimate was determined using the UV-Visual Echelle
Spectrograph of the Very Large Telescope to measure the relative strengths of spectral lines caused by the presence
of Thorium and other elements created by the R-process. The line strengths yield abundances of different elemental
isotopes, from which an estimate of the age of the star can be derived using nucleocosmochronology.
The age of stars in the Galactic thin disk has also been estimated using nucleocosmochronology. Measurements of
thin disk stars yield an estimate that the thin disk formed between 8.8 ± 1.7 billion years ago. These measurements
suggest there was a hiatus of almost 5 billion years between the formation of the Galactic halo and the thin disk.
Environment
Broad infrared view of our Milky Way Galaxy
from the Spitzer Space Telescope created from
more than 800,000 frames. This is the most
detailed infrared picture of our Galaxy to date.
Milky Way starscape taken from ESO's Paranal
Observatory with enlarged region (bottom).
The Milky Way and the Andromeda Galaxy are a binary system of
giant spiral galaxies belonging to a group of 50 closely bound galaxies
known as the Local Group, itself being part of the Virgo Supercluster.
Two smaller galaxies and a number of dwarf galaxies in the Local
Group orbit the Milky Way. The largest of these is the Large
Magellanic Cloud with a diameter of 20,000 light-years. It has a close
companion, the Small Magellanic Cloud. The Magellanic Stream is a
peculiar streamer of neutral hydrogen gas connecting these two small
galaxies. The stream is thought to have been dragged from the
Magellanic Clouds in tidal interactions with the Milky Way. Some of
the dwarf galaxies orbiting the Milky Way are Canis Major Dwarf (the
closest), Sagittarius Dwarf Elliptical Galaxy, Ursa Minor Dwarf,
Sculptor Dwarf, Sextans Dwarf, Fornax Dwarf, and Leo I Dwarf. The
smallest Milky Way dwarf galaxies are only 500 light-years in
diameter. These include Carina Dwarf, Draco Dwarf, and Leo II
Dwarf. There may still be undetected dwarf galaxies, which are
dynamically bound to the Milky Way, as well as some that have
already been absorbed by the Milky Way, such as Omega Centauri.
Observations through the Zone of Avoidance are frequently detecting
new distant and nearby galaxies. Some galaxies consisting mostly of
gas and dust may also have evaded detection so far.
In January 2006, researchers reported that the heretofore unexplained
warp in the disk of the Milky Way has now been mapped and found to
be a ripple or vibration set up by the Large and Small Magellanic
Clouds as they circle the Galaxy, causing vibrations at certain
frequencies when they pass through its edges.Previously, these two
galaxies, at around 2% of the mass of the Milky Way, were considered
too small to influence the Milky Way. However, by taking into account
dark matter, the movement of these two galaxies creates a wake that influences the larger Milky Way. Taking dark
matter into account results in an approximately twentyfold increase in mass for the galaxy. This calculation is
according to a computer model made by Martin Weinberg of the University of Massachusetts, Amherst. In this
Milky Way 10
model, the dark matter is spreading out from the Galactic disk with the known gas layer. As a result, the model
predicts that the gravitational effect of the Magellanic Clouds is amplified as they pass through the Galaxy.
Current measurements suggest the Andromeda Galaxy is approaching us at 100 to 140 kilometers per second. The
Milky Way may collide with it in 3 to 4 billion years, depending on the importance of unknown lateral components
to the galaxies' relative motion. If they collide, individual stars within the galaxies would not collide, but instead the
two galaxies will merge to form a single elliptical galaxy over the course of about a billion years.
Velocity
In the general sense, the absolute velocity of any object through space
is not a meaningful question according to Einstein's special theory of
relativity, which declares that there is no "preferred" inertial frame of
reference in space with which to compare the object's motion. (Motion
must always be specified with respect to another object.) This must be
kept in mind when discussing the Galaxy's motion.
Astronomers believe the Milky Way is moving at approximately
630 km per second relative to the local co-moving frame of reference
that moves with the Hubble flow. If the Galaxy is moving at
600 km/s, Earth travels 51.84 million km per day, or more than 18.9
billion km per year, about 4.5 times its closest distance from Pluto. The
Milky Way is moving in the general direction of the Great Attractor
and other galaxy clusters, including the Shapley supercluster, behind
it. The Local Group (a cluster of gravitationally bound galaxies
containing, among others, the Milky Way and the Andromeda Galaxy)
is part of a supercluster called the Local Supercluster, centered near the
Virgo Cluster: although they are moving away from each other at
967 km/s as part of the Hubble flow, the velocity is less than would be
expected given the 16.8 million pc distance due to the gravitational attraction between the Local Group and the
Virgo Cluster.
Another reference frame is provided by the cosmic microwave background (CMB). The Milky Way is moving at
552 ± 6 km/s[9] with respect to the photons of the CMB, toward 10.5 right ascension, −24° declination (J2000 epoch,
near the center of Hydra). This motion is observed by satellites such as the Cosmic Background Explorer (COBE)
and the Wilkinson Microwave Anisotropy Probe (WMAP) as a dipole contribution to the CMB, as photons in
equilibrium in the CMB frame get blue-shifted in the direction of the motion and red-shifted in the opposite
direction.
The Galaxy rotates about its center according to its galaxy rotation curve as shown in the figure. The discrepancy
between the observed curve (relatively flat) and the curve based upon the known mass of the stars and gas in the
Milky Way (decaying curve) is attributed to dark matter.
Etymology and mythology
In western culture the name "Milky Way" is derived from its appearance as a dim un-resolved "milky" glowing band
arching across the night sky. The term is a translation of the Classical Latin via lactea, in turn derived from the
Hellenistic Greek γαλαξίας, short for γαλαξίας κύκλος (pr. galaktikos kyklos, "milky circle"). The Ancient Greek
γαλαξίας (galaxias), from root γαλακτ- , γάλα (milk) + -ίας (forming adjectives), is also the root of "galaxy", the
name for our, and later all such, collections of stars. The Milky Way "milk circle" was just one of
11 circles the Greeks identified in the sky, others being the zodiac, the meridian, the horizon, the equator, the tropics
of Cancer and Capricorn, Arctic and Antarctic circles, and two colure circles passing through both poles.
There are many creation myths around the world which explain the origin of the Milky Way and give it its name. In
Greek myth, the Milky Way was caused by milk spilt by Hera when suckling Heracles. It is also described as the
road to mount Olympus, and the path of ruin made by the chariot of the Sun god Helios.
In Sanskrit and several other Indo-Aryan languages, the Milky Way is called Akash Ganga (आकाशगंगा, Ganges of the
heavens); it is held to be sacred in the Hindu Puranas (scriptures), and the Ganges and the Milky Way are considered
to be terrestrial and celestial analogs. Kshira (क्षीर, milk) is an alternative name for the Milky Way in
Hindu texts in Sanskrit.
Astronomical history
As Aristotle (384–322 BC) informs us in Meteorologica (DK 59 A80),
the Greek philosophers Anaxagoras (ca. 500–428 BC) and Democritus
(450–370 BC) proposed the Milky Way might consist of distant stars.
However, Aristotle himself believed the Milky Way to be caused by
"the ignition of the fiery exhalation of some stars which were large,
numerous and close together" and that the "ignition takes place in the
upper part of the atmosphere, in the region of the world which is
continuous with the heavenly motions." The Neoplatonist
philosopher Olympiodorus the Younger (c. 495–570 A.D.) criticized this view, arguing that if the Milky Way were
sublunary it should appear different at different times and places on the Earth, and that it should have parallax, which
it does not. In his view, the Milky Way was celestial. This idea would be influential later in the Islamic world.
According to Mohaini Mohamed, the Arabian astronomer, Alhazen (965–1037 AD), refuted this by making the first
attempt at observing and measuring the Milky Way's parallax.He determined that the Milky Way has no
parallax and concluded that it must be remote from the Earth, not part of Earth's atmosphere.
The Persian astronomer Abū Rayhān al-Bīrūnī (973–1048) proposed that the Milky Way is "a collection of countless
fragments of the nature of nebulous stars". The Andalusian astronomer Avempace (d. 1138) proposed the Milky
Way to be made up of many stars but appears to be a continuous image due to the effect of refraction in the Earth's
atmosphere, citing his observation of a conjunction of Jupiter and Mars in 1106 or 1107 as evidence. Ibn
Qayyim Al-Jawziyya (1292–1350) proposed the Milky Way Galaxy to be "a myriad of tiny stars packed together in
the sphere of the fixed stars" and that these stars are larger than planets.
According to Jamil Ragep, the Persian astronomer Naṣīr al-Dīn al-Ṭūsī (1201,1274) in his Tadhkira writes: "The
Milky Way, i.e. the Galaxy, is made up of a very large number of small, tightly-clustered stars, which, on account of
their concentration and smallness, seem to be cloudy patches. because of this, it was likened to milk in color."
Actual proof of the Milky Way consisting of many stars came in 1610 when Galileo Galilei used a telescope to study
the Milky Way and discovered that it was composed of a huge number of faint stars. In a treatise in 1755,
Immanuel Kant, drawing on earlier work by Thomas Wright, speculated (correctly) that the Milky Way might be a
rotating body of a huge number of stars, held together by gravitational forces akin to the Solar System but on much
larger scales. The resulting disk of stars would be seen as a band on the sky from our perspective inside the disk.
Kant also conjectured that some of the nebulae visible in the night sky might be separate "galaxies" themselves,
similar to our own. Kant referred to both our Galaxy and the "extragalactic nebulae" as "island universes", a term
still current up to the 1930s.
The first attempt to describe the shape of the Milky Way and the position of the Sun within it was carried out by
William Herschel in 1785 by carefully counting the number of stars in different regions of the visible sky. He
produced a diagram of the shape of the Galaxy with the Solar System close to the center.
In 1845, Lord Rosse constructed a new telescope and was able to distinguish between elliptical and spiral-shaped
nebulae. He also managed to make out individual point sources in some of these nebulae, lending credence to Kant's
earlier conjecture.
In 1917, Heber Curtis had observed the nova S Andromedae within the
"Great Andromeda Nebula" (Messier object M31). Searching the
photographic record, he found 11 more novae. Curtis noticed that these
novae were, on average, 10 magnitudes fainter than those that occurred
within our Galaxy. As a result he was able to come up with a distance
estimate of 150,000 parsecs. He became a proponent of the "island
universes" hypothesis, which held that the spiral nebulae were actually
independent galaxies. In 1920 the Great Debate took place
between Harlow Shapley and Heber Curtis, concerning the nature of
the Milky Way, spiral nebulae, and the dimensions of the universe. To
support his claim that the Great Andromeda Nebula was an external
galaxy, Curtis noted the appearance of dark lanes resembling the dust clouds in the Milky Way, as well as the
significant Doppler shift.
The matter was conclusively settled by Edwin Hubble in the early 1920s using the Mount Wilson observatory 100
inch (2.5 m) Hooker telescope. With the light-gathering power of this new telescope he was able to produce
astronomical photographs that resolved the outer parts of some spiral nebulae as collections of individual stars. He
was also able to identify some Cepheid variables that he could use as a benchmark to estimate the distance to the
nebulae: proving they were far too distant to be part of the Milky Way.[122] In 1936, Hubble produced a
classification system for galaxies that is used to this day, the Hubble sequence.[
"Milky Way" is a translation of the Classical Latin via lactea, from the Hellenistic Greek γαλαξίας κύκλος (pr.galaxías kýklos, "milky circle").
The Galaxy has this appearance because it is a disk-shaped structure that is being viewed from inside. Earth is located within the Galactic plane of this disk, around two thirds of the way out from the center, on the inner edge of a spiral-shaped concentration of gas and dust called the Orion–Cygnus Arm. The concept of this faint band of light
being made up of stars was proven in 1610 when Galileo Galilei used his telescope to resolve it into individual stars.
In the 1920s observations by astronomer Edwin Hubble showed that the Milky Way was just one of around 200 billion galaxies in the observable universe.
The Milky Way is a barred spiral galaxy 100,000–120,000 light-years in diameter containing 200–400 billion stars. The Galaxy is estimated to contain at least as many planets, 10 billion of which could be located in the habitable zone of their parent star. Depending on its structure the entire Galaxy has a rotational rate of once every 15 to 50
million years. The Galaxy is also moving at a velocity of 552 to 630 km per second, depending on the relative frame
of reference. It is estimated to be about 13.2 billion years old, nearly as old as the Universe. The Milky Way is part of the Local Group of galaxies.
Appearance
All the stars that can be seen with the naked eye are part of the Milky
Way Galaxy. When observing the night sky, the term "Milky Way" is
limited to the hazy band of white light.The light originates from
un-resolved stars and other material that lie within the Galactic plane.
Dark regions within the band, such as the Great Rift and the Coalsack,
correspond to areas where light from distant stars is blocked by
interstellar dust.
The Milky Way has a relatively low surface brightness. Its visibility
can be greatly reduced by background light such as light pollution or
stray light from the moon. It is readily visible when the limiting
magnitude is +5.1 or better, while showing a great deal of detail at
+6.1. This makes the Milky Way difficult to see from any
brightly-lit urban or suburban location but very prominent when
viewed from a rural area when the moon is below the horizon.
The center of the Galaxy lies in the direction of the constellation
Sagittarius; it is here that the Milky Way is brightest. From Sagittarius,
the hazy band of white light appears to pass westward through the
constellations of Scorpius, Ara, Norma, Triangulum Australe, Circinus,
Centaurus, Musca, Crux, Carina, Vela, Puppis, Canis Major,
Monoceros, Orion and Gemini, Taurus, to the Galactic anticenter in Auriga. From there, it passes through Perseus,Andromeda, Cassiopeia, Cepheus and Lacerta, Cygnus, Vulpecula, Sagitta, Aquila, Ophiuchus, Scutum, and back to Sagittarius. The fact that the band divides the night sky into two roughly equal hemispheres indicates that the Solar System lies close to the Galactic plane. The Galactic plane is inclined by about 60 degrees to the ecliptic (the plane of the Earth's orbit). Relative to the celestial equator, it passes as far north as the constellation of Cassiopeia and as far south as the constellation of Crux,indicating the high inclination of Earth's equatorial plane and the plane of the ecliptic relative to the Galactic plane.
The north Galactic pole is situated at right ascension 12h 49m, declination +27.4° (B1950) near beta Comae Berenices, and the south Galactic pole is near alpha Sculptoris.
Size
The stellar disk of the Milky Way Galaxy is approximately 100,000 light-years (30 kiloparsecs, 9×1017 km) in diameter, and is considered to be, on average, about 1000 ly (unknown operator: u'strong' kpc) thick. It is estimated to contain at least 100 billion stars and possibly up to 400 billion stars. The exact figure depends on the number of very low-mass, or dwarf stars, which are hard to detect, especially at distances of more than 300 ly (unknown operator: u'strong' pc) from the Sun. Hence, current estimates of the total number remain highly uncertain, though it is often speculated to be around 250 billion. This can be compared to the one trillion (1012) stars of the neighboring Andromeda Galaxy.
The disk of stars in the Milky Way does not have a sharp edge beyond which there are no stars. Rather, the concentration of stars drops smoothly with distance from the center of the Galaxy. Beyond a radius of roughly 40000 ly (unknown operator: u'strong' kpc), the number of stars per cubic parsec drops much faster with radius, for reasons that are not understood. Both gravitational microlensing and planetary transit observations indicate that there may be at least as many planets bound to stars as there are stars in the Milky Way,while microlensing measurements also indicate that there are more rogue planets not bound to host stars than there are stars. Earth-sized planets may be more numerous than gas giants.
Filling the place between the stars within and around the stellar disk is a disk of gas called the interstellar medium.The disk of gas has at least a comparable extent in radius to the stars, while the thickness of the gas layer ranges from hundreds of light years for the colder gas to thousands of light years for warmer gas.
As a guide to the relative physical scale of the Milky Way, if it were reduced to 100 meters (unknown operator:u'strong' yd) in diameter, the Solar System, including the hypothesized Oort cloud, would be no more than 1
millimeter (unknown operator: u'strong' in) in width, or a grain of sand in a football field. The Galactic Halo extends outward, but is limited in size by the orbits of two Milky Way satellites, the Large and the Small Magellanic Clouds, whose perigalacticon is at about 180000 ly (unknown operator: u'strong' kpc). At this distance or beyond, the orbits of most halo objects would be disrupted by the Magellanic Clouds, and the objects
would likely be ejected from the vicinity of the Milky Way.
Composition and structure
The Galaxy consists of a bar-shaped core region surrounded by a disk
of gas, dust and stars. The gas, dust and stars are organized in roughly
logarithmic spiral arm structures (see Spiral arms below). The mass
distribution within the Galaxy closely resembles the Sbc Hubble
classification, which is a spiral galaxy with relatively loosely wound
arms. Astronomers first began to suspect that the Milky Way is a
barred spiral galaxy, rather than an ordinary spiral galaxy, in the
1990s. Their suspicions were confirmed by the Spitzer Space
Telescope observations in 2005 that showed the Galaxy's central bar
to be larger than previously suspected.Estimates for the mass of the Milky Way vary, depending upon the method and data used. Recent estimates at the low end have placed the mass of the Milky Way at 5.8×1011 solar masses (M☉), somewhat smaller than the Andromeda Galaxy. Other measurements by the Very Long Baseline Array (VLBA) have found velocities as large as 254 km/s for stars at the edge of the Milky Way, higher than the previously accepted value of 220 km/s.As the
orbital velocity depends on the mass enclosed, this implies that the Milky Way is more massive, roughly equaling the mass of Andromeda Galaxy at 7×1011 M☉ within 50 kiloparsecs (unknown operator: u'strong' ly) of its
center. A recent measurement of the radial velocity of halo stars finds the mass enclosed within 80 kiloparsecs is
7×1011 M☉. Most of the mass of the Galaxy is thought to be dark matter, which forms a dark matter halo that is spread out relatively uniformly to a distance beyond one hundred kiloparsecs from the Galactic Center. Modelling of the Milky Way suggests that the overall mass of the entire Galaxy lies in the range 1-1.5×1012 M☉ This mass in baryonic matter is estimated to include 200 to 400 billion stars. Its integrated absolute visual
magnitude has been estimated to be −20.9 Galactic Center
The Galactic disk, which bulges outward at the Galactic Center, has a
diameter of 70000–100000 light-years (unknown operator:
u'strong'unknown operator: u'strong'unknown operator: u'strong'
unknown operator: u'strong'). The exact distance from the Sun to
the Galactic Center is actively debated. The latest estimates from
geometric-based methods and standard candles yield distances to the
Galactic Center of 8.0–8.7 kpc (unknown operator:
u'strong'unknown operator: u'strong'unknown operator: u'strong'
unknown operator: u'strong').The fact that the estimates span nearly 1 kpc only underscores the true uncertainty associated with the distance to the Galactic Center. The Galactic Center harbors a compact object of very large mass as determined by the motion of material around the center.The intense radio source named Sagittarius A* is thought to mark the center of the Milky Way. The compact concentration of
mass around Sagittarius A* is best explained as a supermassive black hole. Similar observations indicate that there are supermassive black holes located near the center of most normal galaxies.
The nature of the Galaxy's bar is also actively debated, with estimates for its half-length and orientation spanning from 1–5 kpc () (short or a long bar) and 10–50 degrees.Certain authors advocate that the Galaxy features two distinct bars, one nestled within the other.The bar is delineated by red clump stars, however, RR Lyr variables do not trace a prominent Galactic bar. The bar may be surrounded by a ring called the "5-kpc ring" that contains a large fraction of the molecular hydrogen present in the Galaxy, as well as most of the Milky Way's star formation activity. Viewed from the Andromeda Galaxy, it would be the brightest feature of our own Galaxy.Spiral arms Beyond the gravitational influence of the Galactic bars, astronomers generally organize the interstellar medium and stars in the disk of the Milky Way in four spiral arms.[57] All of these arms contain more interstellar gas and dust than the Galactic average as well as a high concentration of star formation, traced by H II regions and molecular clouds. Counts of stars in near infrared light indicate that two arms contain approximately 30% more
red giant stars than would be expected in the absence of a spiral arm, while two do not contain more red giant stars
than regions outside of arms.
Maps of the Milky Way's spiral structure are notoriously uncertain and exhibit striking
difference. Some 150 years after Alexander (1852) first suggested that the Milky Way
was a spiral, there is currently no consensus on the nature of the Galaxy's spiral arms. Perfect logarithmic spiral
patterns ineptly describe features near the Sun, namely since galaxies commonly exhibit arms that branch,
merge, twist unexpectedly, and feature a degree of irregularity. The possible scenario of the Sun within a
spur / Local arm emphasizes that point and indicates that such features are likely not unique, and exist elsewhere
in the Galaxy.As in most spiral galaxies, each spiral arm can be described as a logarithmic spiral. Estimates of the pitch angle of
the arms range from ≈7° to ≈25°. Until recently, there were thought to be four major spiral arms which all start near the Galaxy's center. Two spiral arms, the Scutum-Centaurus arm and the Carina-Sagittarius arm, have tangent points inside the Sun's orbit around the center of the Milky Way. If these arms contain an overdensity of stars compared to the average
density of stars in the Galactic disk, it would be detectable by counting the stars near the tangent point. Two surveys
of near-infrared light, which is sensitive primarily to red giant stars and not affected by dust extinction, detected the
predicted overabundance in the Scutum-Centaurus arm but not in the Carina-Sagittarius arm. In 2008, Robert
Benjamin of the University of Wisconsin–Whitewater used this observation to suggest that the Milky Way possesses
only two major stellar arms: the Perseus arm and the Scutum-Centaurus arm. The rest of the arms contain excess gas
but not excess stars. This would mean that the Milky Way is similar in appearance to NGC 1365.
Outside of the major spiral arms is the Monoceros Ring (or Outer Ring), proposed by astronomers Brian Yanny and
Heidi Jo Newberg, a ring of gas and stars torn from other galaxies billions of years ago.
As is typical for many galaxies, the distribution of mass in the Milky Way Galaxy is such that the orbital speed of
most stars in the Galaxy does not depend strongly on their distance from the center. Away from the central bulge or
outer rim, the typical stellar velocity is between 210 and 240 km/s.Hence the orbital period of the typical star is
directly proportional only to the length of the path traveled. This is unlike the situation within the Solar System,
where two-body gravitational dynamics dominate and different orbits are expected to have significantly different
velocities associated with them. This difference is one of the major pieces of evidence for the existence of dark
matter. Another interesting aspect is the so-called "wind-up problem" of the spiral arms. If the inner parts of the arms
rotate faster than the outer part, then the galaxy will wind up so much that the spiral structure will be thinned out.
But this is not what is observed in spiral galaxies; instead, astronomers propose that the spiral pattern is a density
wave emanating from the Galactic Center. This can be likened to a moving traffic jam on a highway—the cars are all
moving, but there is always a region of slow-moving cars. This model also agrees with enhanced star formation in or
near spiral arms; the compressional waves increase the density of molecular hydrogen and protostars form as a
result.
Halo
The Galactic disk is surrounded by a spheroidal halo of old stars and globular clusters, of which 90% lie within
100000 light-years (unknown operator: u'strong' kpc),suggesting a stellar halo diameter of 200,000
light-years. However, a few globular clusters have been found farther, such as PAL 4 and AM1 at more than 200,000
light-years away from the Galactic Center. About 40% of these clusters are on retrograde orbits, which means they
move in the opposite direction from the Milky Way rotation.The globular clusters can follow rosette orbits about
the Galaxy, in contrast to the elliptical orbit of a planet.
While the disk contains gas and dust which obscure the view in some wavelengths, the spheroid component does not.
Active star formation takes place in the disk (especially in the spiral arms, which represent areas of high density), but
not in the halo. Open clusters also occur primarily in the disk.
Discoveries in the early 21st century have added dimension to the knowledge of the Milky Way's structure. With the
discovery that the disk of the Andromeda Galaxy (M31) extends much further than previously thought, the
possibility of the disk of the Milky Way Galaxy extending further is apparent, and this is supported by evidence from
the discovery of the Outer Arm extension of the Cygnus Arm. With the discovery of the Sagittarius Dwarf
Elliptical Galaxy came the discovery of a ribbon of galactic debris as the polar orbit of the dwarf and its interaction
with the Milky Way tears it apart. Similarly, with the discovery of the Canis Major Dwarf Galaxy, it was found that
a ring of galactic debris from its interaction with the Milky Way encircles the Galactic disk.
On January 9, 2006, Mario Jurić and others of Princeton University announced that the Sloan Digital Sky Survey of
the northern sky found a huge and diffuse structure (spread out across an area around 5,000 times the size of a full
moon) within the Milky Way that does not seem to fit within current models. The collection of stars rises close to
perpendicular to the plane of the spiral arms of the Galaxy. The proposed likely interpretation is that a dwarf galaxy
is merging with the Milky Way. This galaxy is tentatively named the Virgo Stellar Stream and is found in the
direction of Virgo about 30000 light-years (unknown operator: u'strong' kpc) away.
Gamma-ray bubbles
On November 9, 2010, Doug Finkbeiner of the Harvard–Smithsonian
Center for Astrophysics announced that he had detected two gigantic
spherical bubbles of energy erupting to the north and the south from
the center of the Milky Way, using data of the Fermi Gamma-ray
Space Telescope. The diameter of each of the bubbles is about 25000
light-years (unknown operator: u'strong' kpc); they stretch up to
Grus and to Virgo on the night-sky of the southern hemisphere. Their
origin remains unclear, so far.
Sun's location and neighborhood
The Sun (and therefore the Earth and the Solar System) may be found
close to the inner rim of the Galaxy's Orion Arm, in the Local Fluff
inside the Local Bubble, and in the Gould Belt, at a distance of
8.33 ± 0.35 kiloparsecs (unknown operator: u'strong' ± unknown
operator: u'strong' ly) from the Galactic Center. The Sun is
currently 5–30 parsecs (unknown operator: u'strong'unknown
operator: u'strong'unknown operator: u'strong' unknown
operator: u'strong') from the central plane of the Galactic disk.
The distance between the local arm and the next arm out, the Perseus
Arm, is about 6500 light-years (unknown operator:
u'strong' kpc). The Sun, and thus the Solar System, is found in the
Galactic habitable zone.
There are about 208 stars brighter than absolute magnitude 8.5 within
15 parsecs (unknown operator: u'strong' ly) of the Sun, giving a density of 0.0147 such stars per cubic parsec, or
0.000424 per cubic light-year (from List of nearest bright stars). On the other hand, there are 64 known stars (of any
magnitude, not counting 4 brown dwarfs) within 5 parsecs (unknown operator: u'strong' ly) of the Sun, giving a
density of 0.122 stars per cubic parsec, or 0.00352 per cubic light-year (from List of nearest stars), illustrating the
fact that most stars are less bright than absolute magnitude 8.5.
The Apex of the Sun's Way, or the solar apex, is the direction that the Sun travels through space in the Milky Way.
The general direction of the Sun's Galactic motion is towards the star Vega near the constellation of Hercules, at an
Milky Way 8
angle of roughly 60 sky degrees to the direction of the Galactic Center. The Sun's orbit around the Galaxy is
expected to be roughly elliptical with the addition of perturbations due to the Galactic spiral arms and non-uniform
mass distributions. In addition, the Sun oscillates up and down relative to the Galactic plane approximately 2.7 times
per orbit. This is very similar to how a simple harmonic oscillator works with no drag force (damping) term. These
oscillations were until recently thought to coincide with mass extinction periods on Earth. However, a reanalysis
of the effects of the Sun's transit through the spiral structure based on CO data has failed to find these
correlations.
It takes the Solar System about 225–250 million years to complete one orbit around the Galaxy (a Galactic year),
so the Sun is thought to have completed 18–20 orbits during its lifetime and 1/1250 of a revolution since the origin
of humans. The orbital speed of the Solar System about the center of the Galaxy is approximately 220 km/s or
0.073% of the speed of light. At this speed, it takes around 1,400 years for the Solar System to travel a distance of 1
light-year, or 8 days to travel 1 AU (astronomical unit).
Formation
The Milky Way began as one or several small overdensities in the mass distribution in the Universe shortly after the
Big Bang. Some of these overdensities were the seeds of globular clusters in which the oldest remaining stars in
what is now the Milky Way formed. These stars and clusters now comprise the stellar halo of the Galaxy. Within a
few billion years of the birth of the first stars, the mass of the Milky Way was large enough so that it was spinning
relatively quickly. Due to conservation of angular momentum, this led the gaseous interstellar medium to collapse
from a roughly spheroidal shape to a disk. Therefore, later generations of stars formed in this spiral disk. Most
younger stars, including the Sun, are observed to be in the disk.
Since the first stars began to form, the Milky Way has grown through both galaxy mergers and accretion of gas
directly from the Galactic halo. The Milky Way is currently in the process of stripping material from its two
nearest satellite galaxies, the Large and Small Magellanic Clouds, through the Magellanic Stream. Direct accretion
of gas is observed in high velocity clouds like the Smith Cloud.
Age
The ages of individual stars in the Milky Way can be estimated by
measuring the abundance of long-lived radioactive elements such as
thorium-232 and uranium-238, then comparing the results to estimates
of their original abundance, a technique called
nucleocosmochronology. These yield values of about 14.0 ± 2.4 Ga for
CS 31082-001 and 13.8 ± 4 Ga for BD+17° 3248. Once a white dwarf
star is formed, it begins to undergo radiative cooling and the surface
temperature steadily drops. By measuring the temperatures of the
coolest of these white dwarfs and comparing them to their expected
initial temperature, an age estimate can be made. With this technique,
the age of the globular cluster M4 was estimated as 12.7 ± 0.7 Ga. Globular clusters are among the oldest objects in
the Milky Way Galaxy, which thus set a lower limit on the Galaxy age. Age estimates of the oldest of these clusters
gives a best fit estimate of 12.6 Ga, and a 95% confidence upper limit of 16 Ga.
In 2007, a star in the Galactic halo, HE 1523-0901, was estimated to be about 13.2 billion years old, ≈0.5 billion
years less than the age of the universe. As the oldest known object in the Milky Way at that time, this measurement
placed a lower limit on the age of the Milky Way.This estimate was determined using the UV-Visual Echelle
Spectrograph of the Very Large Telescope to measure the relative strengths of spectral lines caused by the presence
of Thorium and other elements created by the R-process. The line strengths yield abundances of different elemental
isotopes, from which an estimate of the age of the star can be derived using nucleocosmochronology.
The age of stars in the Galactic thin disk has also been estimated using nucleocosmochronology. Measurements of
thin disk stars yield an estimate that the thin disk formed between 8.8 ± 1.7 billion years ago. These measurements
suggest there was a hiatus of almost 5 billion years between the formation of the Galactic halo and the thin disk.
Environment
Broad infrared view of our Milky Way Galaxy
from the Spitzer Space Telescope created from
more than 800,000 frames. This is the most
detailed infrared picture of our Galaxy to date.
Milky Way starscape taken from ESO's Paranal
Observatory with enlarged region (bottom).
The Milky Way and the Andromeda Galaxy are a binary system of
giant spiral galaxies belonging to a group of 50 closely bound galaxies
known as the Local Group, itself being part of the Virgo Supercluster.
Two smaller galaxies and a number of dwarf galaxies in the Local
Group orbit the Milky Way. The largest of these is the Large
Magellanic Cloud with a diameter of 20,000 light-years. It has a close
companion, the Small Magellanic Cloud. The Magellanic Stream is a
peculiar streamer of neutral hydrogen gas connecting these two small
galaxies. The stream is thought to have been dragged from the
Magellanic Clouds in tidal interactions with the Milky Way. Some of
the dwarf galaxies orbiting the Milky Way are Canis Major Dwarf (the
closest), Sagittarius Dwarf Elliptical Galaxy, Ursa Minor Dwarf,
Sculptor Dwarf, Sextans Dwarf, Fornax Dwarf, and Leo I Dwarf. The
smallest Milky Way dwarf galaxies are only 500 light-years in
diameter. These include Carina Dwarf, Draco Dwarf, and Leo II
Dwarf. There may still be undetected dwarf galaxies, which are
dynamically bound to the Milky Way, as well as some that have
already been absorbed by the Milky Way, such as Omega Centauri.
Observations through the Zone of Avoidance are frequently detecting
new distant and nearby galaxies. Some galaxies consisting mostly of
gas and dust may also have evaded detection so far.
In January 2006, researchers reported that the heretofore unexplained
warp in the disk of the Milky Way has now been mapped and found to
be a ripple or vibration set up by the Large and Small Magellanic
Clouds as they circle the Galaxy, causing vibrations at certain
frequencies when they pass through its edges.Previously, these two
galaxies, at around 2% of the mass of the Milky Way, were considered
too small to influence the Milky Way. However, by taking into account
dark matter, the movement of these two galaxies creates a wake that influences the larger Milky Way. Taking dark
matter into account results in an approximately twentyfold increase in mass for the galaxy. This calculation is
according to a computer model made by Martin Weinberg of the University of Massachusetts, Amherst. In this
Milky Way 10
model, the dark matter is spreading out from the Galactic disk with the known gas layer. As a result, the model
predicts that the gravitational effect of the Magellanic Clouds is amplified as they pass through the Galaxy.
Current measurements suggest the Andromeda Galaxy is approaching us at 100 to 140 kilometers per second. The
Milky Way may collide with it in 3 to 4 billion years, depending on the importance of unknown lateral components
to the galaxies' relative motion. If they collide, individual stars within the galaxies would not collide, but instead the
two galaxies will merge to form a single elliptical galaxy over the course of about a billion years.
Velocity
In the general sense, the absolute velocity of any object through space
is not a meaningful question according to Einstein's special theory of
relativity, which declares that there is no "preferred" inertial frame of
reference in space with which to compare the object's motion. (Motion
must always be specified with respect to another object.) This must be
kept in mind when discussing the Galaxy's motion.
Astronomers believe the Milky Way is moving at approximately
630 km per second relative to the local co-moving frame of reference
that moves with the Hubble flow. If the Galaxy is moving at
600 km/s, Earth travels 51.84 million km per day, or more than 18.9
billion km per year, about 4.5 times its closest distance from Pluto. The
Milky Way is moving in the general direction of the Great Attractor
and other galaxy clusters, including the Shapley supercluster, behind
it. The Local Group (a cluster of gravitationally bound galaxies
containing, among others, the Milky Way and the Andromeda Galaxy)
is part of a supercluster called the Local Supercluster, centered near the
Virgo Cluster: although they are moving away from each other at
967 km/s as part of the Hubble flow, the velocity is less than would be
expected given the 16.8 million pc distance due to the gravitational attraction between the Local Group and the
Virgo Cluster.
Another reference frame is provided by the cosmic microwave background (CMB). The Milky Way is moving at
552 ± 6 km/s[9] with respect to the photons of the CMB, toward 10.5 right ascension, −24° declination (J2000 epoch,
near the center of Hydra). This motion is observed by satellites such as the Cosmic Background Explorer (COBE)
and the Wilkinson Microwave Anisotropy Probe (WMAP) as a dipole contribution to the CMB, as photons in
equilibrium in the CMB frame get blue-shifted in the direction of the motion and red-shifted in the opposite
direction.
The Galaxy rotates about its center according to its galaxy rotation curve as shown in the figure. The discrepancy
between the observed curve (relatively flat) and the curve based upon the known mass of the stars and gas in the
Milky Way (decaying curve) is attributed to dark matter.
Etymology and mythology
In western culture the name "Milky Way" is derived from its appearance as a dim un-resolved "milky" glowing band
arching across the night sky. The term is a translation of the Classical Latin via lactea, in turn derived from the
Hellenistic Greek γαλαξίας, short for γαλαξίας κύκλος (pr. galaktikos kyklos, "milky circle"). The Ancient Greek
γαλαξίας (galaxias), from root γαλακτ- , γάλα (milk) + -ίας (forming adjectives), is also the root of "galaxy", the
name for our, and later all such, collections of stars. The Milky Way "milk circle" was just one of
11 circles the Greeks identified in the sky, others being the zodiac, the meridian, the horizon, the equator, the tropics
of Cancer and Capricorn, Arctic and Antarctic circles, and two colure circles passing through both poles.
There are many creation myths around the world which explain the origin of the Milky Way and give it its name. In
Greek myth, the Milky Way was caused by milk spilt by Hera when suckling Heracles. It is also described as the
road to mount Olympus, and the path of ruin made by the chariot of the Sun god Helios.
In Sanskrit and several other Indo-Aryan languages, the Milky Way is called Akash Ganga (आकाशगंगा, Ganges of the
heavens); it is held to be sacred in the Hindu Puranas (scriptures), and the Ganges and the Milky Way are considered
to be terrestrial and celestial analogs. Kshira (क्षीर, milk) is an alternative name for the Milky Way in
Hindu texts in Sanskrit.
Astronomical history
As Aristotle (384–322 BC) informs us in Meteorologica (DK 59 A80),
the Greek philosophers Anaxagoras (ca. 500–428 BC) and Democritus
(450–370 BC) proposed the Milky Way might consist of distant stars.
However, Aristotle himself believed the Milky Way to be caused by
"the ignition of the fiery exhalation of some stars which were large,
numerous and close together" and that the "ignition takes place in the
upper part of the atmosphere, in the region of the world which is
continuous with the heavenly motions." The Neoplatonist
philosopher Olympiodorus the Younger (c. 495–570 A.D.) criticized this view, arguing that if the Milky Way were
sublunary it should appear different at different times and places on the Earth, and that it should have parallax, which
it does not. In his view, the Milky Way was celestial. This idea would be influential later in the Islamic world.
According to Mohaini Mohamed, the Arabian astronomer, Alhazen (965–1037 AD), refuted this by making the first
attempt at observing and measuring the Milky Way's parallax.He determined that the Milky Way has no
parallax and concluded that it must be remote from the Earth, not part of Earth's atmosphere.
The Persian astronomer Abū Rayhān al-Bīrūnī (973–1048) proposed that the Milky Way is "a collection of countless
fragments of the nature of nebulous stars". The Andalusian astronomer Avempace (d. 1138) proposed the Milky
Way to be made up of many stars but appears to be a continuous image due to the effect of refraction in the Earth's
atmosphere, citing his observation of a conjunction of Jupiter and Mars in 1106 or 1107 as evidence. Ibn
Qayyim Al-Jawziyya (1292–1350) proposed the Milky Way Galaxy to be "a myriad of tiny stars packed together in
the sphere of the fixed stars" and that these stars are larger than planets.
According to Jamil Ragep, the Persian astronomer Naṣīr al-Dīn al-Ṭūsī (1201,1274) in his Tadhkira writes: "The
Milky Way, i.e. the Galaxy, is made up of a very large number of small, tightly-clustered stars, which, on account of
their concentration and smallness, seem to be cloudy patches. because of this, it was likened to milk in color."
Actual proof of the Milky Way consisting of many stars came in 1610 when Galileo Galilei used a telescope to study
the Milky Way and discovered that it was composed of a huge number of faint stars. In a treatise in 1755,
Immanuel Kant, drawing on earlier work by Thomas Wright, speculated (correctly) that the Milky Way might be a
rotating body of a huge number of stars, held together by gravitational forces akin to the Solar System but on much
larger scales. The resulting disk of stars would be seen as a band on the sky from our perspective inside the disk.
Kant also conjectured that some of the nebulae visible in the night sky might be separate "galaxies" themselves,
similar to our own. Kant referred to both our Galaxy and the "extragalactic nebulae" as "island universes", a term
still current up to the 1930s.
The first attempt to describe the shape of the Milky Way and the position of the Sun within it was carried out by
William Herschel in 1785 by carefully counting the number of stars in different regions of the visible sky. He
produced a diagram of the shape of the Galaxy with the Solar System close to the center.
In 1845, Lord Rosse constructed a new telescope and was able to distinguish between elliptical and spiral-shaped
nebulae. He also managed to make out individual point sources in some of these nebulae, lending credence to Kant's
earlier conjecture.
In 1917, Heber Curtis had observed the nova S Andromedae within the
"Great Andromeda Nebula" (Messier object M31). Searching the
photographic record, he found 11 more novae. Curtis noticed that these
novae were, on average, 10 magnitudes fainter than those that occurred
within our Galaxy. As a result he was able to come up with a distance
estimate of 150,000 parsecs. He became a proponent of the "island
universes" hypothesis, which held that the spiral nebulae were actually
independent galaxies. In 1920 the Great Debate took place
between Harlow Shapley and Heber Curtis, concerning the nature of
the Milky Way, spiral nebulae, and the dimensions of the universe. To
support his claim that the Great Andromeda Nebula was an external
galaxy, Curtis noted the appearance of dark lanes resembling the dust clouds in the Milky Way, as well as the
significant Doppler shift.
The matter was conclusively settled by Edwin Hubble in the early 1920s using the Mount Wilson observatory 100
inch (2.5 m) Hooker telescope. With the light-gathering power of this new telescope he was able to produce
astronomical photographs that resolved the outer parts of some spiral nebulae as collections of individual stars. He
was also able to identify some Cepheid variables that he could use as a benchmark to estimate the distance to the
nebulae: proving they were far too distant to be part of the Milky Way.[122] In 1936, Hubble produced a
classification system for galaxies that is used to this day, the Hubble sequence.[