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          <TD class=3Dstory_title vAlign=3Dtop>Hubble Helps Discover How =
Massive=20
            Stars Can Get</TD></TR>
        <TR>
          <TD vAlign=3Dtop><BR><STRONG>Summary</STRONG> - (<STRONG>Mar =
9,=20
            2005</STRONG>) New observations from the Hubble Space =
Telescope are=20
            helping astronomers fine tune their models of star =
formation,=20
            including an estimate of just how massive a star can become. =
Hubble=20
            carefully observed the Arches cluster, a group of stars =
collectively=20
            weighing 10,000 solar masses. Standard theories predicted 20 =
to 30=20
            stars in the cluster would have 150 solar masses, but none =
turned=20
            up; although, at least a dozen push 100 solar masses. What =
variables=20
            could limit the amount of mass a star can pack=20
            on?<BR><BR><STRONG>Full Story</STRONG> - <A=20
            =
href=3D"http://www.universetoday.com/am/uploads/2005-0309cluster-full.jpg=
"><IMG=20
            =
src=3D"http://www.universetoday.com/am/uploads/2005-0309cluster-lg.jpg"=20
            align=3Dright></A>Unlike humans, stars are born with all the =
weight=20
            they will ever have. A human's birth weight varies by just a =
few=20
            pounds, but a star's weight ranges from less than a tenth to =
more=20
            than 100 times the mass of our Sun. Although astronomers =
know that=20
            stars come in a variety of masses, they are still stumped =
when it=20
            comes to figuring out if stars have a weight limit at=20
            birth.<BR><BR>Now astronomers have taken an important step =
toward=20
            establishing a weight limit for stars. Using NASA's Hubble =
Space=20
            Telescope, astronomers made the first direct measurement =
within our=20
            Milky Way Galaxy that stars have a limit to how large they =
can form.=20
            Studying the densest known cluster of stars in our galaxy, =
the=20
            Arches cluster, astronomers determined that stars are not =
created=20
            any larger than about 150 times the mass of our Sun, or 150 =
solar=20
            masses.<BR><BR>The finding takes astronomers closer to =
understanding=20
            the complex star-formation process and gives the strongest =
footing=20
            yet to the idea that stars have a weight limit. Knowing how =
large a=20
            star can form may offer important clues to how the universe =
makes=20
            stars. Massive stars are the "movers and shakers" of the =
universe.=20
            They manufacture many of the heavier elements in the cosmos, =
which=20
            are the building blocks for new stars and planets. Hefty =
stars also=20
            may be the source of titanic gamma-ray bursts, which flood a =
galaxy=20
            with radiation.<BR><BR>"This is an incredible cluster that =
contains=20
            a rich collection of some of the most massive stars in the =
galaxy,=20
            yet it appears to be =91missing' stars more massive than 150 =
times the=20
            mass of our Sun," said astronomer Donald F. Figer of the =
Space=20
            Telescope Science Institute in Baltimore, Md. "Theories =
predict that=20
            the more massive the cluster, the more massive the stars =
within it.=20
            We looked at one of the most massive clusters in our galaxy =
and=20
            found that there is a sharp cutoff to how large a star can=20
            form.<BR><BR>"Standard theories predict 20 to 30 stars in =
the Arches=20
            cluster with masses between 130 and 1,000 solar masses. But =
we found=20
            none. If they had formed, we would have seen them. If the =
prediction=20
            was only one or two stars and we saw none, then we could =
claim that=20
            our result could be due to statistical errors."<BR><BR>Figer =
is=20
            pursuing follow-up studies to determine an upper limit in =
other star=20
            clusters to test his result. His finding is consistent with=20
            statistical studies of smaller-mass star clusters in our =
galaxy and=20
            with observations of a massive star cluster known as R136 in =
our=20
            galactic neighbor, the Large Magellanic Cloud. In that =
cluster,=20
            astronomers discovered that stars were not created any =
larger than=20
            150 solar masses.<BR><BR>Astronomers have been uncertain =
about how=20
            large a star can get before it cannot hold itself together =
and blows=20
            itself apart. Even with the advances in technology, =
astronomers do=20
            not know enough about the details of the star-formation =
process to=20
            determine an upper-mass limit for stars. Consequently, =
theories have=20
            predicted that stars can be anywhere between 100 to 1,000 =
times more=20
            massive than our Sun. Predicting a lower weight limit for =
stars has=20
            been easier. Objects less than one-tenth a solar mass are =
not hefty=20
            enough to sustain nuclear fusion in their cores and shine as =

            stars.<BR><BR>Making this finding was so tricky that Figer =
spent=20
            seven years puzzling over the Hubble data. The results are =
published=20
            in the March 10th issue of the journal =
Nature.<BR><BR>"Knowing that=20
            extraordinary claims demand extraordinary proof, I scratched =
my head=20
            for a long time trying to figure out why the result might be =
wrong,"=20
            he said.<BR><BR>Figer used Hubble's Near Infrared Camera and =

            Multi-Object Spectrometer to study hundreds of stars ranging =
from 6=20
            to 130 solar masses. (Although Figer did not find any stars =
larger=20
            than 130 solar masses, he conservatively set the upper limit =
at 150=20
            solar masses.) The Arches cluster is a youngster, about 2 to =
2.5=20
            million years old, and resides 25,000 light-years away in =
our=20
            galaxy's hub, a hotbed of massive star formation. In this=20
            rough-and-tumble region, huge clouds of gas collide to form =
behemoth=20
            stars.<BR><BR>Hubble's infrared camera is well suited to =
analyze the=20
            Arches because it penetrates the dusty core of our galaxy =
and=20
            produces sharp images, allowing the telescope to see =
individual=20
            stars in a tightly packed cluster. Figer estimated the =
stars' masses=20
            by measuring the ages of the cluster and the brightness of =
the=20
            individual stars. He also collaborated with Francisco =
Najarro of the=20
            Instituto de Estructura de la Materia in Madrid, who =
produced=20
            detailed models to confirm the masses, chemical abundances, =
and ages=20
            of the cluster's stars.<BR><BR>A cluster must meet a long =
list of=20
            requirements for astronomers to use it for identifying an =
upper-mass=20
            limit. The cluster must be hefty enough, about 10,000 solar =
masses,=20
            to produce stars large enough to probe the upper limit. A =
cluster=20
            also cannot be too young or too old. Selecting an older =
cluster =97=20
            beyond 2.5 million years =97 means that many of the massive =
young=20
            stars have already exploded as supernovas. In a very young =
cluster =97=20
            less than 2 million years old =97 many of the stars are =
still=20
            enshrouded in their natal dust clouds, and astronomers =
cannot see=20
            them.<BR><BR>Another important factor is a cluster's =
distance from=20
            Earth. Astronomers must know the cluster's distance to =
reliably=20
            estimate the brightness of its stars, a key ingredient used =
to=20
            estimate a star's mass. The cluster also must be close =
enough to see=20
            individual stars. The Arches cluster is the only cluster in =
the=20
            galaxy that meets all of those requirements, Figer =
said.<BR><BR>The=20
            Arches outshines almost every other star cluster in the =
galaxy. With=20
            a mass equivalent to more than 10,000 stars like our Sun, =
the=20
            monster cluster is 10 times heavier than typical young star=20
            clusters, such as the Orion cluster, scattered throughout =
our Milky=20
            Way. If our galactic neighborhood were as cluttered with =
stars, more=20
            than 100,000 stars would fill the void of space between our =
Sun and=20
            its nearest neighbor, the star Alpha Centauri, 4.3 =
light-years away.=20
            Astronomers estimate that only 1 out of every 10 million =
stars in=20
            the galaxy is as bright as the stars in the Arches cluster. =
At least=20
            a dozen of the cluster's stars weigh about 100 times the =
mass of our=20
            Sun.<BR><BR>Figer cautions that the upper limit does not =
rule out=20
            the existence of stars larger than 150 solar masses. Such =
hefty=20
            stars, if they exist, could have gained weight by merging =
with=20
            another massive star. For example, the young Pistol star, =
located=20
            near our galactic hub, is 150 to 250 times more massive than =
our=20
            Sun. This behemoth star, however, seems out of place because =
it=20
            dwells in a neighborhood of older stars. One way to explain =
this=20
            apparent paradox, Figer said, is that the Pistol could be a=20
            "born-again" star, formed from the merger of two stars. His=20
            explanation is not just theory. Astronomers have found older =
stars=20
            that have been reborn through mergers with other stars in =
ancient=20
            globular star clusters.<BR><BR>The Pistol also could be part =
of a=20
            double-star system that is masquerading as a single giant =
star. The=20
            two stars have not been unmasked because they cannot be =
resolved by=20
            even the Hubble telescope.<BR><BR>Double-star systems, =
astronomers=20
            also caution, could make up some of the most massive stars =
in the=20
            Arches cluster. This means that the upper limit in the =
Arches could=20
            be lower than 150 solar masses, but not any =
higher.<BR><BR>Figer's=20
            next step is to pinpoint more clusters to test his weight =
limit.=20
            Several telescopes, including the Spitzer Space Telescope, =
have been=20
            searching for new star clusters in our Milky Way. In the =
last two=20
            years, the number of known clusters in our galaxy has =
doubled from a=20
            few hundred to 500, Figer said. Many of the newly found =
clusters are=20
            compiled in the Two Micron All Sky Survey (2MASS) catalogue. =
Figer=20
            already has identified about 130 of these newly discovered =
clusters=20
            as possible candidates to study. NASA has recognized Figer's =

            important work by giving him a five-year Long Term Space=20
            Astrophysics award, which will support his hunt for the most =
massive=20
            stars in the Milky Way.<BR><BR>Original Source: <A=20
            =
href=3D"http://hubblesite.org/newscenter/newsdesk/archive/releases/2005/0=
5/text/">Hubble=20
            News Release</A> <BR><BR>
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