Space Industry and Business News  
Small Helper Stars Needed For Massive Star Formation

File image of a massive star being formed.) See a video simulation the collapse of a 100 solar mass protostellar core to a massive star. On the left is the entire molecular cloud about 1.3 light years on a side. On the right is a portion of that cloud magnified 40 times to focus on the formation of a single massive star. Without a few small stars to heat up the gas on the right, dozens of small stars would form instead of one massive star. View full-size video by Mark Krumholz/Princeton (29MB)
by Robert Sanders
Berkeley CA (SPX) Mar 03, 2008
In order for a rare, massive star to form inside an interstellar cloud of gas and dust, small "helper" stars about the size of the sun must first set the stage, according to a new theory proposed by astrophysicists at the University of California, Berkeley, and Princeton University.

Massive stars between 10 and 150 times the mass of the sun are few in number but produce the bulk of the heavy elements in a galaxy when they explode in supernovas. Their extreme brightness makes them signposts of star formation in distant galaxies.

Astrophysicist Christopher F. McKee, professor of physics and astronomy at UC Berkeley, and Mark R. Krumholz, a Hubble postdoctoral fellow in the Department of Astrophysical Sciences at Princeton, have been modeling the formation of these stars for nearly 10 years. Recently, they looked at the conditions inside cold clouds of molecular hydrogen that favor formation of massive stars over low-mass stars like the sun.

In a report this week in Nature, Krumholz and McKee argue that early formation of a few low-mass stars in a cloud paves the way for later formation of a stellar big brother instead of fragmentation of the cloud into a hundred smaller clouds, which would produce only low-mass siblings.

"It's only the formation of these low-mass stars that heats up the cloud enough to cut off the fragmentation," McKee said. "It is as if the cold molecular cloud starts on the process of making low-mass stars but then, because of heating, that fragmentation is stopped and the rest of the gas goes into one large star."

"What it comes down to is that if a cloud is cold, it tends to break up into many small pieces that become low-mass stars," added Krumholz, who recently accepted a faculty position with the astronomy department at UC Santa Cruz. "As the cloud gets warmer, though, it can make bigger and bigger objects."

The cloud temperatures are still cold, however. A typical interstellar hydrogen cloud is 10-20 degrees Celsius above absolute zero (10-20 Kelvin, or about -430 degrees Fahrenheit), while low-mass stars can heat the cloud to double or triple this temperature. To stop the entire cloud from collapsing, the temperature would have to increase to many hundreds of degrees above absolute zero, McKee said.

According to Krumholz, each small star within a hydrogen cloud has a zone of influence where it warms up the gas and prevents it from collapsing into small fragments. In low density clouds, each zone of influence is small and contains very little mass, so this effect is unimportant.

As the density increases, however, the gas and small stars get packed closer and closer together. Eventually, said Krumholz, the zones of influence of the few low-mass stars encompass the entire cloud, preventing the cloud from fragmenting and forcing it to collapse to make a massive star.

McKee noted that this collapse occurs within an even larger interstellar cloud that may contain more than a million times the mass of the sun. Therefore, as in our galaxy's Orion Nebula, many massive stars may be forming simultaneously inside a giant molecular cloud.

The density above which massive stars can form is about a million hydrogen molecules per cubic centimeter, which is a very extreme vacuum on Earth, he said, but nevertheless dense enough to collapse into a massive star over hundreds of thousands of years. The particle density in Earth's atmosphere is 10 trillion times greater.

According to McKee, one implication of the density limitation is that in the outer reaches of galaxies, where the density may not reach this threshold in a sufficiently large region of space, low-mass stars may be forming in the absence of any massive stars. Because we can see only the big, bright stars from Earth, he said, astronomers may be underestimating the amount of star formation going on in distant galaxies.

"In fact, there may be many stars forming in the outer reaches of distant galaxies, just not the bright ones we can see," McKee said. "Star formation could be occurring that is essentially invisible."

He noted that a recent satellite collecting ultraviolet light from distant galaxies has seen evidence of star formation in the very outer regions of galaxies, and that this may confirm their prediction.

McKee and Krumholz are involved in large-scale computer simulations of star formation inside cold molecular clouds to confirm the researchers' mathematical theory that low-mass star formation is necessary for formation of high-mass stars.

Related Links
Krumholz at Princeton
Stellar Chemistry, The Universe And All Within It



Memory Foam Mattress Review
Newsletters :: SpaceDaily :: SpaceWar :: TerraDaily :: Energy Daily
XML Feeds :: Space News :: Earth News :: War News :: Solar Energy News


NASA's Swift Satellite Images A Galaxy Ablaze With Starbirth
Greenbelt MD (SPX) Feb 28, 2008
Imagine looking at a tree through eyeglasses that only allow red light to pass through. The tree is going to look a lot different than how it would look without the glasses. The same goes for a galaxy when astronomers look at it through different types of telescopes.







  • Google stock price sinks on Internet ad-slump fears
  • HP And Qualcomm To Deliver Options For Worldwide Internet Access
  • Google's Android debuts in Barcelona
  • Nokia says to launch touch-screen phone in late '08

  • ILS Announces Contract To Launch Two Sirius Satellite Radio Spacecraft On Proton Breeze M
  • Arianespace Prepares For Its First Two Ariane 5 Missions Of 2008
  • Russia's Proton-M To Orbit Another UAE Telecoms Satellite
  • ILS Proton To Launch S2M Satellite For Mobile TV Service In Middle East And North Africa

  • Environmentalists climb on Heathrow jet in airport protest: officials
  • NASA opens a rotary wing research project
  • All-star line-up at first Singapore Airshow
  • Military Aircraft To Perform Aviation Safety Research

  • Orbital Awarded Contract For System F6 Satellite Program By DARPA
  • Lockheed Martin Completes Rigorous Test Of First Advanced Military Communications Satellite
  • Northrop Grumman And Harris Demonstrate Airborne Networking
  • EADS DS Delivers Army Command And Control Information System To Franco-German Brigade

  • Boeing Satellites Reach 2500 Years Of Accumulated On Orbit Services
  • Satellite Debris Analysis Indicates Hydrazine Tank Hit
  • Darkest material developed in lab
  • NASA And Northrop Grumman Partner To Measure The Immeasurable

  • NASA Names John Shannon New Space Shuttle Manager
  • Michael Larkin Appointed Executive Vice President Of Orbital's Satellite Business Unit
  • Boeing Integrated Defense Systems Looks To Future With Leadership Changes
  • Raytheon Space and Airborne Systems Names Carey VP For ISR Systems

  • Falcon Investigates Pollution From The Dakar Metropolis Into Desert Dust Layers
  • NASA Extends Mission For Ball Aerospace-Built ICESat
  • CIRA Scientist Among Authors Of Book Celebrating 50 Years Of Earth Observations From Space
  • Indonesia To Develop New EO Satellite

  • ATK Conducts Advanced Anti-Radiation Guided Missile Flight Test
  • Watsontown Trucking Deploys DriverTech Fleet-Wide
  • Its 10 In The Morning, Do You Know Where Your Employees And Equipment Are
  • Exaktime Brings Next Gen Time And Attendance Tracking To Mobile Work Crews With PocketClock/GPS

  • The content herein, unless otherwise known to be public domain, are Copyright Space.TV Corporation. AFP and UPI Wire Stories are copyright Agence France-Presse and United Press International. ESA Portal Reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space.TV Corp on any Web page published or hosted by Space.TV Corp. Privacy Statement