Space Travel News  
Snow Like Iron Helps Maintain The Magnetic Field Of Mercury

Jie "Jackie" Li, a professor of geology, and graduate student Bin Chen have concluded that deep inside the planet Mercury, iron "snow" forms and falls toward the center of the planet, much like snowflakes form in Earth's atmosphere and fall to the ground. The movement of this iron snow could be responsible for Mercury's mysterious magnetic field.
by James E. Kloeppel
Physical Sciences Editor, University of Illinois
Champaign IL (SPX) May 08, 2008
New scientific evidence suggests that deep inside the planet Mercury, iron "snow" forms and falls toward the center of the planet, much like snowflakes form in Earth's atmosphere and fall to the ground.

The movement of this iron snow could be responsible for Mercury's mysterious magnetic field, say researchers from the University of Illinois and Case Western Reserve University. In a paper published in the April issue of the journal Geophysical Research Letters, the scientists describe laboratory measurements and models that mimic conditions believed to exist within Mercury's core.

"Mercury's snowing core opens up new scenarios where convection may originate and generate global magnetic fields," said U. of I. geology professor Jie "Jackie" Li. "Our findings have direct implications for understanding the nature and evolution of Mercury's core, and those of other planets and moons."

Mercury is the innermost planet in our solar system and, other than Earth, the only terrestrial planet that possesses a global magnetic field. Discovered in the 1970s by NASA's Mariner 10 spacecraft, Mercury's magnetic field is about 100 times weaker than Earth's. Most models cannot account for such a weak magnetic field.

Made mostly of iron, Mercury's core is also thought to contain sulfur, which lowers the melting point of iron and plays an important role in producing the planet's magnetic field.

"Recent Earth-based radar measurements of Mercury's rotation revealed a slight rocking motion that implied the planet's core is at least partially molten," said Illinois graduate student Bin Chen, the paper's lead author. "But, in the absence of seismological data from the planet, we know very little about its core."

To better understand the physical state of Mercury's core, the researchers used a multi-anvil apparatus to study the melting behavior of an iron-sulfur mixture at high pressures and high temperatures.

In each experiment, an iron-sulfur sample was compressed to a specific pressure and heated to a specific temperature. The sample was then quenched, cut in two, and analyzed with a scanning electron microscope and an electron probe microanalyzer.

"Rapid quenching preserves the sample's texture, which reveals the separation of the solid and liquid phases, and the sulfur content in each phase," Chen said. "Based on our experimental results, we can infer what is going on in Mercury's core."

As the molten, iron-sulfur mixture in the outer core slowly cools, iron atoms condense into cubic "flakes" that fall toward the planet's center, Chen said. As the iron snow sinks and the lighter, sulfur-rich liquid rises, convection currents are created that power the dynamo and produce the planet's weak magnetic field.

Mercury's core is most likely precipitating iron snow in two distinct zones, the researchers report. This double-snow state may be unique among the terrestrial planets and terrestrial-like moons in our solar system.

"Our findings provide a new context into which forthcoming observational data from NASA's MESSENGER spacecraft can be placed," Li said. "We can now connect the physical state of our innermost planet with the formation and evolution of terrestrial planets in general."

With Li and Chen, Case Western Reserve University planetary geodynamics professor Steven A. Hauck II was a co-author of the paper.

Related Links
University of Illinois
News Flash at Mercury
Mars News and Information at MarsDaily.com
Lunar Dreams and more



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


Mercury's Shifting, Rolling Past
Blacksburg VA (SPX) Mar 18, 2008
Patterns of scalloped-edged cliffs or lobate scarps on Mercury's surface are thrust faults that are consistent with the planet shrinking and cooling with time. However, compression occurred in the planet's early history and Mariner 10 images revealed decades ago that lobate scarps are among the youngest' features on Mercury.







  • NASA Successfully Completes First Series Of Ares Engine Tests
  • NASA Awards Contract For Ares I Mobile Launcher
  • Russia's Energomash To Double Production Of Rocket Engines
  • Queensland Uni And NASA Sign Hypersonic Propulsion Deal

  • Orbital Awarded Contract for Suborbital Launch Vehicle Research by US DoD
  • Arianespace Takes Delivery Of Its Third Ariane 5 In 2008
  • Skynet 5C And Turksat 3A Are Fueled For The Upcoming Ariane 5 Heavy-Lift Launch
  • ISRO Scientists Meet With Prime Minister

  • Discovery's Payloads Installed
  • Space Shuttle Discovery Arrives At Launch Pad
  • Discovery's Next Move: Rollout to Pad 39A
  • Discovery Ready For Final Assembly And Checkout

  • Students to call long distance to the ISS
  • NASA-TV to televise ISS cargo ship arrival
  • US Congressional Subcommittee Examines The Status Of The ISS
  • Expedition 16's Whitson Hands Over Command Of Station

  • NASA Kepler Mission Offers Opportunity To Send Names Into Space
  • SKorea's first astronaut suffers back injury: doctor
  • Design Begins On Twin Probes That Will Study Radiation Belts
  • SKorea's first astronaut in hospital with back pain

  • Suits For Shenzhou
  • China Launches New Space Tracking Ship To Serve Shenzhou VII
  • Three Rocketeers For Shenzhou
  • China's space development can pose military threat: Japan

  • Canada rejects sale of space firm to US defense firm
  • The Future Of Robotic Warfare Part Two
  • Robot anaesthetist developed in France: doctor
  • Surgeons use robots during heart surgery

  • Testing Times For Robotic Explorers On Mars
  • Phoenix Landing Area Viewed By Mars Color Imager
  • Opportunity Investigates Arthritic Rover Joint
  • Is There Life On Mars - Ask A Magnet

  • 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