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First Calculations of Magnetic Activity in "Hot Jupiters" by Staff Writers Tempe AZ (SPX) Jul 23, 2019
Gas-giant planets orbiting close to their stars have powerful magnetic fields, many times stronger than our own Jupiter, according to a new study by a team of astrophysicists. It is the first time the strength of these fields has been calculated from observations. The team, led by Wilson Cauley of the University of Colorado, also includes associate professor Evgenya Shkolnik of Arizona State University's School of Earth and Space Exploration. The other researchers are Joe Llama of Northern Arizona University and Antonino Lanza of the Astrophysical Observatory of Catania in Italy. "Our study is the first to use observed signals to derive exoplanet magnetic field strengths," says Shkolnik. "These signals appear to come from interactions between the magnetic fields of the star and the tightly orbiting planet."
Many Worlds Such planets travel well inside their star's magnetic field, where interactions between the planetary field and the stellar one can be continual and strong. Previous studies, the team says, have placed upper limits on exoplanet magnetic fields, for example, from radio observations or derived purely from theory. "We combined measurements of increased stellar emission from the magnetic star-planet interactions together with physics theory to calculate the magnetic field strengths for four hot Jupiters," says lead author Cauley. The magnetic field strengths the team found range from 20 to 120 gauss. For comparison, Jupiter's magnetic field is 4.3 gauss and Earth's field strength is only half a gauss, although that is strong enough to orient compasses worldwide.
Triggering Activity Says Shkolnik, "We used the power estimates to calculate magnetic field strengths for the planets using a theory for how the planets' magnetic fields interact with the stellar magnetic fields." Cauley explains, "Magnetic fields like to be in a state of low energy. If you twist or stretch the field like a rubber band, this increases the energy stored in the magnetic field." Hot Jupiters orbit very close to their parent stars and so the planet's magnetic field can twist and stretch the star's magnetic field. "When this happens," Cauley says, "energy can be released as the two fields reconnect, and this heats the star's atmosphere, increasing the calcium emission."
Probing Deep "This is the first estimate of the magnetic field strengths for these planets based on observations, so it's a huge jump in our knowledge," Shkolnik notes. "It's giving us a better understanding of what is happening inside these planets." She adds that it should also help researchers who model the internal dynamos of hot Jupiters. "We knew nothing about their magnetic fields - or any other exoplanet magnetic fields - and now we have estimates for four actual systems."
Surprisingly Powerful Instead, the observations support the idea that planetary magnetic fields depend on the amount of heat moving through the planet's interior. Because they are absorbing a lot of extra energy from their host stars, hot Jupiters should have larger magnetic fields than planets of similar mass and rotation rate. "We are pleased to see how well the magnitude of the field values corresponded to those predicted by the internal heat flux theory," says Shkolnik. "This may also help us work toward a clearer understanding of magnetic fields around temperate rocky planets." Their report was published July 22 in Nature Astronomy
Star formation may be halted by cold ionized hydrogen Dwingeloo, Netherlands (SPX) Jul 13, 2019 For the first time ionised hydrogen has been detected at the lowest frequency ever towards the centre of our galaxy. The findings originate from a cloud that is both very cold (around -230 degrees Celsius) and also ionised, something that has never been detected before. This discovery may help to explain why stars don't form as quickly as they theoretically could. Dr. Raymond Oonk (ASTRON/Leiden Observatory/SURFsara) led this study which is published in MNRAS. He said: "The possible existence of c ... read more
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