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Space instrument adds big piece to the solar corona puzzle

One of the mechanisms that pumps energy into the corona is a complex process known as magnetic reconnection.
By Harvard-Smithsonian Center for Astrophysics, Cambridge, Massachusetts Published: January 23, 2013
Solar-corona
This is one of the highest-resolution images ever taken of the solar corona, or outer atmosphere. It was captured by NASA's High Resolution Coronal Imager (Hi-C) in the ultraviolet wavelength of 19.3 nanometers. Hi-C showed that the Sun is dynamic, with magnetic fields constantly warping, twisting, and colliding in bursts of energy. Added together, those energy bursts can boost the temperature of the corona to 7 million degrees Fahrenheit when the Sun is particularly active. // Credit: NASA
The Sun’s visible surface, or photosphere, is 10,000° Fahrenheit (5500° Celsius). As you move outward from it, you pass through a tenuous layer of hot ionized gas or plasma called the corona. The corona is familiar to anyone who has seen a total solar eclipse, since it glimmers ghostly white around the hidden Sun.

But how can the solar atmosphere get hotter, rather than colder, the farther you go from the Sun’s surface? This mystery has puzzled solar astronomers for decades. A suborbital rocket mission that launched in July 2012 has just provided a major piece of the puzzle.

The High-resolution Coronal Imager (Hi-C) revealed one of the mechanisms that pumps energy into the corona, heating it to temperatures up to 7 million degrees F (3.9 million degrees C). The secret is a complex process known as magnetic reconnection.

“This is the first time we’ve had images at high enough resolution to directly observe magnetic reconnection,” said Leon Golub from the Harvard-Smithsonian Center for Astrophysics in Cambridge, Massachusetts. “We can see details in the corona five times finer than any other instrument.”

“Our team developed an exceptional instrument capable of revolutionary image resolution of the solar atmosphere,” said Jonathan Cirtain from the Marshall Space Flight Center in Huntsville, Alabama. “Due to the level of activity, we were able to clearly focus on an active sunspot, thereby obtaining some remarkable images.”

Magnetic braids and loops
The Sun’s activity, including solar flares and plasma eruptions, is powered by magnetic fields. Most people are familiar with the simple bar magnet and how you can sprinkle iron filings around one to see its field looping from one end to the other. The Sun is much more complicated.

The Sun’s surface is like a collection of thousand-mile-long magnets scattered around after bubbling up from inside the Sun. Magnetic fields poke out of one spot and loop around to another spot. Plasma flows along those fields, outlining them with glowing threads.

The images from Hi-C show interweaved magnetic fields that were braided just like hair. When those braids relax and straighten, they release energy. Hi-C witnessed one such event during its flight. It also detected an area where magnetic field lines crossed in an X and then straightened out as the fields reconnected. Minutes later, that spot erupted with a mini solar flare.

Hi-C showed that the Sun is dynamic, with magnetic fields constantly warping, twisting, and colliding in bursts of energy. Added together, those energy bursts can boost the temperature of the corona to 7 million degrees F when the Sun is particularly active.

Selecting the target
The telescope aboard Hi-C provided a resolution of 0.2 arcsecond — about the size of a dime seen from 10 miles (16 kilometers) away. That allowed astronomers to tease out details just 100 miles (160km) in size. For comparison, the Sun is 865,000 miles (1.39 million km) in diameter.

Hi-C photographed the Sun in ultraviolet light at a wavelength of 19.3 nanometers — 25 times shorter than wavelengths of visible light. That wavelength is blocked by Earth’s atmosphere, so to observe it astronomers had to get above the atmosphere. The rocket’s suborbital flight allowed Hi-C to collect data for just over five minutes before returning to Earth.

Hi-C could only view a portion of the Sun, so the team had to point it carefully. And since the Sun changes hourly, they had to select their target at the last minute — the day of the launch. They chose a region that promised to be particularly active.

“We looked at one of the largest and most complicated active regions I’ve ever seen on the Sun,” said Golub. “We hoped that we would see something really new, and we weren’t disappointed.”

Next steps
Golub said scientists continue to analyze data from Hi-C for more insights. Researchers are hunting areas where other energy release processes were occurring.

In the future, the scientists hope to launch a satellite that could observe the Sun continuously at the same level of sharp detail.

“We learned so much in just five minutes,” said Golub. “Imagine what we could learn by watching the Sun 24/7 with this telescope.”

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5 stars
JOHN KUHNS from ILLINOIS said:
Magnetic Plasma Propulsion Drive learn from our star to take us to others. Our never ending quest for answers. Astronomy magazine keeps it understandable for simple minds. Love it.
PRIYAKAMAL SENEVIRATHNA from SRI LANKA said:
Send me the magazine free...Please.....
5 stars
MITCH MANOSKI from MINNESOTA said:
So then if the temperature increases as braids straighten does that mean that energy was 'stored' in these magnetic curls, twists and plaits? If so, how so?
5 stars
MR RON KAUFMAN from MISSOURI said:
NASA & Astronomy magazine do great things and provide people like me with wonderful knowledge.
5 stars
BRIAN BORTZ from PENNSYLVANIA said:
Absolutely fascinating, and who knows, maybe a window into advanced propulsion systems in the not-too-distant future. Can't help but wonder, though...how does one measure 7 million degrees fahrenheit?
4 stars
JORGE CABRERA SR from ARGENTINA said:
Very interesant
4 stars
ROBERT A MORSTADT from UTAH said:
I am wondering why a suborbital telescope mission is being used for this study? Is a satellite too expensive? There was an article a few years ago in Scientific American on this subject. It would be nice to see specifics on the magnetic connection. How is the energy specifically put into the plasma? Is it resistive heating by electrical currents generated by the changing magnetic flux or light emitted and absorbed, etc. ?
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