mardi 18 août 2020

Japanese Cargo Craft Completes Station Mission













JAXA - H-II Transfer Cargo Vehicle 9 (HTV-9) patch.

August 18, 2020

Eleven years after the launch of the first H-II Transfer cargo vehicle (HTV) to the International Space Station, the Japan Aerospace Exploration Agency’s (JAXA’s) HTV-9 departed the orbital laboratory today at 1:36 p.m. EDT.


Image above: Japan’s HTV-9 resupply ship is on its own after being released from the Canadarm2 robotic arm completing a three-month cargo mission at the station. Image Credit: NASA TV.

Earlier today, flight controllers operating from NASA’s Mission Control Center at the agency’s Johnson Space Center in Houston used the space station’s Canadarm2 robotic arm to detach the cargo spacecraft from the station’s Harmony module, then moved the spacecraft into its release position. Expedition 63 Commander Chris Cassidy of NASA used the Canadarm2 robotic arm to release the spacecraft from the station at 1:35 p.m., ending its three-month stay.

HTV-9 departure

This was the final station departure of JAXA’s first-generation Kounotori, or “white stork,” cargo craft, nine of which have delivered more than 40 tons of supplies to space station crews.  JAXA is developing a new fleet of HTV cargo craft, the HTV-X, which is targeted for its first launch in 2022.

The spacecraft launched from the Tanegashima Space Center in Japan on May 20, arriving May 25 to deliver about four tons of supplies and experiments to the orbital complex, including new lithium-ion batteries that were used to upgrade the station’s power systems. The new-technology batteries were installed through a series of spacewalks along the far port truss “backbone” of the station.


Image above: In this image, the versatile Canadarm2 robotic arm is poised to grapple and remove the HTV-9 resupply craft from the Harmony module. Station Commander and NASA astronaut Chris Cassidy will command the Canadarm2 to release the HTV-9. The HTV-9 arrived at the station on May 25, 2020, delivering four tons of new science experiments, station hardware, crew supplies and fuel. Image Credit: NASA.

HTV-9 will be commanded by JAXA flight controllers at its HTV control center in Tsukuba, Japan, to move away from the station and, on Aug. 20, to fire its deorbit engine in a burn that will send it back into Earth’s atmosphere. Loaded with trash from the space station, the spacecraft will burn up harmlessly over the Pacific Ocean.

For nearly 20 years, astronauts have continuously lived and work on the space station, testing technologies, performing science and developing the skills needed to explore farther from Earth. As a global endeavor, 240 people from 19 countries have visited the unique microgravity laboratory that has hosted more than 3,000 research and educational investigations from researchers in 108 countries and areas.

Related links:

Expedition 63: https://www.nasa.gov/mission_pages/station/expeditions/expedition63/index.html

Canadarm2 robotic arm: https://www.nasa.gov/mission_pages/station/structure/elements/mobile-servicing-system.html

Space Station Research and Technology: https://www.nasa.gov/mission_pages/station/research/overview.html

International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html

Images (mentioned), Video, Text, Credits: NASA/Mark Garcia/NASA TV/SciNews.

Best regards, Orbiter.ch

Hubble Catches a Ring of Stellar Wildfire











NASA - Hubble Space Telescope patch.

Aug. 18, 2020


NGC 1614, captured here by the NASA/ESA Hubble Space Telescope, is an eccentrically shaped galaxy ablaze with activity. The galaxy resides about 200 million light-years from Earth and is nestled in the southern constellation of Eridanus (the River).

NGC 1614 is the result of an active galactic merger, which creates its peculiar appearance, including a tidal tail. The cosmic collision also drives a turbulent flow of interstellar gas from the smaller of the two galaxies involved into the nucleus of the larger one, resulting in a burst of star formation that started in the core and has slowly spread outward through the galaxy.

Owing to its turbulent past and its current appearance, astronomers classify NGC 1614 as a peculiar galaxy, a starburst galaxy, and a luminous infrared galaxy. Luminous infrared galaxies are among the most luminous objects in the local universe — and NGC 1614 is, in fact, the second most luminous galaxy within 250 million light-years.

Hubble Space Telescope (HST)

For more information about Hubble, visit:

http://hubblesite.org/

http://www.nasa.gov/hubble

http://www.spacetelescope.org/

Text Credits: ESA (European Space Agency)/NASA/Rob Garner/Image, Animation Credits: ESA/Hubble & NASA, A. Adamo.

Greetings, Orbiter.ch

Citizen Scientists Discover Dozens of New Cosmic Neighbors in NASA Data












NASA logo.

Aug. 18, 2020

We’ve never met some of the Sun’s closest neighbors until now. In a new study, astronomers report the discovery of 95 objects known as brown dwarfs, many within a few dozen light-years of the Sun. They’re well outside the solar system, so don’t experience heat from the Sun, but still inhabit a region astronomers consider our cosmic neighborhood. This collection represents some of the coldest known examples of these objects, which are between the sizes of planets and stars.


Image above: In this artist’s rendering, the small white orb represents the white dwarf (a remnant of a long-dead Sun-like star), while the purple foreground object is the newly discovered brown dwarf companion, confirmed by NASA’s Spitzer Space Telescope. This faint brown dwarf was previously overlooked until being spotted by citizen scientists working with Backyard Worlds: Planet 9, a NASA-funded citizen science project. Image Credits: NOIRLab/NSF/AURA/P. Marenfeld/Acknowledgement: William Pendrill.

Members of the public helped make these discoveries through Backyard Worlds: Planet 9, a NASA-funded citizen science project that is a collaboration between volunteers and professional scientists. Backyard Worlds incorporates data from NASA’s Near-Earth Object Wide-Field Infrared Survey Explorer (NEOWISE) satellite along with all-sky observations collected between 2010 and 2011 under its previous moniker, WISE. Data from NASA’s retired Spitzer Space Telescope and the facilities of the National Science Foundation’s NOIRLab were also instrumental in the analysis.

“​Vast modern datasets can unlock landmark discoveries, and it’s exciting that these could be spotted first by citizen scientists​,” said Aaron Meisner, assistant scientist at NSF’s NOIRLab and the lead author of the study describing the brown dwarfs. “​These Backyard Worlds discoveries show that members of the public can play an important role in reshaping our scientific understanding of our solar neighborhood.​”

Why these brown dwarfs are important

Brown dwarfs are not massive enough to power themselves like stars but are still many times heavier than planets. Despite their name, brown dwarfs would actually appear magenta or orange-red to the human eye if seen close up. While brown dwarfs can be extremely hot, even thousands of degrees Fahrenheit, many of the newly discovered ones are colder than the boiling point of water. Some even approach the temperature of Earth and are cool enough to harbor water clouds.

Brown dwarfs with low temperatures are also small in diameter and therefore faint in visible light. Still, they give off heat in the form of infrared light, which is invisible to the human eye yet detectable by telescopes such as NEOWISE and Spitzer. For cold brown dwarfs like those in this study, the infrared signal is also faint, so they are easier to find the closer they are to our solar system.

NEOWISE. Image Credit: NASA

Discovering and characterizing astronomical objects near the Sun is fundamental to our understanding of our place in, and the history of, the universe. With their relatively cold temperatures, these newly discovered brown dwarfs represent a long sought missing link within the brown dwarf population.

In 2014, scientists discovered the coldest-known brown dwarf, called WISE 0855, using data from NASA’s WISE mission in infrared light. WISE 0855 is about minus 10 degrees Fahrenheit, or minus 23 degrees Celsius. No other brown dwarf came close to this object’s low temperature. Some researchers wondered if 0855 was actually a rogue exoplanet – a planet that originated in a star system but was kicked out of its orbit. This new batch of brown dwarfs, together with others recently discovered using NEOWISE and Spitzer, puts 0855 in context.

Spitzer Space Telescope. Image Credit: NASA

“Our new discoveries help connect the dots between 0855 and the other known brown dwarfs,” said astrophysicist Marc Kuchner, the principal investigator of Backyard Worlds and the Citizen Science Officer for NASA's Science Mission Directorate. Kuchner is also an astrophysicist at NASA's Goddard Space Flight Center in Greenbelt, Maryland.

Since the same physical processes may form both planets and brown dwarfs, the new findings offer prospects for research into worlds beyond our solar system.

“This paper is evidence that the solar neighborhood is still uncharted territory and citizen scientists are excellent astronomical cartographers,” said coauthor Jackie Faherty of the American Museum of Natural History in New York. “Mapping the coldest brown dwarfs down to the lowest masses gives us key insights into the low-mass star-formation process while providing a target list for detailed studies of the atmospheres of Jupiter analogs.”

How professional scientists and citizen scientists collaborated

To help find our Sun’s coldest, nearest neighbors, the professional astronomers of the Backyard Worlds project turned to a worldwide network of more than 100,000 citizen scientists. These volunteers diligently inspect trillions of pixels of telescope images to identify the subtle movements of brown dwarfs. Despite the abilities of machine learning and supercomputers, there’s no substitute for the human eye when it comes to scouring telescope images for moving objects. For this new group of brown dwarfs, 20 citizen scientists across 10 different countries are listed as coauthors of the study.

“Being that this will be the first scientific paper that I'm a coauthor on, its publication will definitely be the highlight of working with Backyard Worlds so far,” said Les Hamlet, a citizen scientist in Springfield, Missouri, who has worked on Backyard Worlds since 2017. “Also, being connected in some way with the now-retired Spitzer Space Telescope through this paper is kind of special to me.”

Backyard Worlds volunteers primarily examine sky maps produced from observations by WISE and NEOWISE. Participants then scour additional archival data sets, like those from the ​Nicholas U. Mayall 4-meter Telescope at Kitt Peak National Observatory and ​Víctor M. Blanco 4-meter Telescope​ at Cerro Tololo Inter-American Observatory, programs of NSF’s NOIRLab. Spitzer, which NASA retired in January 2020, provided the crucial brown dwarf temperature estimates. The results will be published in ​The​ ​Astrophysical Journal.

Backyard Worlds volunteers have already discovered more than 1,500 cold worlds near the Sun. The new discovery of 95 brown dwarfs is the largest published sample of these objects ever discovered through a citizen science project. 

Alongside the dedicated efforts of the Backyard Worlds volunteers, NOIRLab’s Astro Data Lab science platform was instrumental in this research.

The approach of the Backyard Worlds project – searching for rare objects in large datasets – is also one of the goals for the Vera C. Rubin Observatory, an NSF/Department of Energy facility currently under construction on Cerro Pachón in Chile’s Atacama Desert. The Rubin Observatory will image the entire southern sky every three nights over 10 years, providing a vast amount of data which will enable new ways of doing astrophysical research.

The new Backyard Worlds discoveries also underscore Spitzer’s pioneering legacy of revealing the Sun’s coolest neighbors. NASA’s forthcoming James Webb Space Telescope will also be a powerful tool for examining brown dwarfs for more insights into these mysterious objects and what they can reveal about the formation of planets and their atmospheres.

About Backyard Worlds: Planet 9

The ongoing Backyard Worlds: Planet 9 project, funded by NASA, lets anyone join the quest to find more mysterious objects in spacecraft data. Check it out at http://backyardworlds.org/.

NASA-funded citizen science project: https://science.nasa.gov/citizenscience

NEOWISE: https://www.nasa.gov/neowise

Spitzer Space Telescope: http://www.nasa.gov/mission_pages/spitzer/main/index.html

National Science Foundation NOIRLab: https://nationalastro.org/

Images (mentioned), Text, Credits: NASA/Tricia Talbert/Elizabeth Landau/National Science Foundation’s NOIRLab/Amanda Kocz.

Best regards, Orbiter.ch

SpaceX Starlink 10 launch













SpaceX - Falcon 9 / Starlink Mission patch.

August 18, 2020

SpaceX Starlink 10 launch

A SpaceX Falcon 9 rocket launched 58 Starlink satellites (Starlink-11) and three of Planet’s SkySats from Space Launch Complex 40 (SLC-40) at Cape Canaveral Air Force Station in Florida, on 18 August 2020, at 14:31 UTC (10:31 EDT).

SpaceX Starlink 10 launch & Falcon 9 first stage landing, 18 August 2020

Following stage separation, Falcon 9’s first stage (Block B1049) landed on the “Of Course I Still Love You” drone-ship, stationed in the Atlantic Ocean.

 Falcon 9 first stage landing

Falcon 9’s first stage previously supported the Telstar 18 VANTAGE mission in September 2018, the Iridium-8 mission in January 2019, and three separate Starlink missions in May 2019, January 2020, and June 2020.

A SpaceX Falcon 9 rocket launches 58 satellites for SpaceX’s Starlink broadband network, a mission designated Starlink 10. Three SkySat Earth-imaging satellites for Planet will launch as rideshare payloads on this mission. Delayed from late July.

Related articles & link:

Starlink satellites: a helpless Switzerland
https://orbiterchspacenews.blogspot.com/2020/08/starlink-satellites-helpless-switzerland.html

SpaceX Starlink 9 launched in to orbit
https://orbiterchspacenews.blogspot.com/2020/08/spacex-starlink-9-launched-in-to-orbit.html

SpaceX Starlink 7 launch success
https://orbiterchspacenews.blogspot.com/2020/06/spacex-starlink-7-launch-success.html

SpaceX - Starlink 6 launched into orbit
https://orbiterchspacenews.blogspot.com/2020/04/spacex-starlink-6-launched-into-orbit.html

SpaceX Starlink 5 launched
https://orbiterchspacenews.blogspot.com/2020/03/spacex-starlink-5-launched.html

SpaceX Starlink 4 launched
https://orbiterchspacenews.blogspot.com/2020/02/spacex-starlink-launched.html

SpaceX - Starlink 3 launch success
https://orbiterchspacenews.blogspot.com/2020/01/spacex-starlink-3-launch-success.html

SpaceX - SpaceX Starlink 2 launch Success
https://orbiterchspacenews.blogspot.com/2020/01/spacex-spacex-starlink-2-launch-success.html

Panic wind among astronomers
https://orbiterchspacenews.blogspot.com/2019/05/panic-wind-among-astronomers.html

SpaceX Starlink launched
https://orbiterchspacenews.blogspot.com/2019/11/spacex-starlink-launched.html

SpaceX: https://www.spacex.com/

Images, Video, Text, Credits: Credits: SpaceX/SciNews/Orbiter.ch Aerospace/Roland Berga.

Greetings, Orbiter.ch

Starlink satellites: a helpless Switzerland













Swiss Confederation / Swiss Government seal.

August 18, 2020

Responding to the concerns of National Councilor Fabien Fivaz (Verts / NE) about Starlink satellites, the Federal Council relies on the 1967 Space Treaty. A bit short for Neuchâtel.


Image above: For Fabien Fivaz, the use of space for commercial purposes is a game-changer. He believes that Switzerland should act internationally.

For a year now, Starlink's "mega constellations" of satellites have been visible to the naked eye when they glow in the sun. Their first appearances in the Swiss skies aroused as much disbelief, curiosity as fear among the population. The subject came back to Parliament, where ecologist Fabien Fivaz (Verts / NE) questioned the Federal Council this summer on Switzerland's position vis-à-vis the invasion of its skies by these luminous trails.

Today, the project of the SpaceX company, founded by Elon Musk, is a little better known to the general public. Starlink wants to create a global communications system using thousands of low orbit satellites to make the internet accessible all over the planet. In the past year, 10 launches of around 60 satellites have been carried out. The latest dated August 7, 2020. In a first phase, there should be 1600 deployed about 1250 kilometers from the earth. Over the years, the goal is to place 40,000 satellites that will rotate continuously, some of them as low as 340 kilometers above sea level.

Can Switzerland intervene?

National Councilor Fabien Fivaz (Green / NE) put a series of questions to the Federal Council. Can Switzerland intervene to protect the space above the country? Can Switzerland consider making an international commitment to protect the night sky? What effects of waves on inhabitants? What are the risks for the Swiss population? Does Switzerland already have access to the details of the technology used?

For the Federal Council, Switzerland has no control over this project. It signed the UN Space Treaty in 1967 along with 109 other countries. Its fundamental principle is "the freedom to explore and use space by all States". Thus "outer space above a state is not considered sovereign space." In other words, "an object placed in low orbit around the Earth is subject to international space law, and therefore the satellites making up the mega constellations escape the principle of state sovereignty enshrined in air law". They would therefore be like stars.

Switzerland as an observer

Regarding SpaceX, the Federal Council notes that it is an American company. It is therefore in the United States that the authorizations were issued for the Starlink project by the Federal Communications Commission (FCC). "This is a national procedure to which other states, including Switzerland, are not parties." In addition, for the moment in any case, the Starlink project does not cause interference with Swiss radio applications and does not provide radio services on Swiss territory. "Switzerland is therefore not affected by this project from the point of view of the use of the radio spectrum and is not informed of its technological specificities".

Starlink satellites in the Swiss night sky

In short, the Federal Council confirms what was assumed: in space, Switzerland does not have much to say. At the global level, the Federal Council says "to contribute to the efforts in favor of a safe and viable use of space in the long term within the Committee for the Peaceful Uses of Outer Space (COPUOS)" and it " promotes innovative space activities, which include not only developments related to constellations, but also the sustainable use of space ”.

"Space must not become a garbage can"

Those are many words for Fabien Fivaz, who finds these answers unsatisfactory: “We start from the principle that since 1967 we have been doing what we want in space, but these international agreements are outdated and must be discussed again. Also, if Switzerland had a project like Starlink, I don't think the United States would let its satellites fly over their country in low orbit. They know how to protect their sovereignty ”.

The national ecological advisor believes that the deployment of satellites deserves Switzerland's international commitment: “For a long time it was expensive to launch satellites and their objectives were military or scientific. Today we are making a big leap in the commercial use of outer space. Amazon also wants to launch its network with Kuiper, the Chinese are doing it too. The Federal Council lacks responsiveness and even seems to have a certain fascination with these projects. Yet these projects represent an incredible waste of resources. The lifespan of a satellite is five years. When there are 40,000, one in five will be destroyed each year and more will have to be revived. Space must not become a garbage can. "

Related article:

Panic wind among astronomers
https://orbiterchspacenews.blogspot.com/2019/05/panic-wind-among-astronomers.html

Related links:

Swiss Confederation / Swiss Government Portal:
Treaty on Principles Governing the Activities of States in the Exploration and Use of Outer Space, including the Moon and Other Celestial Bodies of 1967 (in French, German, Italian):
https://www.admin.ch/opc/fr/classified-compilation/19670016/index.html

SpaceX: https://www.spacex.com/

Images, Text, Credits: ATS/DR/Keystone/Gaetan Bally/Orbiter.ch Aerospace/Roland Berga.

Greetings, Orbiter.ch

lundi 17 août 2020

International, Commercial Partners Gear Up for Cargo and Crew Missions













ISS - Expedition 63 Mission parch.

August 17, 2020

Canada’s robotic arm is poised to remove Japan’s ninth and final H-II Transfer Vehicle (HTV-9) from the International Space Station on Tuesday. Meanwhile, the U.S. and Russia are preparing for the launch of their respective crew ships to the orbiting lab in October.

Commander Chris Cassidy of NASA will be at the robotics workstation on Tuesday and direct the 57.7-foot-long Canadarm2 to release the HTV-9 from its grip at 1:35 p.m. EDT. Roscosmos Flight Engineer Ivan Vagner will back up Cassidy and monitor the release of the HTV-9 as it completes its 85-day cargo mission. NASA TV will cover the activities live starting at 1:15 p.m.


Image above: The Canadarm2 robotic arm is poised to grapple and remove Japan’s HTV-9 resupply ship from the Harmony module. Image Credit: NASA.

The HTV-9 will spend two more days orbiting Earth before a fiery, atmospheric demise over the South Pacific. JAXA (Japan Aerospace Exploration Agency) is developing an upgraded fleet of HTV-X space station suppliers, replacing the HTV series of spaceships, targeted for their first launch in 2022.

The Expedition 63 and 64 crews are due to trade places at the orbiting lab beginning in mid-October. The Soyuz MS-17 crew ship is slated to blast off from the Baikonur Cosmodrome in Kazakhstan on Oct. 14 and dock to the station’s Rassvet module. NASA astronaut Kate Rubins with Roscosmos cosmonauts Sergey Ryzhikov and Sergey Kud-Sverchkov will then begin a six-month space research mission.

International Space Station (ISS). Animation Credit: NASA

One week later on Oct. 21, Cassidy will wrap up his mission with crewmates Vagner and Russian Flight Engineer Anatoly Ivanishin. The trio will enter the Soyuz MS-16 crew ship, undock from the Poisk module and parachute to a landing in Kazakhstan ending a 195-day expedition in space.

NASA and SpaceX have announced the launch of the SpaceX Crew-1 mission to the station for no earlier than Oct. 23. Mike Hopkins of NASA will command the first operational flight of the Crew Dragon spacecraft piloted by first-time NASA astronaut Victor Glover. They will be joined by Mission Specialists Shannon Walker of NASA and Soichi Noguchi of JAXA, both previous station residents.

Related article:

NASA, SpaceX Targeting October for Next Astronaut Launch
https://orbiterchspacenews.blogspot.com/2020/08/nasa-spacex-targeting-october-for-next.html

NASA TV to Air Departure of Japanese Cargo Ship from Space Station
https://www.nasa.gov/press-release/nasa-tv-to-air-departure-of-japanese-cargo-ship-from-space-station

Related links:

Expedition 63: https://www.nasa.gov/mission_pages/station/expeditions/expedition63/index.html

Expedition 64: https://www.nasa.gov/mission_pages/station/expeditions/expedition64/index.html

H-II Transfer Vehicle (HTV-9): https://www.nasa.gov/feature/kounotori-htv-launches-arrivals-and-departures

Rassvet module: https://www.nasa.gov/mission_pages/station/structure/elements/rassvet

Poisk module: https://www.nasa.gov/mission_pages/station/structure/elements/poisk-mini-research-module-2

Space Station Research and Technology: https://www.nasa.gov/mission_pages/station/research/overview.html

International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html

NASA/Mark Garcia.

NASA Researchers Track Slowly Splitting 'Dent' in Earth’s Magnetic Field











ISS - Ionospheric Connection Explorer (ICON) logo.

Aug. 17, 2020

A small but evolving dent in Earth’s magnetic field can cause big headaches for satellites.

Earth’s magnetic field acts like a protective shield around the planet, repelling and trapping charged particles from the Sun. But over South America and the southern Atlantic Ocean, an unusually weak spot in the field – called the South Atlantic Anomaly, or SAA – allows these particles to dip closer to the surface than normal. Particle radiation in this region can knock out onboard computers and interfere with the data collection of satellites that pass through it – a key reason why NASA scientists want to track and study the anomaly.

The South Atlantic Anomaly is also of interest to NASA’s Earth scientists who monitor the changes in magnetic field strength there, both for how such changes affect Earth's atmosphere and as an indicator of what's happening to Earth's magnetic fields, deep inside the globe.

Currently, the SAA creates no visible impacts on daily life on the surface. However, recent observations and forecasts show that the region is expanding westward and continuing to weaken in intensity. It is also splitting – recent data shows the anomaly’s valley, or region of minimum field strength, has split into two lobes, creating additional challenges for satellite missions.

A host of NASA scientists in geomagnetic, geophysics, and heliophysics research groups observe and model the SAA, to monitor and predict future changes – and help prepare for future challenges to satellites and humans in space.

NASA Explores Earth's Magnetic 'Dent'

Video above: Earth’s magnetic field acts like a protective shield around the planet, repelling and trapping charged particles from the Sun. But over South America and the southern Atlantic Ocean, an unusually weak spot in the field – called the South Atlantic Anomaly, or SAA – allows these particles to dip closer to the surface than normal. Currently, the SAA creates no visible impacts on daily life on the surface. However, recent observations and forecasts show that the region is expanding westward and continuing to weaken in intensity. The South Atlantic Anomaly is also of interest to NASA’s Earth scientists who monitor the changes in magnetic strength there, both for how such changes affect Earth's atmosphere and as an indicator of what's happening to Earth's magnetic fields, deep inside the globe. Video Credits: NASA's Goddard Space Flight Center.

It’s what’s inside that counts

The South Atlantic Anomaly arises from two features of Earth’s core: The tilt of its magnetic axis, and the flow of molten metals within its outer core.

Earth is a bit like a bar magnet, with north and south poles that represent opposing magnetic polarities and invisible magnetic field lines encircling the planet between them. But unlike a bar magnet, the core magnetic field is not perfectly aligned through the globe, nor is it perfectly stable. That’s because the field originates from Earth’s outer core: molten, iron-rich and in vigorous motion 1800 miles below the surface. These churning metals act like a massive generator, called the geodynamo, creating electric currents that produce the magnetic field.

As the core motion changes over time, due to complex geodynamic conditions within the core and at the boundary with the solid mantle up above, the magnetic field fluctuates in space and time too. These dynamical processes in the core ripple outward to the magnetic field surrounding the planet, generating the SAA and other features in the near-Earth environment – including the tilt and drift of the magnetic poles, which are moving over time. These evolutions in the field, which happen on a similar time scale to the convection of metals in the outer core, provide scientists with new clues to help them unravel the core dynamics that drive the geodynamo.

“The magnetic field is actually a superposition of fields from many current sources,” said Terry Sabaka, a geophysicist at NASA’s Goddard Space Flight Center in Greenbelt, Maryland. Regions outside of the solid Earth also contribute to the observed magnetic field. However, he said, the bulk of the field comes from the core.

The forces in the core and the tilt of the magnetic axis together produce the anomaly, the area of weaker magnetism – allowing charged particles trapped in Earth’s magnetic field to dip closer to the surface.


Image above: When solar material streams strikes Earth’s magnetosphere, it can become trapped and held in two donut-shaped belts around the planet called the Van Allen Belts. The belts restrain the particles to travel along Earth’s magnetic field lines, continually bouncing back and forth from pole to pole. Image Credits: NASA Goddard/Tom Bridgman.

The Sun expels a constant outflow of particles and magnetic fields known as the solar wind and vast clouds of hot plasma and radiation called coronal mass ejections. When this solar material streams across space and strikes Earth’s magnetosphere, the space occupied by Earth’s magnetic field, it can become trapped and held in two donut-shaped belts around the planet called the Van Allen Belts. The belts restrain the particles to travel along Earth’s magnetic field lines, continually bouncing back and forth from pole to pole. The innermost belt begins about 400 miles from the surface of Earth, which keeps its particle radiation a healthy distance from Earth and its orbiting satellites.

However, when a particularly strong storm of particles from the Sun reaches Earth, the Van Allen belts can become highly energized and the magnetic field can be deformed, allowing the charged particles to penetrate the atmosphere.

“The observed SAA can be also interpreted as a consequence of weakening dominance of the dipole field in the region,” said Weijia Kuang, a geophysicist and mathematician in Goddard’s Geodesy and Geophysics Laboratory. “More specifically, a localized field with reversed polarity grows strongly in the SAA region, thus making the field intensity very weak, weaker than that of the surrounding regions.” 

A pothole in space

Although the South Atlantic Anomaly arises from processes inside Earth, it has effects that reach far beyond Earth’s surface. The region can be hazardous for low-Earth orbit satellites that travel through it. If a satellite is hit by a high-energy proton, it can short-circuit and cause an event called single event upset or SEU. This can cause the satellite’s function to glitch temporarily or can cause permanent damage if a key component is hit. In order to avoid losing instruments or an entire satellite, operators commonly shut down non-essential components as they pass through the SAA. Indeed, NASA's Ionospheric Connection Explorer regularly travels through the region and so the mission keeps constant tabs on the SAA's position.

The International Space Station, which is in low-Earth orbit, also passes through the SAA. It is well protected, and astronauts are safe from harm while inside. However, the ISS has other passengers affected by the higher radiation levels: Instruments like the Global Ecosystem Dynamics Investigation mission, or GEDI, collect data from various positions on the outside of the ISS. The SAA causes “blips” on GEDI’s detectors and resets the instrument’s power boards about once a month, said Bryan Blair, the mission’s deputy principal investigator and instrument scientist, and a lidar instrument scientist at Goddard.

“These events cause no harm to GEDI,” Blair said. “The detector blips are rare compared to the number of laser shots – about one blip in a million shots – and the reset line event causes a couple of hours of lost data, but it only happens every month or so.”


Image above: The Sun expels a constant outflow of particles and magnetic fields known as the solar wind and vast clouds of hot plasma and radiation called coronal mass ejections. This solar material streams across space and strikes Earth’s magnetosphere, the space occupied by Earth’s magnetic field, which acts like a protective shield around the planet. Image Credits: NASA Goddard/Bailee DesRocher.

In addition to measuring the SAA’s magnetic field strength, NASA scientists have also studied the particle radiation in the region with the Solar, Anomalous, and Magnetospheric Particle Explorer, or SAMPEX – the first of NASA’s Small Explorer missions, launched in 1992 and providing observations until 2012. One study, led by NASA heliophysicist Ashley Greeley as part of her doctoral thesis, used two decades of data from SAMPEX to show that the SAA is slowly but steadily drifting in a northwesterly direction. The results helped confirm models created from geomagnetic measurements and showed how the SAA’s location changes as the geomagnetic field evolves.

“These particles are intimately associated with the magnetic field, which guides their motions,” said Shri Kanekal, a researcher in the Heliospheric Physics Laboratory at NASA Goddard. “Therefore, any knowledge of particles gives you information on the geomagnetic field as well.”

Greeley’s results, published in the journal Space Weather, were also able to provide a clear picture of the type and amount of particle radiation satellites receive when passing through the SAA, which emphasized the need for continuing monitoring in the region.

The information Greeley and her collaborators garnered from SAMPEX’s in-situ measurements has also been useful for satellite design. Engineers for the Low-Earth Orbit, or LEO, satellite used the results to design systems that would prevent a latch-up event from causing failure or loss of the spacecraft.

Modeling a safer future for satellites

In order to understand how the SAA is changing and to prepare for future threats to satellites and instruments, Sabaka, Kuang and their colleagues use observations and physics to contribute to global models of Earth’s magnetic field.

The team assesses the current state of the magnetic field using data from the European Space Agency’s Swarm constellation, previous missions from agencies around the world, and ground measurements. Sabaka’s team teases apart the observational data to separate out its source before passing it on to Kuang’s team. They combine the sorted data from Sabaka’s team with their core dynamics model to forecast geomagnetic secular variation (rapid changes in the magnetic field) into the future.


Image above: This stereoscopic visualization shows a simple model of the Earth's magnetic field. The magnetic field partially shields the Earth from harmful charged particles emanating from the Sun. Image Credits: NASA's Goddard Space Flight Center.

The geodynamo models are unique in their ability to use core physics to create near-future forecasts, said Andrew Tangborn, a mathematician in Goddard’s Planetary Geodynamics Laboratory.

“This is similar to how weather forecasts are produced, but we are working with much longer time scales,” he said. “This is the fundamental difference between what we do at Goddard and most other research groups modeling changes in Earth’s magnetic field.”

One such application that Sabaka and Kuang have contributed to is the International Geomagnetic Reference Field, or IGRF. Used for a variety of research from the core to the boundaries of the atmosphere, the IGRF is a collection of candidate models made by worldwide research teams that describe Earth’s magnetic field and track how it changes in time.

“Even though the SAA is slow-moving, it is going through some change in morphology, so it’s also important that we keep observing it by having continued missions,” Sabaka said. “Because that’s what helps us make models and predictions.”

The changing SAA provides researchers new opportunities to understand Earth’s core, and how its dynamics influence other aspects of the Earth system, said Kuang. By tracking this slowly evolving “dent” inNASA/ the magnetic field, researchers can better understand the way our planet is changing and help prepare for a safer future for satellites.

Related links:

ICON (Ionospheric Connection Explorer): http://www.nasa.gov/icon

International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html

Images (mentioned), Video (mentioned), Text, Credits: NASA/Jessica Merzdorf/GSFC/By Mara Johnson-Groh and Jessica Merzdorf.

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