jeudi 25 mars 2021

Frosty Sand Dunes of Mars

 







NASA - Mars Reconnaissance Orbiter (MRO) logo.


Mar 25, 2021


A field of sand dunes occupies this frosty 5-kilometer diameter crater in the high-latitudes of the northern plains of Mars. Some dunes have separated from the main field and appear to be climbing up the crater slope along a gully-like form.

The surface of the main dune field is characterized by a series of dark-toned polygonal patterns. These may be the result of seasonal frost processes. Several of the steeper dune slopes, pointing in the downwind direction, host narrow furrows suggesting the start of gully formation.

The crater floor contains a variety of textures, including lobate and striped patterns that indicate seasonal thaw caused by sublimating ice. Broad downslope movement of materials on the crater slopes opposite the dune field superficially resemble gullies, except that they are generally not defined by distinctive alcoves, incised channels, or sediment aprons. These are the hallmarks of gullies elsewhere on the planet.

Mars Reconnaissance Orbiter (MRO)

Mars Reconnaissance Orbiter (MRO): https://www.nasa.gov/mission_pages/MRO/main/index.html

Image, Text, Credits: NASA/Yvette Smith/JPL-Caltech/University of Arizona.

Best regards, Orbiter.ch

High five! Arianespace orbits 36 satellites on its fifth launch for OneWeb

 











Arianespace- Soyuz Flight ST30 / OneWeb Mission poster.


March 25, 2021

Arianespace kicked off its 2021 launch activity with another deployment of 36 constellation satellites at the service of OneWeb, continuing support for this operator’s ultimate ambition of bringing space down to Earth for the benefit of all.


Image above: Soyuz begins its ascent from Russia’s Vostochny Cosmodrome on this morning’s mission to deploy 36 more satellites for OneWeb’s connectivity constellation.

The latest cluster of spacecraft – produced by the OneWeb Satellites joint venture of OneWeb and Airbus – was released into a circular low-Earth orbit during a flight lasting 3 hours and 51 minutes from liftoff at Russia’s Vostochny Cosmodrome to final payload separation. Total lift performance was estimated at 5,803 kg.

OneWeb 5 launch (On-board camera view)

Soyuz rises to the occasion

After an initial powered phase of Soyuz’ three lower stages, the mission included multiple powered phases of the re-ignitable Fregat upper stage to place its 36 passengers at their targeted deployment points. Designated Flight ST30, this was Arianespace’s 30th “ST” launch (which is the launcher designation for missions performed with the Starsem affiliate) and the second originating from Vostochny Cosmodrome (with liftoff coming at 11:47 a.m. local time).


Image above: This dual-camera view shows Soyuz’ first stage boosters separating from both sides of the launcher during climb out from Vostochny Cosmodrome on its mission to deploy 36 One Web satellites.

The Soyuz 2-1b launcher version utilized for Flight ST30 is the result of a joint European/Russian upgrade program, adding a more powerful third stage engine that significantly increases the launcher’s overall performance.


Image above: This cut-away image shows the 36 OneWeb satellites on their dispenser system, which is mated to Soyuz’ Fregat upper stage.

To accommodate up to 36 OneWeb satellites on a single launch, Arianespace/Starsem utilizes a payload dispenser system that was developed and produced by prime contractor RUAG Space AB of Linköping, Sweden.

Arianespace’s fifth mission for OneWeb since 2019

Today’s mission success marked Arianespace’s fifth launch at the service of OneWeb, with a total of 146 satellites now delivered to orbit. The initial six spacecraft were lofted by Arianespace from French Guiana in February 2019.

OneWeb satellite

This was followed by three missions in 2020: February and March flights conducted by Arianespace and Starsem from Baikonur Cosmodrome carrying a total of 68 satellites; while a December mission delivered 36 more on the first commercial flight from Vostochny Cosmodrome.

OneWeb constellation

OneWeb’s total constellation of 650 satellites will deliver high-speed, low-latency enterprise-grade connectivity services to a wide range of customer sectors including enterprise, government, maritime and aviation customers. Once deployed, it will enable user terminals are capable of offering 3G, LTE, 5G and Wi-Fi coverage.

Soyuz and the Arianespace launcher family

Soyuz is the medium-lift member of Arianespace’s launcher family, which also comprises the heavy-lift Ariane 5 and lightweight Vega. Including Flight ST30, the company has now performed a combined total of 325 missions using these three vehicles.

Up next in Arianespace’s launch calendar is Vega Flight VV18 from the Spaceport in French Guiana.

Arianespace: https://www.arianespace.com/

ROSCOSMOS Press Release (in Russian):

На Восточном состоялся пуск ракеты-носителя «Союз-2.1б»
https://www.roscosmos.ru/30466/

Images, Video, Text, Credits: Arianespace/ROSCOSMOS/SciNews.

Greetings, Orbiter.ch

mercredi 24 mars 2021

Human Research on Station Informing Health in Space and on Earth

 






ISS - Expedition 64 Mission patch.


March 24, 2021

Human research is key aboard the International Space Station as NASA and its international partners learn to keep crews healthy during long-term exploration missions. The station hosts a variety of advanced space science hardware enabling these unique experiments and more in the weightless environment of the orbiting lab.

Today aboard the orbiting lab, Expedition 64 Flight Engineers Kate Rubins and Victor Glover collected their blood, urine, and saliva samples, and stowed them for later analysis. Rubins also analyzed white blood cells for the HemoCue study that is demonstrating how to quickly monitor and diagnose crew health conditions, including viral infections and radiation exposure, aboard spacecraft.


Image above: Expedition 64 Flight Engineer Victor Glover of NASA poses for a portrait inside the International Space Station’s Kibo laboratory module. Image Credit: NASA.

NASA Flight Engineer Michael Hopkins spent Wednesday installing and powering up the new KEyence Research Microscope Testbed (KERMIT) microscope. KERMIT will allow astronauts and scientists to view and analyze biological and physical samples both on the station and remotely from the ground. JAXA (Japan Aerospace Exploration Agency) astronaut Soichi Noguchi worked on the Confocal Space Microscope, which provides fluorescence images of biological samples, during the morning.

The station’s computer network is in the process of being upgraded as Flight Engineer Shannon Walker of NASA spent the day routing new ethernet cables inside the Unity module. Glover assisted station Commander Sergey Ryzhikov and Roscosmos Flight Engineer Sergey Kud-Sverchkov setting up a cinematic virtual reality camera to film the cosmonauts working in the station’s Russian segment.

International Space Station (ISS). Animation Credit: NASA

Ryzhikov was back on plasma physics research Wednesday, downloading data and swapping the gas supply from neon to argon for the study, observing plasma dust crystals in microgravity. Kud-Sverchkov serviced the ventilation system replacing air ducts inside the Rassvet module.

Related links:

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

HemoCue: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=8325

KEyence Research Microscope Testbed (KERMIT): https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=8120

Confocal Space Microscope: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Facility.html?#id=7428

Unity module: https://www.nasa.gov/mission_pages/station/structure/elements/unity

Cinematic virtual reality camera: https://www.nasa.gov/mission_pages/station/research/experiments/explorer/Investigation.html?#id=7877

Plasma dust crystals: https://www.energia.ru/en/iss/researches/process/02.html

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

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

Image (mentioned), Animation (mentioned), Text, Credits: NASA/Mark Garcia.

Best regards, Orbiter.ch

SpaceX Starlink 23 launch

 







SpaceX - Falcon 9 / Starlink Mission patch.


March 24, 2021

SpaceX Starlink 23 launch

A SpaceX Falcon 9 rocket launched 60 Starlink satellites (Starlink-23) from Space Launch Complex 40 (SLC-40) at Cape Canaveral Space Force Station, Florida, on 24 March 2021, at 08:28 UTC (04:28 EDT).

SpaceX Starlink 23 launch & Falcon 9 first stage landing, 24 March 2021

Following stage separation, Falcon 9’s first stage landed on the “Of Course I Still Love You” droneship, stationed in the Atlantic Ocean. Falcon 9’s first stage (B1060) previously supported five missions: GPS-III Space Vehicle 03, Turksat 5A and three Starlink missions. 

Related links:

Starlink: https://www.starlink.com/

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

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

Greetings, Orbiter.ch

Data Turned Into Sounds of Stars, Galaxies, Black Holes

 







NASA - Chandra X-ray Observatory logo.


March 25, 2021


This latest installment from our data sonification series features three diverse cosmic scenes. In each, astronomical data collected by NASA's Chandra X-ray Observatory and other telescopes are converted into sounds. Data sonification maps the data from these space-based telescopes into a form that users can hear instead of only see, embodying the data in a new form without changing the original content.

Chandra Deep Field

Chandra Deep Field South

Video Credits: NASA/CXC/SAO/K.Arcand, SYSTEM Sounds (M. Russo, A. Santaguida).

This is the deepest image ever taken in X-rays, representing over seven million seconds of Chandra observing time. For that reason, and because the observed field is in the southern hemisphere, astronomers call this region the "Chandra Deep Field South". At first glance, this image may appear to be a view of stars. Rather, almost all these different colored dots are black holes or galaxies. Most of the former are supermassive black holes that reside at the centers of galaxies. In this data sonification, the colors dictate the tones as the bar moves from the bottom of the image to the top. More specifically, colors toward the red end of the rainbow are heard as low tones while colors towards purple are assigned to higher ones. Light that appears bright white in the image is heard as white noise. The wide range of musical frequencies represents the full range of X-ray frequencies collected by Chandra of this region. In the visual color image, this large frequency range in X-rays had to be compressed to be shown as red, green, and blue for low, medium, and high-energy X-rays. Played as sound, however, the full range of data can be experienced. As the piece scans upward, the stereo position of the sounds can help distinguish the position of the sources from left to right.

Cat's Eye Nebula

Cat's Eye Nebula (NGC 6543) Sonification

Video Credits: NASA/CXC/SAO/K.Arcand, SYSTEM Sounds (M. Russo, A. Santaguida).

When a star like the Sun begins to run out of helium to burn, it will blow off huge clouds of gas and dust. These outbursts can form spectacular structures such as the one seen in the Cat's Eye nebula. This image of the Cat's Eye contains both X-rays from Chandra around the center and visible light data from the Hubble Space Telescope, which show the series of bubbles expelled by the star over time. To listen to these data, there is a radar-like scan that moves clockwise emanating from the center point to produce pitch. Light that is further from the center is heard as higher pitches while brighter light is louder. The X-rays are represented by a harsher sound, while the visible light data sound smoother. The circular rings create a constant hum, interrupted by a few sounds from spokes in the data. The rising and falling pitches that can be heard are due to the radar scan passing across the shells and jets in the nebula.

Messier 51

M51 (Whirlpool Galaxy) Sonification

Video Credits: NASA/CXC/SAO/K.Arcand, SYSTEM Sounds (M. Russo, A. Santaguida).

Messier 51 (M51) is perhaps better known by its nickname of the Whirlpool Galaxy because its face-on orientation to Earth reveals its wound-up spiral arms. This gives telescopes here a view of another spiral galaxy similar to our Milky Way, whose structure we cannot observe directly from our position within it. As with the Cat's Eye, the sonification begins at the top and moves radially around the image in a clockwise direction. The radius is mapped to notes of a melodic minor scale. Each wavelength of light in the image obtained from NASA telescopes in space (infrared, optical, ultraviolet, and X-ray) is assigned to a different frequency range. The sequence begins with sounds from all four types of light, but then separately moves through the data from Spitzer, Hubble, GALEX, and Chandra. At wavelengths in which the spiral arms are prominent, the pitches creep upwards as the spiral reaches farther from the core. A constant low hum associated with the bright core can be heard, punctuated by short sounds from compact sources of light within the galaxy.

Chandra X-ray Observatory

These sonifications of the Deep Field, Cat's Eye and Whirlpool galaxy were led by the Chandra X-ray Center (CXC). The collaboration was driven by visualization scientist Dr. Kimberly Arcand (CXC), astrophysicist Dr. Matt Russo and musician Andrew Santaguida (both of the SYSTEM Sound project).

Read more from NASA's Chandra X-ray Observatory: https://chandra.harvard.edu/photo/2021/sonify3/

For more Chandra images, multimedia and related materials, visit: http://www.nasa.gov/chandra

Image, Animation, Videos (mentioned), Text, Credits: NASA/Lee Mohon/Marshall Space Flight Center/Molly Porter/Chandra X-ray Center/Megan Watzke.

Greetings, Orbiter.ch

Astronomers image magnetic fields at the edge of M87’s black hole

 







ALMA - Atacama Large Millimeter/submillimeter Array logo.


March 24, 2021

A view of the M87 supermassive black hole in polarised light

The Event Horizon Telescope (EHT) collaboration, who produced the first ever image of a black hole, has today revealed a new view of the massive object at the centre of the Messier 87 (M87) galaxy: how it looks in polarised light. This is the first time astronomers have been able to measure polarisation, a signature of magnetic fields, this close to the edge of a black hole. The observations are key to explaining how the M87 galaxy, located 55 million light-years away, is able to launch energetic jets from its core.

View of the M87 supermassive black hole and jet in polarised light

“We are now seeing the next crucial piece of evidence to understand how magnetic fields behave around black holes, and how activity in this very compact region of space can drive powerful jets that extend far beyond the galaxy,” says Monika Mościbrodzka, Coordinator of the EHT Polarimetry Working Group and Assistant Professor at Radboud University in the Netherlands.

View of the M87 jet in the visible and polarised-light view of the jet and supermassive black hole

On 10 April 2019, scientists released the first ever image of a black hole, revealing a bright ring-like structure with a dark central region — the black hole’s shadow. Since then, the EHT collaboration has delved deeper into the data on the supermassive object at the heart of the M87 galaxy collected in 2017. They have discovered that a significant fraction of the light around the M87 black hole is polarised.

ALMA image of M87 jet in polarised light

“This work is a major milestone: the polarisation of light carries information that allows us to better understand the physics behind the image we saw in April 2019, which was not possible before,” explains Iván Martí-Vidal, also Coordinator of the EHT Polarimetry Working Group and GenT Distinguished Researcher at the University of Valencia, Spain. He adds that “unveiling this new polarised-light image required years of work due to the complex techniques involved in obtaining and analysing the data.”

First Image of a Black Hole

Light becomes polarised when it goes through certain filters, like the lenses of polarised sunglasses, or when it is emitted in hot regions of space where magnetic fields are present. In the same way that polarised sunglasses help us see better by reducing reflections and glare from bright surfaces, astronomers can sharpen their view of the region around the black hole by looking at how the light originating from it is polarised. Specifically, polarisation allows astronomers to map the magnetic field lines present at the inner edge of the black hole.

“The newly published polarised images are key to understanding how the magnetic field allows the black hole to 'eat' matter and launch powerful jets,” says EHT collaboration member Andrew Chael, a NASA Hubble Fellow at the Princeton Center for Theoretical Science and the Princeton Gravity Initiative in the US.

Messier 87 Captured by ESO’s Very Large Telescope

The bright jets of energy and matter that emerge from M87’s core and extend at least 5000 light-years from its centre are one of the galaxy’s most mysterious and energetic features. Most matter lying close to the edge of a black hole falls in. However, some of the surrounding particles escape moments before capture and are blown far out into space in the form of jets.

Artist’s impression of the Black Hole at the heart of M87

Astronomers have relied on different models of how matter behaves near the black hole to better understand this process. But they still don’t know exactly how jets larger than the galaxy are launched from its central region, which is comparable in size to the Solar System, nor how exactly matter falls into the black hole. With the new EHT image of the black hole and its shadow in polarised light, astronomers managed for the first time to look into the region just outside the black hole where this interplay between matter flowing in and being ejected out is happening.

Messier 87 in the Constellation of Virgo

The observations provide new information about the structure of the magnetic fields just outside the black hole. The team found that only theoretical models featuring strongly magnetised gas can explain what they are seeing at the event horizon.

“The observations suggest that the magnetic fields at the black hole’s edge are strong enough to push back on the hot gas and help it resist gravity’s pull. Only the gas that slips through the field can spiral inwards to the event horizon,” explains Jason Dexter, Assistant Professor at the University of Colorado Boulder, US, and Coordinator of the EHT Theory Working Group.

ALMA & APEX's Crucial Contribution to the EHT

To observe the heart of the M87 galaxy, the collaboration linked eight telescopes around the world — including the northern Chile-based Atacama Large Millimeter/submillimeter Array (ALMA) and the Atacama Pathfinder EXperiment (APEX), in which the European Southern Observatory (ESO) is a partner — to create a virtual Earth-sized telescope, the EHT. The impressive resolution obtained with the EHT is equivalent to that needed to measure the length of a credit card on the surface of the Moon.

“With ALMA and APEX, which through their southern location enhance the image quality by adding geographical spread to the EHT network, European scientists were able to play a central role in the research,” says Ciska Kemper, European ALMA Programme Scientist at ESO. “With its 66 antennas, ALMA dominates the overall signal collection in polarised light, while APEX has been essential for the calibration of the image.”

"ALMA data were also crucial to calibrate, image and interpret the EHT observations, providing tight constraints on the theoretical models that explain how matter behaves near the black hole event horizon," adds Ciriaco Goddi, a scientist at Radboud University and Leiden Observatory, the Netherlands, who led an accompanying study that relied only on ALMA observations.

Zooming-in to the heart of M87 to see a new view of its black hole

The EHT setup allowed the team to directly observe the black hole shadow and the ring of light around it, with the new polarised-light image clearly showing that the ring is magnetised. The results are published today in two separate papers in The Astrophysical Journal Letters by the EHT collaboration. The research involved over 300 researchers from multiple organisations and universities worldwide.

"The EHT is making rapid advancements, with technological upgrades being done to the network and new observatories being added. We expect future EHT observations to reveal more accurately the magnetic field structure around the black hole and to tell us more about the physics of the hot gas in this region," concludes EHT collaboration member Jongho Park, an East Asian Core Observatories Association Fellow at the Academia Sinica Institute of Astronomy and Astrophysics in Taipei.
 
More information:

This research was presented in two papers by the EHT collaboration published today in The Astrophysical Journal Letters: "First M87 Event Horizon Telescope Results VII: Polarization of the Ring" (doi: 10.3847/2041-8213/abe71d) and "First M87 Event Horizon Telescope Results VIII: Magnetic Field Structure Near The Event Horizon" (doi: 10.3847/2041-8213/abe4de). Accompanying research is presented in the paper "Polarimetric properties of Event Horizon Telescope targets from ALMA" (doi: 10.3847/2041-8213/abee6a) by Goddi, Martí-Vidal, Messias, and the EHT collaboration, which has been accepted for publication in The Astrophysical Journal Letters.

The EHT collaboration involves more than 300 researchers from Africa, Asia, Europe, North and South America. The international collaboration is working to capture the most detailed black hole images ever obtained by creating a virtual Earth-sized telescope. Supported by considerable international investment, the EHT links existing telescopes using novel systems — creating a fundamentally new instrument with the highest angular resolving power that has yet been achieved.

The individual telescopes involved are: ALMA, APEX, the Institut de Radioastronomie Millimetrique (IRAM) 30-meter Telescope, the IRAM NOEMA Observatory, the James Clerk Maxwell Telescope (JCMT), the Large Millimeter Telescope (LMT), the Submillimeter Array (SMA), the Submillimeter Telescope (SMT), the South Pole Telescope (SPT), the Kitt Peak Telescope, and the Greenland Telescope (GLT).

The EHT consortium consists of 13 stakeholder institutes: the Academia Sinica Institute of Astronomy and Astrophysics, the University of Arizona, the University of Chicago, the East Asian Observatory, Goethe-Universitaet Frankfurt, Institut de Radioastronomie Millimétrique, Large Millimeter Telescope, Max Planck Institute for Radio Astronomy, MIT Haystack Observatory, National Astronomical Observatory of Japan, Perimeter Institute for Theoretical Physics, Radboud University and the Smithsonian Astrophysical Observatory.  

ESO is the foremost intergovernmental astronomy organisation in Europe and the world’s most productive ground-based astronomical observatory by far. It has 16 Member States: Austria, Belgium, the Czech Republic, Denmark, France, Finland, Germany, Ireland, Italy, the Netherlands, Poland, Portugal, Spain, Sweden, Switzerland and the United Kingdom, along with the host state of Chile and with Australia as a Strategic Partner. ESO carries out an ambitious programme focused on the design, construction and operation of powerful ground-based observing facilities enabling astronomers to make important scientific discoveries. ESO also plays a leading role in promoting and organising cooperation in astronomical research. ESO operates three unique world-class observing sites in Chile: La Silla, Paranal and Chajnantor. At Paranal, ESO operates the Very Large Telescope and its world-leading Very Large Telescope Interferometer as well as two survey telescopes, VISTA working in the infrared and the visible-light VLT Survey Telescope. Also at Paranal ESO will host and operate the Cherenkov Telescope Array South, the world’s largest and most sensitive gamma-ray observatory. ESO is also a major partner in two facilities on Chajnantor, APEX and ALMA, the largest astronomical project in existence. And on Cerro Armazones, close to Paranal, ESO is building the 39-metre Extremely Large Telescope, the ELT, which will become “the world’s biggest eye on the sky”.

The Atacama Large Millimeter/submillimeter Array (ALMA), an international astronomy facility, is a partnership of ESO, the U.S. National Science Foundation (NSF) and the National Institutes of Natural Sciences (NINS) of Japan in cooperation with the Republic of Chile. ALMA is funded by ESO on behalf of its Member States, by NSF in cooperation with the National Research Council of Canada (NRC) and the Ministry of Science and Technology (MOST) and by NINS in cooperation with the Academia Sinica (AS) in Taiwan and the Korea Astronomy and Space Science Institute (KASI). ALMA construction and operations are led by ESO on behalf of its Member States; by the National Radio Astronomy Observatory (NRAO), managed by Associated Universities, Inc. (AUI), on behalf of North America; and by the National Astronomical Observatory of Japan (NAOJ) on behalf of East Asia. The Joint ALMA Observatory (JAO) provides the unified leadership and management of the construction, commissioning and operation of ALMA.

The BlackHoleCam research group was awarded the European Research Council €14 million Synergy Grant in 2013. The Principal Investigators are Heino Falcke, Luciano Rezzolla and Michael Kramer and the partner institutes are JIVE, IRAM, MPE Garching, IRA/INAF Bologna, SKA and ESO. BlackHoleCam is part of the Event Horizon Telescope collaboration.

Links:

ESOcast 235 Light: Astronomers Image Magnetic Fields at Black Hole's Edge
https://www.eso.org/public/videos/eso2105a/

Research papers:

Paper VII: https://iopscience.iop.org/article/10.3847/2041-8213/abe71d

Paper VIII: https://iopscience.iop.org/article/10.3847/2041-8213/abe4de

Goddi et al.: https://iopscience.iop.org/article/10.3847/2041-8213/abee6a

Additional videos related to the research on the EHT YouTube channel: https://www.youtube.com/channel/UC4sItzYomoJ6Flt0aDyHMOQ

What is polarization: https://youtu.be/Un-9fbqlIKo

How magnetic fields affect black hole images: https://youtu.be/6xrJoPjfJGQ

The M87 image as seen with a polarizer: https://youtu.be/AU2qGTpMn8I

EHT website: https://eventhorizontelescope.org/

Images of ALMA: https://www.eso.org/public/images/archive/category/alma/

Images of APEX: https://www.eso.org/public/images/archive/category/apex/
 
ESO EHT webpage: https://www.eso.org/public/science/event-horizon/

ESO blog post on the EHT project: https://www.eso.org/public/blog/photographing-a-black-hole/

For scientists: got a story? Pitch your research: http://eso.org/sci/publications/announcements/sciann17277.html

Atacama Large Millimeter/submillimeter Array (ALMA): https://www.eso.org/public/teles-instr/alma/

Atacama Pathfinder EXperiment (APEX): https://www.eso.org/public/teles-instr/apex/

Images Credits: ESO/EHT Collaboration/ALMA (ESO/NAOJ/NRAO), Goddi et al.; VLBA (NRAO), Kravchenko et al.; J. C. Algaba, I. Martí-Vidal/ALMA (ESO/NAOJ/NRAO), Goddi et al./ESO/M. Kornmesser/IAU and Sky & Telescope.

Video Credits: ESO/L. Calçada, Digitized Sky Survey 2, ESA/Hubble, RadioAstron, De Gasperin et al., Kim et al., EHT Collaboration. Music: Niklas Falcke.

Text Credits: ESO/Bárbara Ferreira/EHT/Academia Sinica Institute of Astronomy and Astrophysics Hilo/Geoffrey C. Bower/EHT/Joint Institute for VLBI ERIC Dwingeloo/Huib Jan van Langevelde/EHT/Radboud Universiteit Nijmegen/Sara Issaoun/Academia Sinica, Institute of Astronomy and Astrophysics Taipei/Jongho Park/University of Colorado Boulder/Jason Dexter/Princeton University Center for Theoretical Science/Andrew Chael/ESO/Ciska Kemper/Universitat de València/Ivan Martí Vidal/Radboud Universiteit/Monika Mościbrodzka.

Best regards, Orbiter.ch

Water mission takes on space weather

 





ESA - SMOS Mission logo.


March 24, 2021

For well over a decade, ESA’s SMOS satellite has been delivering a wealth of data to map moisture in soil and salt in the surface waters of the oceans for a better understanding of the processes driving the water cycle. While addressing key scientific questions, this exceptional Earth Explorer has repeatedly surpassed expectations by returning a wide range of unexpected results, often leading to practical applications that improve everyday life. Adding to SMOS’ list of talents, new findings show that what was considered noise in the mission’s data can actually be used to monitor solar activity and space weather, which can damage communication and navigation systems.

SMOS turns to the Sun

The SMOS satellite carries a novel interferometric radiometer that operates at a frequency of 1.4 GHz in the L-band microwave range of the electromagnetic spectrum to capture ‘brightness temperature’ images. These images correspond to radiation emitted from Earth’s surface, which scientists then use to derive information on soil moisture and ocean salinity.

However, because of the wide field of view of SMOS’ antenna, it doesn’t just capture signals emitted from Earth’s surface, but also signals from the Sun – which create noise in the brightness temperature images. Therefore, as a matter of course, a specific algorithm is used during the imaging processing procedure to remove this noise so that the data is fit for purpose.

However, scientists started to wonder if these Sun signals could contribute to monitoring solar activity.

SMOS detects space weather

We think of the Sun as providing the light and warmth to sustain life, but it also bombards us with dangerous charged particles in the solar wind and radiation. Changes in the light coming from the Sun, known as solar flares, or in the solar wind, which carries coronal mass ejections, are referred to as space weather.

These flares or mass ejections can damage communication networks, navigations systems such as GPS, and other satellites. Severe solar storms can even cause power outages on Earth. Understanding and monitoring space weather is, therefore, important for early warnings and taking precautionary measures.

Manuel Flores-Soriano, from the University of Alcalá in Spain, said, “We found that SMOS can detect solar radio bursts and even weaker variations in emissions from the Sun, such as the 11-year solar cycle.

“Solar radio bursts detected by SMOS brightness temperature signals from the Sun are generally observed during flares that are associated with coronal mass ejections. We have also found a correlation between the amount of solar flux released at 1.4 GHz and the speed, angular width and kinetic energy of coronal mass ejections.”

These new results published in Space Weather describe how SMOS has the unique ability to observe the Sun continually with full polarimetry – making it a promising instrument for monitoring solar interference affecting Global Navigation Satellite Systems such as GPS and Galileo, radar and wireless communications, and for early warnings of solar coronal mass ejections.

Raffaele Crapolicchio, who works in the SMOS mission team at ESA, noted, “It is very exciting to see how an idea I initially proposed at the European Space Weather Week back in 2015 has turned into these fruitful results.”

SMOS in orbit

ESA’s Diego Fernandez added, “This research carried out though our Science for Society programme is further proof of how versatile the SMOS mission is and how we push the limits of our missions well beyond their main scientific objectives. Here we see a mission designed to observe our planet is also able to observe solar activity. More work will now be needed to build upon these initial results and create a dedicated retrieval algorithm for the L-band Sun signal and to generate products for solar observations.”

Related links:

Observing the Earth: https://www.esa.int/Applications/Observing_the_Earth

SMOS: https://www.esa.int/Applications/Observing_the_Earth/SMOS

Images, Video, Text, Credits: ESA/Planetary Visions (credit: ESA/Planetary Visions)/AOES Medialab.

Best regards, Orbiter.ch