Astrum Space - We’ve Seen Closer to the Surface of the Sun Than Ever Before
Episode Date: August 1, 2026ESA’s Proba-3 mission has achieved a world first. It created an artificial eclipse in space. Not just once, but over 50 times. In this video, we’ll discover how these two tiny probes are revolutio...nising our ability to study the Sun’s inner corona, and helping to answer the biggest unsolved mysteries about our star.▀▀▀▀▀▀Get the DWARF mini Solar Eclipse Travel Kit at 10% off through July 31: https://bit.ly/astrum-eclipse26. After July 31, use code ASTRUM5 at checkout on dwarflab.com. Eclipse preparation guide: https://help.dwarflab.com/en/docs/202...▀▀▀▀▀▀Astrum's newsletter has launched! Want to know what's happening in space? Sign up here: https://astrumspace.kit.comA huge thanks to our Patreons who help make these videos possible. Sign-up here: https://bit.ly/4aiJZNF
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This is the corona.
Our sun's outer atmosphere.
This fiery hell can reach temperatures of 10 million degrees Celsius.
But just 1,500 kilometres beneath this inferno, the surface is significantly cooler.
This arguably makes no sense.
How can the temperature increase as it moves away from the source?
Surely that's the wrong way round.
known as the coronal heating problem, this is one of the greatest unanswered questions in
astrophysics, and it's been baffling scientists for decades.
Over the years, there's been theories and clues about its cause, but it's hard to get
answers about something you can't easily see, other than the occasional fleeting glimpse
during solar eclipses, so the inner corona has remained largely unobserved.
But in December 24, all that changed.
The European Space Agency launched two tiny satellites,
but together are revolutionizing our understanding of the sun,
working in perfect synchrony to make the once invisible visible.
I'm Alex McColligan and you're watching Astrom.
Today we're heading into orbit with the Probe 3 mission,
as its first findings are released.
We'll explore how these two minisats have opened up a window into the sun's most inaccessible region
and get to grips with the extraordinary engineering that makes flying in millimeter precision formation possible.
On the 5th of December 2024,
Issa's Prober 3 lifted off on a PSLVXL rocket from the Satish-Dawan Space Center, Sri Haricotta, India.
This mission didn't necessarily garner headlines,
But it was quietly set to change the face of solar exploration and break a few engineering
records in the process, because Probe 3 isn't just one satellite, but 2.
This pair of fully autonomous minisats have to fly in millimeter-perfect formation through
a highly elliptic orbit of Earth, all whilst positioned one and a half football pitches apart.
And that's easier said than done.
Why would we want to do this, you might ask?
Well, they were being sent to study the sun and one area in particular, the corona.
Why is the sun's atmosphere hotter than its surface?
What drives the charged particles in the solar wind?
And how do billions of tons of magnetized plasma erupt from our star in one go?
These questions have haunted solar physicists for decades,
and the answers to all of them are believed to be high.
in the same uncharted region of the sun. Yes, the corona. But observing this outermost part
of the sun's atmosphere has always been a challenge. It's a million times dimmer than our star's
visible surface, the photosphere, meaning this region gets somewhat lost in the sun's light.
Observations aren't impossible, per se. We do get a fleeting glimpse during eclipses. These
spectacular events offer an excellent snapshot of the corona, and over the centuries have not only led to the
discovery of the Krona itself, but also that of ionized iron within, the first evidence of
the Krona's extreme temperatures. The problem with total eclipses, though, is that they only last
for a few brief minutes, and they're rare, only occurring every 18 months or so. Add to that
the fact that the paths of total eclipses are often in remote areas or over the ocean, which is
pretty impractical when it comes to using high-power telescopes, as they aren't.
exactly what you'd call portable. Thankfully though we do have another alternative. In the
1930s a French astronomer called Bernard Liot started using an occulting disk to act like an
artificial moon, blocking out the sun's surface to create a mini eclipse. Instantly, observing time
went from minutes to hours and using these new instruments called coronagraphs, we've been
able to keep almost constant tabs on the corona. We can track its temperature and
and composition and look for changes in the flow of the solar wind. But, yes, there's a but,
there are once again limitations. Ground-based chronographs have to compete with daytime brightness
and atmospheric light scattering, making the dimmest parts of the corona, or the bit closest to the sun,
almost impossible to see. It therefore remains mostly unseen and unstudied. To solve the mystery
of the sun's corona, we needed a better view, and for that we needed to get rid of at least some
of the background light. We can't make the sun dimmer, so the easiest thing to do is get rid of
the atmospheric scattering. In other words, we needed to get coronagraphs into space.
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Space-based chronographs have revolutionized our chronal understanding.
On the 14th of December 1971, an early space-based mission of this kind called the Orbiting Solar Observatory 7,
saw a coronal mass ejection for the first time. Since then, we've seen tens of thousands of
them. I'm sure you've seen some of the spectacular images sent back by the solar and
heliosphoric observatory or Soho that launched in 1995, and the Solar Terrestrial Relations
Observatory or Stereo that launched in 2006. I personally love how you can see the solar
weather events erupting from the surface when the star itself is blocked out, and how each craft specializes
in different regions above the sun,
giving us one large image when put together,
each of them their own part of the puzzle.
But once again, even chronographs in space have issues.
Just like on Earth, the glare of the sun can be too strong.
Soho in particular cannot see closer than 1.7 solar radii,
and most of the interesting phenomena start much closer than that.
Parker Solar Probe and Solar Orbiter, both much closer to the sun,
also have chronograph instruments, but they suffer with the same issue, as well as internal
light scattering and diffraction that degrade images when the occultor, the bit blocking the sun,
is too close to the camera lens. And that's something that you can't really get around on a
three-meter-tall probe. Scientists needed yet another way to look at the sun if they ever hope to
unlock the secrets of the corona. You may have heard that a total solar eclipse is coming to parts of
Europe on the 12th of August, while parts of the Northern United States will see a partial eclipse.
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Now that you're sorted,
how are scientists tackling the challenges of seeing the corona
when three-meter space telescopes aren't getting the job done.
The solution?
To put the occultor further away, specifically on another spacecraft.
And to do that, engineers had to create the world's first pair of fully autonomous satellites
that can simulate artificial solar eclipses on demand.
And most crucially, without having to worry about other solar radiation,
so-called parasitic light, leaking.
into the image. Probe 3 is the fourth in ESA's Project for Onboard Autonomy, a line of experimental
missions designed to work without constant human monitoring on the ground. And this is the most ambitious
mission yet. Two small satellites, one containing the coronagraph and the other the occultor,
fly 144 meters apart, holding their relative positions with millimetric precision to simulate a single
giant spacecraft. This gets a round issue other space chronographs have with the two parts being
too close together. And perhaps most impressively of all, the idea is that they're able to do this
autonomously. That might not necessarily sound overly impressive, but trust me, it is. In fact,
it's never been done before. Just to prove my point, let's get into the nitty-gritty of how the
mission works. First up, the satellites take a highly elliptical path around Earth. If they had been
launched into a standard low Earth orbit, the constant need for corrective thrust use would have
burned up the propellant in as little as half an hour, making for a very short mission. Instead,
an elongated elliptical orbit was chosen, starting at an altitude of 600 kilometers above Earth at its
nearest and reaching the farthest point of 60,500 kilometers once every 19 hours and 36 minute
long orbit. Imagine it like a roller coaster loop. At the bottom of the loop, near the earth,
the satellites are moving the fastest. As they begin to go around the loop, they slow down from
10 kilometers per second to 1 kilometer per second. Because of the slower speed, they spend more
time at the top of the loop, or in this case, they spend more time at the furthest point.
of their orbit away from Earth, called the apogee.
This gives them maximum solar observation time.
And when they're closer to Earth, the pair are set for a safe flyby.
Then as they approach apogee, they are given a signal to move into active formation,
taking about two hours to prepare to observe the corona.
Then, like self-driving cars, only way more precise, the satellites align themselves using
a suite of absolute and relative positioning.
technologies, from GPS receivers and radio links to optical cameras and LEDs, a laser link,
and even shadow position sensors. Each of these hands off to the next with increasing precision.
It starts with cameras that recognize the constellations around them called star trackers.
These allow each spacecraft to know exactly which direction is pointing at any given moment.
During their low orbit, or below 20,200 kilometers, the spacecraft uses GPS,
signals and continuously exchanges ranging information and data through inter-satellite
radio links.
Then comes the vision-based system to help two spacecraft determine their position relative
to each other.
A wide-angle camera on each spacecraft tracks a pattern of flashing LEDs on the other, giving
a rough first read on distance and orientation.
A narrower camera then locks onto a smaller LED target, refining that to around 1 cm
of accuracy.
even a centimeter isn't precise enough.
The occult of spacecraft fires a laser at the reflector on the chronograph, which bounces
it straight back.
That system, called the fine lateral and longitudinal sensor, narrows positioning down to a single
millimeter.
And finally, to make sure the shadow is falling exactly where it needs to, photo detectors
monitor its edges in real time.
If it drifts even slightly, a correction fires instantly.
To keep the whole system as stable as possible, neither spacecraft has any moving parts,
apart from a single rotating filter wheel on the coronagraph, everything else is locked in place.
With the two spacecraft aligned perfectly, a precisely controlled shadow is cast from one satellite
to the other, blocking our star's fiery disk and thus creating artificial eclipses
that allow us to collect sustained observations of the sun's corona.
Usually, from Earth, the corona can only be glimpsed naturally for a matter of minutes during a total solar eclipse,
but the idea with Probe 3 was for it to reproduce the same effect as the solar eclipse,
or hours at a time, as much as five and a half hours of its nearly 20-hour orbit.
For the first time ever, these tiny satellites have opened up the chance for us to observe the corona
on a consistent basis.
But it was all uncharted territory.
Even the slightest slip in the satellite's formation, and the eclipse is gone, taking with it
the opportunity to study the corona.
As the team turned the spacecraft on for calibration, no one really knew if it would
all work.
Just as stray light can ruin images on Earth, it could hear too.
The team really weren't sure whether or not light would diffract and leak around
the edges of the occultor. Thankfully, though, they had nothing to worry about. As the first data
came through on the 25th of March 2025, it was clear that the Probe 3 team had achieved the
millimeter precision needed. Andrei Zerkhov, a chronograph's principal investigator, said
it was so unbelievable that it just worked from the first time. Before Probe 3, we could see as close
as 0.7 solar radii from the sun's surface. Now we could see.
see down to 70,000 kilometres above the sun's surface, which is just 0.1 solar radii.
Put simply, no other space-based chronograph can observe the light scattering of particles
in the sun's corona this close to the sun. Proof of concept, complete. It was time to move on
to the science. The mission carries two scientific instruments, the first of which is the
coronagraph. It's called the Aspix, or the Association of Spacecraft for Polymetric and Imaging
Investigation of the Corona of the Sun, and it images both the quiescent and eruptive corona,
in other words, both when it's calm and during more specific solar weather events.
The second instrument is Dara, the Digital Absolute Radiometer, designed to measure the total
solar irradiance or TSI. Whilst calibration was ongoing, the team kept the results
under wraps, but on the 16th of June 2025, images from the first artificial solar eclipse were
released. And not only were they spectacular to look at, they gave a glimpse into the valuable
data yet to come. And by December of 2025, a year into the mission, the satellites had created
more than 50 artificial eclipses and provided hundreds of hours of invaluable observational data
about our sun's corona. So what has it found?
The corona is where the solar wind picks up speed before streaming outward across the entire solar system,
eventually washing over the probatory spacecraft and reaching Earth itself.
It's a continuous stream of charged particles that are constantly flowing outward from the sun in all directions,
filling the entire solar system.
The corona is where most coronal mass ejections are born,
massive eruptions of magnetized plasma that, when aimed at Earth,
can knock out satellites, disrupt GPS, and overwhelm power grids.
Take a look at this composite image, made up of three sets of images taken over an hour
and a half by instruments on different missions, all observing the same coronal mass ejection
or CME event on the 16th of July 2025. The yellow at the centre shows the sun's disc
and lower atmosphere, captured in ultraviolet by an extreme ultraviolet telescope carried
by Probert 2, a previous ESA mission, that also studies the Sun.
In red, it shows the outer corona as seen by the Lasco 2 chronograph on Soho, and in
green is the middle layer, the inner corona, imaged for the first time with this kind of clarity
and continuity by Probe 3's Aspix's chronograph, filling in the gap that has existed between
those two instruments for decades. You can watch the CME forming at the Sun's edge,
expanding through the inner corona and pushing outward into the outer atmosphere in one continuous
unbroken view. And in April 26, the first science from Probe III followed, being published
in the astrophysical journal letters. It revealed that solar wind structures in the
inner corona can travel up to four times faster than previously thought. This set of
images shows the sun in ultraviolet light, has seen artificial
officially coloured in yellow, captured by Probe 2.
Surrounding it is a grey scale area captured in visible light by Probe 3.
You can see how the solar wind is moving away from the sun in all directions, but in some regions,
such as around the bottom of the video, material also falls back towards the sun.
In the second half of the video, a coronal mass ejection is then visible expanding out towards
the right.
What we've learned is that the inner corona is far busy.
easier and more turbulent than previously expected. It's filled with tiny, constantly moving
blobs and streams of plasma, some flowing outward and some actually flowing back toward the sun.
These structures are moving at speeds ranging from 14 to 520 kilometers per second,
so exceptionally quick, and three to four times faster than previous instruments had measured
in this region. This means our existing models of how solar wind
accelerates have been significantly off. Understanding these small-scale dynamics is key to answering
how the slow solar wind forms, how the corona gets so hot, and how solar eruptions are triggered,
all of which directly affect our ability to forecast space weather. But there's still a long
way to go. Probe 3 is only at the start of its life, and scientists behind the scenes are scouring
the data. I've been assured that new publications and findings are finding
are already on the way.
At as long as the precision formation flying can continue though.
I know it sounds as if the mission has all gone smoothly,
but as ever, it's not been without hiccups.
Earlier this year, the Proboscery team actually lost the coronagraph spacecraft.
It vanished uncontactable for a whole month.
So what happened?
Well, in Andre's own words, there was a software glitch,
and it lost the orientation towards the sun.
And well, when the solar panel is not looking towards the sun, then the battery is not charging.
And if the battery is not charging, then the power is down and the spacecraft is in trouble.
Facing away from the sun, Probe 3's chronograph was unable to enter safe mode to preserve its battery.
And as this happened at a weekend, the operators weren't working, so it wasn't corrected in time.
This might sound surprising, but remember, Probe 3 is a week.
meant to be autonomous, so it should be able to survive a weekend unsupervised.
Apparently not.
Tracking the missing half of Probe 3 using the camera on the occulting satellite, the team
were eventually able to find the chronograph and managed to command it to turn towards
the sun.
At worst, the two spacecraft drifted 80 kilometers apart, an enormous separation for a pair
designed to fly less than 150 meters from one another.
Thankfully, both satellites are now online and back together.
They recently turned both spacecraft back on, and it appears there's been no lasting damage.
As of early June, they are back on their observing schedule.
Perhaps we're a little way of fully autonomous, after all.
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Even having a month-long sabbatical, Probe 3 has collected more than 250 hours of high-resolution
video of the corona over 57 artificial eclipses. To put this into perspective, the average total
eclipse on Earth lasts for about 7.5 minutes. Probe 3 has already captured 2,000 times that.
In that time, it hasn't quite solved the three great coronal questions, but for the first time
in the history of solar science, there is an instrument dead.
dedicated to doing so, watching the solar corona with a consistency, resolution and sensitivity
needed to see what is actually happening.
And we really are only at the start.
Andrei Sukoff and his team are already preparing the next batch of images and discoveries
to be released.
And in December 2026, Probe 3 will surpass its nominal mission period of two years.
that point, researchers from around the world can begin requesting specific observations
they want Probe 3 to make, opening up the mission to the greater global physics community.
Looking beyond solar science, Probe 3 is also quite simply an engineering marvel.
No one expected its precision formation flying to work as well as it does, and the mission has
gone a long way to proving the experimental concept of autonomous satellites flying in precise
unity. I personally am looking forward to seeing what future missions may use this technology
and whether it can unlock any of the other big questions that still linger out in the cosmos.
I really hope you enjoyed learning about how important eclipses are. We're actually
live streaming the upcoming solar eclipse on the 12th of August. We'll see you there at 6.30 p.m. BST
and we'll be online to answer all your questions too. See you there. Thanks for watching.
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for considering it. I'll see you next time.
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