Become a supporter of this podcast: https://www.spreaker.com/podcast/astronomy-daily-latest-space-news--5648921/support.
Sponsor Details:
Ensure your online privacy by using NordVPN. To get our special listener deal and save a lot of money, visit www.astronomydaily.io/nordvpn. You'll be glad you did!
Get the best secure and private email on the planet. Stop your Government, google and who knows who else spying on every email you write. Do what we did and use ProtonMail. They beleive in privacy and there are no ads in their business model...yet they still provide a free forever service. Check them out and get out special deal at www.astronomydaily.io/protonmail
Become a supporter of Astronomy Daily by joining our Supporters Club. Commercial free episodes daily are only a click way... Click Here
This episode includes AI-generated content.
00:00:01 --> 00:00:03 Avery: One of the most famous stars in the whole
00:00:03 --> 00:00:05 night sky has been keeping a secret for about
00:00:05 --> 00:00:06 100 years.
00:00:06 --> 00:00:09 Anna: And this week, a telescope in the Chilean
00:00:09 --> 00:00:11 desert finally caught it red handed.
00:00:11 --> 00:00:14 Betelgeuse, it turns out, is not alone.
00:00:14 --> 00:00:17 Avery: Also ahead, a black hole caught wandering the
00:00:17 --> 00:00:19 lonely outskirts of a galaxy dreading a
00:00:19 --> 00:00:22 star tens of thousands of light years from
00:00:22 --> 00:00:24 where any black hole has a right to be.
00:00:24 --> 00:00:27 Anna: NASA's next great observatory gets its tank
00:00:27 --> 00:00:29 filled and a date on the calendar.
00:00:29 --> 00:00:31 Avery: And the little spacecraft sent to rescue an
00:00:31 --> 00:00:34 aging telescope suddenly needs rescuing
00:00:34 --> 00:00:36 itself. G', day, and welcome to Astronomy
00:00:36 --> 00:00:39 Daily, your daily dose of space and astronomy
00:00:39 --> 00:00:40 news. I'm Avery.
00:00:40 --> 00:00:43 Anna: And I'm, um, anna. It's Wednesday, the 29th
00:00:43 --> 00:00:46 of July, four stories and a look at the sky
00:00:46 --> 00:00:48 from both hemispheres. Let's get into it.
00:00:48 --> 00:00:51 If you've ever looked up at Orion, and from
00:00:51 --> 00:00:54 Sydney or Seattle, just about everyone has,
00:00:54 --> 00:00:56 you've seen tonight's star Betelgeuse,
00:00:57 --> 00:00:59 that deep orange point marking the hunter's
00:00:59 --> 00:01:02 shoulder. It's a red supergiant, roughly
00:01:02 --> 00:01:04 650 light years away, and it is
00:01:04 --> 00:01:07 enormous. Drop it where our sun sits and it
00:01:07 --> 00:01:09 would swallow the orbit of Jupiter.
00:01:09 --> 00:01:12 Avery: And it's famous for misbehaving. It
00:01:12 --> 00:01:12 flickers.
00:01:13 --> 00:01:16 Anna: It does. Betelgeuse brightens and dims on
00:01:16 --> 00:01:18 a whole set of overlapping cycles. And people
00:01:18 --> 00:01:20 have been writing that down for more than a
00:01:20 --> 00:01:22 thousand years. But there's one rhythm, um,
00:01:23 --> 00:01:25 in particular, a slow beat about six years
00:01:25 --> 00:01:28 long that astronomers have never been able to
00:01:28 --> 00:01:31 fully explain. And for almost a century,
00:01:31 --> 00:01:33 one idea kept coming back. What if
00:01:33 --> 00:01:36 Betelgeuse has a companion, a second star,
00:01:36 --> 00:01:38 orbiting close, tugging on it?
00:01:39 --> 00:01:40 Avery: The famous Betel Buddy.
00:01:41 --> 00:01:43 Anna: That's the affectionate nickname, yes. The
00:01:43 --> 00:01:46 trouble is nobody had ever seen it. And you
00:01:46 --> 00:01:48 can see why. Imagine trying to spot a
00:01:48 --> 00:01:51 candle sitting right next to a lighthouse.
00:01:51 --> 00:01:54 Betelgeuse is so blindingly bright and so
00:01:54 --> 00:01:57 physically huge that any little companion
00:01:57 --> 00:01:59 tucked in beside it just drowns in the glare.
00:01:59 --> 00:02:02 For a hundred years, it stayed a hypothesis.
00:02:03 --> 00:02:04 Avery: So what changed?
00:02:04 --> 00:02:07 Anna: A team led by Miguel Montargis at the Paris
00:02:07 --> 00:02:09 Observatory in Chile, the vlt,
00:02:09 --> 00:02:12 and an instrument called Sphere that's built
00:02:12 --> 00:02:14 for exactly this job. Blocking out a bright
00:02:14 --> 00:02:17 star to hunt for faint things right beside
00:02:17 --> 00:02:19 it. And crucially, they picked their moment.
00:02:19 --> 00:02:22 They observed in December 2024, at the
00:02:22 --> 00:02:24 point in the orbit when the companion was
00:02:24 --> 00:02:27 predicted to swing out as far from Betelgeuse
00:02:27 --> 00:02:29 as it ever gets from seen from Earth. Best
00:02:29 --> 00:02:32 possible chance to split the two apart. And
00:02:33 --> 00:02:36 there it was. A faint little source right
00:02:36 --> 00:02:38 Where a companion should be. Their paper
00:02:38 --> 00:02:41 landed yesterday, 28th July in the journal
00:02:41 --> 00:02:44 Astronomy and Astrophysics. And Montargis
00:02:44 --> 00:02:46 called it the end of a century long quest.
00:02:47 --> 00:02:49 After a hundred years of arguing about it, we
00:02:49 --> 00:02:52 have a direct image of what is very likely
00:02:52 --> 00:02:53 Betelgeuse B.
00:02:53 --> 00:02:56 Avery: That gives me chills, honestly. A star that
00:02:56 --> 00:02:58 people have watched since antiquity and we're
00:02:58 --> 00:03:00 still learning brand new things about it.
00:03:00 --> 00:03:03 Anna: And here's the lovely twist. The reason they
00:03:03 --> 00:03:05 could see it at all is that it surprised
00:03:05 --> 00:03:07 them. The companion was predicted to be
00:03:07 --> 00:03:10 roughly the mass of our Sun. But the data
00:03:10 --> 00:03:13 say it's bigger than that, something like two
00:03:13 --> 00:03:16 to three times the Sun's mass. Montargis put
00:03:16 --> 00:03:18 it beautifully, because it's more massive
00:03:18 --> 00:03:20 than we expected, it's brighter than we
00:03:20 --> 00:03:22 expected, and that's the only reason it
00:03:22 --> 00:03:25 peeked out of the glare. If it had been as
00:03:25 --> 00:03:27 small as the textbook said, they might have
00:03:27 --> 00:03:28 missed it entirely.
00:03:28 --> 00:03:31 Avery: So the companion did us a favor by being
00:03:31 --> 00:03:34 chunkier than advertised. What is it though?
00:03:34 --> 00:03:35 Another supergiant?
00:03:35 --> 00:03:38 Anna: No, nothing like Betelgeuse. Think of it as
00:03:38 --> 00:03:41 a young, hot, fairly ordinary star,
00:03:41 --> 00:03:44 but locked in a very awkward orbit.
00:03:44 --> 00:03:47 It appears to circle so close that it's
00:03:47 --> 00:03:49 essentially skimming through the outer puffed
00:03:49 --> 00:03:52 up layers of the supergiant. And that has
00:03:52 --> 00:03:55 consequences. That orbit is almost
00:03:55 --> 00:03:58 certainly what paces that mysterious M6
00:03:58 --> 00:04:01 year brightness cycle. But it's also most
00:04:01 --> 00:04:03 likely a death sentence for the companion.
00:04:04 --> 00:04:05 Avery: Ooh, M. Go on.
00:04:05 --> 00:04:08 Anna: Plowing through a supergiant's outer
00:04:08 --> 00:04:10 atmosphere means constant drag. Every
00:04:10 --> 00:04:13 orbit, the little star loses a bit of energy.
00:04:13 --> 00:04:16 And models suggest it's slowly spiraling
00:04:16 --> 00:04:19 inward on astronomical timescales.
00:04:19 --> 00:04:22 Betelgeuse is very likely to swallow its
00:04:22 --> 00:04:25 own companion. Not tomorrow. We're talking
00:04:25 --> 00:04:28 thousands of years. But the relationship is,
00:04:28 --> 00:04:30 let's say, not built to last.
00:04:31 --> 00:04:33 Avery: The lighthouse eats the candle.
00:04:33 --> 00:04:36 Anna: Eventually, yes. And this matters for the big
00:04:36 --> 00:04:38 question everyone actually wants answered
00:04:38 --> 00:04:40 about Betelgeuse. When is it going to
00:04:40 --> 00:04:43 explode? Because it will. It's an old
00:04:43 --> 00:04:46 massive star, near the end of its life, and
00:04:46 --> 00:04:49 one day it will go supernova and briefly
00:04:49 --> 00:04:52 outshine everything in the night sky. Now,
00:04:52 --> 00:04:55 before anyone emails us, that's expected on a
00:04:55 --> 00:04:57 timescale of up to 100 years.
00:04:58 --> 00:05:00 So don't cancel your weekend. But whether a
00:05:00 --> 00:05:03 star has a close binary companion
00:05:03 --> 00:05:06 changes the whole picture. How it sheds mass,
00:05:06 --> 00:05:08 the shape of the gas around it, even the
00:05:08 --> 00:05:11 choreography of the explosion when it finally
00:05:11 --> 00:05:14 comes. Knowing Betelgeuse is a pear
00:05:14 --> 00:05:15 rewrites part of that story.
00:05:16 --> 00:05:18 Avery: And this was direct imaging. An actual
00:05:18 --> 00:05:20 Picture not just an inference from wobbles in
00:05:20 --> 00:05:21 the light.
00:05:21 --> 00:05:24 Anna: That's what makes it land. There had been
00:05:24 --> 00:05:27 circumstantial hints for years, but this is a
00:05:27 --> 00:05:29 direct detection light caught from the
00:05:29 --> 00:05:32 companion itself in the right place at the
00:05:32 --> 00:05:34 right time. It's the difference between the
00:05:34 --> 00:05:37 data suggest a second star and here
00:05:37 --> 00:05:38 it is.
00:05:38 --> 00:05:40 Avery: So if you want to go and look at the star at
00:05:40 --> 00:05:42 the center of all this, Betelgeuse itself.
00:05:43 --> 00:05:45 Where are we? Both hemispheres right now?
00:05:45 --> 00:05:48 Anna: Orion is a pre dawn act. It's climbing
00:05:48 --> 00:05:51 back into the morning sky after being lost in
00:05:51 --> 00:05:53 the sun's glare. For our Southern hemisphere
00:05:53 --> 00:05:56 listeners, Orion rides high in the northern
00:05:56 --> 00:05:58 part of the early morning sky. And it's
00:05:58 --> 00:06:00 upside down compared to the northern view.
00:06:00 --> 00:06:03 Look for Betelgeuse as the bright orange star
00:06:03 --> 00:06:05 from North America and mid northern
00:06:05 --> 00:06:08 latitudes. It's lower in the east southeast
00:06:08 --> 00:06:11 before dawn, climbing higher each week. As we
00:06:11 --> 00:06:13 head towards the northern winter, we'll come
00:06:13 --> 00:06:16 back to it properly in the sky watch. But
00:06:16 --> 00:06:18 next time you find it, just remember it's not
00:06:18 --> 00:06:20 one star. It never was.
00:06:21 --> 00:06:23 Avery: Now from a star that's hiding a companion to
00:06:23 --> 00:06:26 a black hole that was hiding full stop.
00:06:26 --> 00:06:29 Anna, picture, uh, a supermassive black hole.
00:06:29 --> 00:06:30 Where is it?
00:06:30 --> 00:06:33 Anna: Dead center of a galaxy. That's the rule. The
00:06:33 --> 00:06:35 big ones sit in the core.
00:06:35 --> 00:06:38 Avery: That's the rule. And this week, NASA's Swift
00:06:38 --> 00:06:40 observatory helped break it. Astronomers
00:06:40 --> 00:06:43 announced a tidal disruption event. That's
00:06:43 --> 00:06:45 the technical name for a black hole tearing a
00:06:45 --> 00:06:47 star apart and eating it. And the flare it
00:06:47 --> 00:06:50 produced was blazing briefly outshining its
00:06:50 --> 00:06:53 entire host galaxy in ultraviolet. Like
00:06:53 --> 00:06:56 10 billion suns switched on at once. But
00:06:56 --> 00:06:58 here's the thing. It didn't happen in the
00:06:58 --> 00:07:00 middle of the galaxy. It went off about
00:07:00 --> 00:07:03 30 light years out from the core.
00:07:03 --> 00:07:06 Anna: 30. That's not a rounding error.
00:07:06 --> 00:07:08 That's further from the center than the sun
00:07:08 --> 00:07:10 is from the middle of the Milky Way. That
00:07:10 --> 00:07:12 black hole is out in the suburbs.
00:07:13 --> 00:07:15 Avery: Way out in the suburbs. The event's called
00:07:15 --> 00:07:18 TDE 2025 ABCR
00:07:18 --> 00:07:21 in a Galaxy about 750 million light
00:07:21 --> 00:07:24 years away. And the teams one led out of
00:07:24 --> 00:07:27 NASA and the University of Maryland, another
00:07:27 --> 00:07:29 from UNC Chapel Hill, published it on
00:07:29 --> 00:07:32 27 July in the Astrophysical Journal
00:07:32 --> 00:07:35 Letters. It's the most off center tidal
00:07:35 --> 00:07:38 disruption ever seen. And what it reveals is
00:07:38 --> 00:07:40 a wandering black hole, a around a million
00:07:40 --> 00:07:42 times the mass of the sun, just roaming
00:07:42 --> 00:07:44 through its galaxy, nowhere near the core.
00:07:45 --> 00:07:47 Anna: How does a black hole end up out there? They
00:07:47 --> 00:07:49 don't exactly stroll.
00:07:49 --> 00:07:52 Avery: Best guess is a, uh, galaxy merger. When two
00:07:52 --> 00:07:54 galaxies collide and their central black
00:07:54 --> 00:07:57 holes get thrown together, one can get kicked
00:07:57 --> 00:07:58 out of the middle and left drifting.
00:07:59 --> 00:08:01 Theorists have predicted these wanderers for
00:08:01 --> 00:08:04 years. The problem is they're invisible. A
00:08:04 --> 00:08:06 black hole sitting quietly in the dark emits
00:08:06 --> 00:08:09 no light. You only ever attach one if it does
00:08:09 --> 00:08:10 something dramatic.
00:08:10 --> 00:08:13 Anna: Like grabbing a passing star and lighting up.
00:08:13 --> 00:08:15 Avery: Exactly. The star is the flashbulb. It
00:08:15 --> 00:08:18 wanders too close, gets shredded, and for a
00:08:18 --> 00:08:20 few weeks, the wreckage glows and gives the
00:08:20 --> 00:08:23 whole thing away. That's the only reason we
00:08:23 --> 00:08:25 know this black hole is there at all.
00:08:25 --> 00:08:27 Anna: And there's a lovely modern wrinkle to how
00:08:27 --> 00:08:30 they found it isn't there. This wasn't a
00:08:30 --> 00:08:31 human squinting at plates.
00:08:32 --> 00:08:34 Avery: Not a chance. The sky is too big for that
00:08:34 --> 00:08:36 now. The initial flare was picked up back in
00:08:36 --> 00:08:39 November 2025 by a survey at Palo are
00:08:39 --> 00:08:42 in California that scans the whole northern
00:08:42 --> 00:08:44 sky every couple of nights. It throws up
00:08:44 --> 00:08:47 something like half a million flashes every
00:08:47 --> 00:08:50 single night. So the team trained an AI to
00:08:50 --> 00:08:52 sift that fire hose and flag the ones that
00:08:52 --> 00:08:55 look like a tidal disruption. And it caught
00:08:55 --> 00:08:57 this one precisely because it was in a weird
00:08:57 --> 00:09:00 place off in the outskirts where nobody would
00:09:00 --> 00:09:02 have thought to look. Swift followed up to
00:09:02 --> 00:09:04 nail down the details.
00:09:04 --> 00:09:06 Anna: And that's the taste of what's coming, right?
00:09:06 --> 00:09:08 Once the big new survey telescopes are
00:09:08 --> 00:09:09 running.
00:09:09 --> 00:09:11 Avery: That's the real headline. Under the headline,
00:09:11 --> 00:09:14 with observatories like the Vera Rubin
00:09:14 --> 00:09:17 Observatory and UNC's Argus array coming
00:09:17 --> 00:09:19 online, we go from finding a handful of these
00:09:19 --> 00:09:22 a year to potentially hundreds or thousands.
00:09:22 --> 00:09:25 And suddenly all those invisible wandering
00:09:25 --> 00:09:27 black holes become findable. We're about to
00:09:27 --> 00:09:30 start taking a census of the galaxy's hidden
00:09:30 --> 00:09:32 monsters. And keep swip in mind, by the
00:09:32 --> 00:09:34 Anna: way, because it's going to come back to bite
00:09:34 --> 00:09:35 us later in the show.
00:09:36 --> 00:09:37 Avery: It is. Hold that thought.
00:09:37 --> 00:09:40 Anna: Speaking of survey telescopes about to change
00:09:40 --> 00:09:43 the game, let's talk about one that's now
00:09:43 --> 00:09:45 genuinely nearly on the
00:09:46 --> 00:09:48 NASA's Nancy Grace Roman Space
00:09:48 --> 00:09:51 Telescope, because as of this week, it is
00:09:51 --> 00:09:53 fueled and counting down.
00:09:53 --> 00:09:56 Avery: Fueled. That's a real milestone. That's not a
00:09:56 --> 00:09:58 slide in a presentation. That's propellant in
00:09:58 --> 00:09:59 the tank.
00:09:59 --> 00:10:01 Anna: Precisely. On the 25th of July,
00:10:02 --> 00:10:03 teams at, uh, Kennedy loaded around
00:10:04 --> 00:10:06 290 gallons of hydrazine into
00:10:06 --> 00:10:09 the observatory. That's the fuel it'll use to
00:10:09 --> 00:10:11 hold its position and point with real
00:10:11 --> 00:10:14 precision once it's out there. And NASA is
00:10:14 --> 00:10:16 holding its big mission preview briefing
00:10:16 --> 00:10:19 today, exactly one month out from launch.
00:10:20 --> 00:10:22 The date to circle is the 30th of August
00:10:22 --> 00:10:25 and remarkably, that's about eight months
00:10:25 --> 00:10:27 ahead of the original schedule.
00:10:27 --> 00:10:30 Avery: A NASA flagship running early and as
00:10:30 --> 00:10:32 I understand it, on budget. Let the record
00:10:32 --> 00:10:34 show it can be done.
00:10:34 --> 00:10:37 Anna: It can. And here's why Roman is worth
00:10:37 --> 00:10:40 the excitement. Think of it as a telescope
00:10:40 --> 00:10:42 with Hubble quality sharpness, but a jaw
00:10:42 --> 00:10:45 droppingly wide field of view. Something like
00:10:45 --> 00:10:48 a hundred times the patch of sky Hubble sees
00:10:48 --> 00:10:51 in a single shot. Bass estimate is that in
00:10:51 --> 00:10:53 its first five years, it could image more
00:10:53 --> 00:10:56 than 50 times as much sky as Hubble has
00:10:56 --> 00:10:59 in 30. It's built to survey fast and
00:10:59 --> 00:10:59 wide.
00:11:00 --> 00:11:02 Avery: And what's that actually hunting?
00:11:02 --> 00:11:05 Anna: Two headline jobs. One, dark Energy,
00:11:05 --> 00:11:07 the mystery. Pushing the universe apart
00:11:08 --> 00:11:10 faster and faster. Roman will map how
00:11:10 --> 00:11:13 cosmic structure has grown over billions of
00:11:13 --> 00:11:16 years to pin down what Dark Energy is
00:11:16 --> 00:11:19 actually doing. And two, this is the one
00:11:19 --> 00:11:21 I love. It's an exoplanet machine.
00:11:22 --> 00:11:25 Using a trick called microlensing, Roman
00:11:25 --> 00:11:27 is expected to find more than 100
00:11:27 --> 00:11:30 new planets and to catch hundreds of others
00:11:30 --> 00:11:32 in the very act of finding forming around
00:11:32 --> 00:11:33 young stars.
00:11:34 --> 00:11:36 Avery: 100. We do a story
00:11:36 --> 00:11:39 most weeks about one interesting new planet
00:11:39 --> 00:11:42 and Roman's going to hand us 100.
00:11:42 --> 00:11:45 Anna: It really might reset the whole field.
00:11:45 --> 00:11:48 And this is genuinely for everyone listening
00:11:48 --> 00:11:51 wherever you are. It's a space telescope,
00:11:51 --> 00:11:54 though there's no hemisphere that misses out.
00:11:54 --> 00:11:57 The whole planet shares this one. One
00:11:57 --> 00:11:57 month to go.
00:11:58 --> 00:11:59 Avery: Fingers crossed for the 30th of August.
00:12:00 --> 00:12:02 Right? I told you Swift would come back
00:12:02 --> 00:12:04 around. In story two, Swift was the hero,
00:12:05 --> 00:12:07 the observatory that helped us catch that
00:12:07 --> 00:12:10 wandering black hole. Well, here's the
00:12:10 --> 00:12:12 thing in the tale, Swift itself is in
00:12:12 --> 00:12:15 trouble and the spacecraft sent to save it
00:12:15 --> 00:12:17 is now in trouble too.
00:12:17 --> 00:12:20 Anna: Set it up. Why does Swift need saving in
00:12:20 --> 00:12:21 the first place?
00:12:21 --> 00:12:24 Avery: Because Swift is falling. It's a fantastic
00:12:24 --> 00:12:26 gamma ray and X ray observatory that's been
00:12:26 --> 00:12:29 working since 2004. But it has no
00:12:29 --> 00:12:31 engine of its own, no way to boost its own
00:12:31 --> 00:12:34 orbit, and its orbit has been decaying faster
00:12:34 --> 00:12:36 than expected, partly because heightened
00:12:36 --> 00:12:39 solar activity puffs up the upper atmosphere
00:12:39 --> 00:12:42 and increases the drag. Left alone,
00:12:42 --> 00:12:44 Swift is looking at an uncontrolled re entry
00:12:44 --> 00:12:46 by around the end of this year.
00:12:46 --> 00:12:49 Anna: So it burns up unless someone
00:12:49 --> 00:12:51 goes up and gives it a push.
00:12:51 --> 00:12:54 Avery: Which is exactly the plan. A company called
00:12:54 --> 00:12:56 Catalyst Space Technologies built a
00:12:56 --> 00:12:59 robotics servicing spacecraft named Link.
00:12:59 --> 00:13:01 And NASA hired them for what its own mission
00:13:01 --> 00:13:04 director called a fast, high risk, high
00:13:04 --> 00:13:07 reward rescue. Link launched on 3
00:13:07 --> 00:13:10 July, and the goal is genuinely a first
00:13:10 --> 00:13:13 to fly up, grab hold of Swift, a
00:13:13 --> 00:13:15 satellite that was never designed to be
00:13:15 --> 00:13:17 docked with or serviced and physically
00:13:17 --> 00:13:20 boosted into a higher, safer orbit.
00:13:20 --> 00:13:22 Nobody has ever commercially docked with a
00:13:22 --> 00:13:24 government spacecraft that wasn't built for
00:13:24 --> 00:13:25 it.
00:13:25 --> 00:13:28 Anna: That's ambitious. So what's gone wrong?
00:13:28 --> 00:13:31 Avery: Over the weekend, Link ran into an attitude
00:13:31 --> 00:13:33 control problem and started spinning with its
00:13:33 --> 00:13:36 communications dropping in and out. According
00:13:36 --> 00:13:39 to NASA's update, and I want to be precise
00:13:39 --> 00:13:41 here because this is developing, the
00:13:41 --> 00:13:44 preliminary finding is that two of Link's
00:13:44 --> 00:13:46 three reaction wheels are no longer working
00:13:46 --> 00:13:48 and, and there's some loss of function in its
00:13:48 --> 00:13:50 cold gas thruster system as well.
00:13:50 --> 00:13:53 Anna: Reaction wheels, Those are the spinning
00:13:53 --> 00:13:55 wheels inside a spacecraft that let it turn
00:13:55 --> 00:13:58 and hold steady without using fuel.
00:13:58 --> 00:14:01 Lose those and you lose fine control of which
00:14:01 --> 00:14:02 way you're pointing.
00:14:02 --> 00:14:05 Avery: That's the one. And losing two of three is
00:14:05 --> 00:14:07 serious, especially because there was already
00:14:07 --> 00:14:09 a wobble with one Wheel earlier in
00:14:09 --> 00:14:11 commissioning that they patched in software.
00:14:12 --> 00:14:14 The good news, Link is not lost. It's still
00:14:14 --> 00:14:17 powered, still in contact, and its other
00:14:17 --> 00:14:20 major systems are behaving. The team's plan
00:14:20 --> 00:14:22 is to use Link's electric thrusters, its
00:14:22 --> 00:14:25 xenon propulsion, to stop the spin over the
00:14:25 --> 00:14:27 next few days, then re establish stable
00:14:27 --> 00:14:30 pointing, update the spacecraft's guidance
00:14:30 --> 00:14:32 and navigation to work around the dead
00:14:32 --> 00:14:34 hardware, and only then sit, uh, down with
00:14:34 --> 00:14:37 NASA and decide whether it's still safe to
00:14:37 --> 00:14:39 attempt the approach and capture of Swift.
00:14:39 --> 00:14:42 Anna: So the rescue isn't canceled, it's on
00:14:42 --> 00:14:45 hold while they figure out if the rescuer can
00:14:45 --> 00:14:46 still do the job.
00:14:47 --> 00:14:49 Avery: That's exactly it. And I'll flag for
00:14:49 --> 00:14:51 everyone. This is a life situation as of when
00:14:51 --> 00:14:54 we're recording. By the time you hear this,
00:14:54 --> 00:14:56 the team may already have stopped a spin or
00:14:56 --> 00:14:59 the picture may have changed again. But step
00:14:59 --> 00:15:01 back and look at the shape of it. The same
00:15:01 --> 00:15:03 little observatory that just helped us find
00:15:03 --> 00:15:06 an invisible black hole halfway across the
00:15:06 --> 00:15:08 universe is now clinging on in low Earth
00:15:08 --> 00:15:11 orbit, waiting to see if its own lifeboat can
00:15:11 --> 00:15:14 limp over and give it a shovel. Space is
00:15:14 --> 00:15:16 hard. Even the rescue missions need rescuing.
00:15:17 --> 00:15:19 Anna: We'll keep you posted as that one develops.
00:15:19 --> 00:15:22 And that brings us to the sky over the next
00:15:22 --> 00:15:24 few nights. And there's one thing you cannot
00:15:24 --> 00:15:27 miss, because it's going to be lighting up
00:15:27 --> 00:15:29 the whole night. The moon.
00:15:29 --> 00:15:31 Avery: The full buck moon.
00:15:31 --> 00:15:34 Anna: The full buck moon. Full tonight, the
00:15:34 --> 00:15:37 29th, and near enough to 100%
00:15:37 --> 00:15:39 lit for a couple of nights either side.
00:15:40 --> 00:15:42 Gorgeous to look at as it climbs the eastern
00:15:42 --> 00:15:45 sky after sunset. But it is a
00:15:45 --> 00:15:48 floodlight and that shapes everything else we
00:15:48 --> 00:15:49 can and can't
00:15:49 --> 00:15:51 Avery: do this week, starting with the meteors,
00:15:51 --> 00:15:53 because there are three showers on the go at
00:15:53 --> 00:15:53 once.
00:15:54 --> 00:15:56 Anna: There are. And this is where our two
00:15:56 --> 00:15:59 hemispheres genuinely differ. The headline
00:15:59 --> 00:16:01 shower right now is the Southern Delta
00:16:01 --> 00:16:04 Aquarius, peaking over the next couple of
00:16:04 --> 00:16:06 nights. And the clue is in the name of. For
00:16:06 --> 00:16:09 our Southern Hemisphere listeners, this one's
00:16:09 --> 00:16:12 yours. The radiant over near the bright star
00:16:12 --> 00:16:14 Fomalhaut rides high almost
00:16:14 --> 00:16:17 overhead in the pre dawn hours. So from
00:16:17 --> 00:16:20 Australia, New Zealand and southern Africa,
00:16:20 --> 00:16:23 you're in the best seats on Earth for it.
00:16:23 --> 00:16:26 And for the north, from North America,
00:16:26 --> 00:16:29 it's lower and stingier, though observers
00:16:29 --> 00:16:31 in the southern United States still get a
00:16:31 --> 00:16:34 fair look. Best window everywhere is
00:16:34 --> 00:16:36 the couple of hours before dawn. But
00:16:37 --> 00:16:39 big caveat, this year, that brilliant
00:16:39 --> 00:16:42 moon is going to wash out most of the faint
00:16:42 --> 00:16:45 Delta Aquarids. So temper expectations.
00:16:45 --> 00:16:47 Avery: If the faint ones are drowned out, what's
00:16:47 --> 00:16:48 worth staying up for?
00:16:49 --> 00:16:51 Anna: The fireballs. The Alpha Capricornids
00:16:51 --> 00:16:54 are active at the same time. They're sparse,
00:16:54 --> 00:16:57 only a handful an hour. But they specialize
00:16:57 --> 00:17:00 in slow, brilliant fireballs bright enough
00:17:00 --> 00:17:03 to punch through moonlight. And unlike the
00:17:03 --> 00:17:05 Delta Aquarids, the Capricornids play
00:17:05 --> 00:17:08 fair. They're just as good from either
00:17:08 --> 00:17:10 hemisphere. So the tip for everyone this
00:17:10 --> 00:17:13 week, don't chase quantity. Get
00:17:13 --> 00:17:16 comfortable, be patient and wait for
00:17:16 --> 00:17:19 one big slow fireball to make your
00:17:19 --> 00:17:19 night.
00:17:19 --> 00:17:22 Avery: And the shower, everyone's really waiting for
00:17:22 --> 00:17:23 the Perseids.
00:17:23 --> 00:17:25 Anna: And here's the good news to hold onto.
00:17:26 --> 00:17:28 They're building now, but they peak on the
00:17:28 --> 00:17:31 night of the 12th into the 13th of August.
00:17:31 --> 00:17:34 And this year the timing is close to perfect.
00:17:35 --> 00:17:37 The peak lands right on the New Moon.
00:17:37 --> 00:17:40 Dark skies, no moonlight.
00:17:40 --> 00:17:42 Potentially the best Perseids in years.
00:17:43 --> 00:17:45 They favor the northern Hemisphere, but mid
00:17:45 --> 00:17:48 southern latitudes will catch some too. Mark
00:17:48 --> 00:17:51 it. The night of 12 August is the one to
00:17:51 --> 00:17:52 keep clear.
00:17:52 --> 00:17:54 Avery: And that same date is a big one for another
00:17:54 --> 00:17:55 reason.
00:17:55 --> 00:17:58 Anna: It is a, uh, total solar eclipse on
00:17:58 --> 00:18:01 12 August, with the path of totality
00:18:01 --> 00:18:04 crossing Greenland, Iceland and slice of
00:18:04 --> 00:18:07 Spain, and a partial eclipse visible across
00:18:07 --> 00:18:09 much of Europe and parts of North America.
00:18:09 --> 00:18:12 We'll have full timings closer to the day.
00:18:12 --> 00:18:14 And the one rule that never changes
00:18:14 --> 00:18:17 wherever you are, never look at the
00:18:17 --> 00:18:20 partial phases of a solar eclipse. Without
00:18:20 --> 00:18:23 certified eclipse glasses, ISO
00:18:23 --> 00:18:26
00:18:26 --> 00:18:28 or a properly filtered telescope.
00:18:28 --> 00:18:31 Ordinary sunglasses will not protect your
00:18:31 --> 00:18:34 eyes. That safety line stays in.
00:18:34 --> 00:18:35 No exceptions.
00:18:36 --> 00:18:38 Avery: One quick planet note before we wrap the sky.
00:18:38 --> 00:18:41 Anna: Yes, say goodbye to Jupiter for a
00:18:41 --> 00:18:44 little while. Today the 29th
00:18:44 --> 00:18:47 Jupiter reaches solar conjunction. It's
00:18:47 --> 00:18:49 passing almost directly behind the sun from
00:18:49 --> 00:18:52 our point of view, so it's lost in the glare
00:18:52 --> 00:18:54 and out of action for the next few weeks.
00:18:54 --> 00:18:57 It'll creep back as a pre dawn object
00:18:57 --> 00:19:00 later in August. And for early risers,
00:19:00 --> 00:19:02 Mercury is putting on its best morning
00:19:02 --> 00:19:05 showing of the season, low in the pre dawn
00:19:05 --> 00:19:06 east,
00:19:06 --> 00:19:08 Avery: and we have to close the loop on our lead
00:19:08 --> 00:19:08 story.
00:19:09 --> 00:19:12 Anna: We do. If you're up before dawn chasing
00:19:12 --> 00:19:15 those meteors, look for Orion climbing in
00:19:15 --> 00:19:18 the east and find Betelgeuse, that bright
00:19:18 --> 00:19:20 orange shoulder from the southern hemisphere.
00:19:20 --> 00:19:23 It's high in the northern sky and flipped
00:19:23 --> 00:19:25 over from the north. It's lower in the east
00:19:25 --> 00:19:28 before sunrise. Either way, give it a nod.
00:19:29 --> 00:19:31 You now know something about that star that
00:19:31 --> 00:19:33 nobody knew for a hundred years.
00:19:34 --> 00:19:36 It's got a companion before we go,
00:19:36 --> 00:19:39 Avery: a bit of proper news from our end. We've just
00:19:39 --> 00:19:41 launched the brand new home for the show
00:19:41 --> 00:19:41 astronomydaily.
00:19:41 --> 00:19:44 Anna: Uh, IO same
00:19:44 --> 00:19:46 address you already know, but it's had a
00:19:46 --> 00:19:49 complete makeover and there's a lot there.
00:19:49 --> 00:19:51 Now you can stream the entire back catalog
00:19:52 --> 00:19:54 every episode. There's a news feed that
00:19:54 --> 00:19:56 updates continuously through the day so you
00:19:56 --> 00:19:58 can keep up with the latest space and
00:19:58 --> 00:20:01 astronomy headlines between episodes. You can
00:20:01 --> 00:20:03 read listener reviews and leave one of your
00:20:03 --> 00:20:05 own. And you can sign up for uh, our daily
00:20:05 --> 00:20:07 Space News newsletter to get it all straight
00:20:07 --> 00:20:08 to your inbox.
00:20:09 --> 00:20:10 Avery: And there's a spot to drop us a line,
00:20:10 --> 00:20:13 questions, suggestions, a story you think
00:20:13 --> 00:20:15 we've missed, or just to say good day, we
00:20:15 --> 00:20:16 read them.
00:20:16 --> 00:20:18 Anna: It's brand new, so we genuinely love your
00:20:18 --> 00:20:21 feedback on it. Head to astronomydaily
00:20:21 --> 00:20:24 IO have a wander around and tell us what you
00:20:24 --> 00:20:26 think, what you love, what you change. Help
00:20:26 --> 00:20:27 us make it yours.
00:20:28 --> 00:20:30 Avery: That's astronomy daily for Wednesday, 29th of
00:20:30 --> 00:20:33 July. Betelgeuse's Hundred Year Secret
00:20:33 --> 00:20:36 A black hole in the wrong part of town, Roman
00:20:36 --> 00:20:39 on the clock and a rescue mission holding its
00:20:39 --> 00:20:39 breath.
00:20:39 --> 00:20:41 Anna: Thanks for spending part of your day with us.
00:20:41 --> 00:20:44 Look after each other and whichever
00:20:44 --> 00:20:45 hemisphere you're in.
00:20:45 --> 00:20:46 Avery: Clear skies.


