There's Something Molten Under Mars's South Pole
Astronomy Daily: Latest Space NewsSeptember 02, 2026x
183
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There's Something Molten Under Mars's South Pole

Today's episode — S05E183, Wednesday September 2, 2026: Main story: A thermal anomaly beneath Mars's south pole. Writing in Nature on August 27, a team led by Alexander Berne (Caltech PhD '26, now University of Arizona) reports that the interior of Mars's southern hemisphere is 200–400 °C hotter than the northern hemisphere and partially molten. The team used tidal tomography — measuring how much the solid body of Mars flexes under the Sun's tidal pull by tracking minute velocity changes in three orbiters (Mars Global Surveyor, Mars Odyssey and Mars Reconnaissance Orbiter) across roughly 25 years of radio tracking data. Hotter, softer rock deforms more, so the degree of flex reveals interior temperature. The result offers a deep-interior explanation for the Martian crustal dichotomy — the sharp division between the smooth low northern plains and the ancient, thickly crusted southern highlands, unexplained since the Viking era — and also accounts for the concentration of crustal magnetic anomalies in the south and the unexpectedly strong seismic-wave damping seen by InSight. The cause of the asymmetry remains open: a giant early impact, lopsided mantle convection, or a heat-trapping compositional layer. Co-authors span Brown University, NASA Goddard, the University of Arizona, Academia Sinica, the University of Rome, TU Delft, UCLA, UT Austin, CU Boulder and UC Santa Cruz. Crew-13 stands down. NASA and SpaceX announced on August 29 that an oxidizer leak had been found in the Dragon spacecraft's propulsion system during standard prelaunch processing, delaying the Crew-13 launch from its September 12 target. Teams are performing additional tests and data review and will complete any necessary rework before flight; a new target date will be announced once available. The crew is commander Jessica Watkins (NASA), pilot Luke Delaney (NASA), and mission specialists Joshua Kutryk (CSA) and Sergey Teteryatnikov (Roscosmos), flying an approximately seven-month increment with significant station maintenance and several spacewalks planned. Swift is observing again. NASA's Neil Gehrels Swift Observatory restarted science operations on August 26, with two of its three instruments back online and the third expected within weeks. Swift's telescopes had been powered down progressively — the ultraviolet/optical and X-ray telescopes in February, the Burst Alert Telescope in April — to reduce power draw and atmospheric drag while awaiting a boost from Katalyst Space's LINK spacecraft, launched in July. NASA announced on August 19 that LINK would not attempt the capture after developing attitude-control problems. With no rescue coming, NASA has restarted the instruments to extract as much science as possible. NASA expects Swift to fall below roughly 300 km (185 miles) — where telescope operations become impractical — within the next one to two months. Katalyst will still fly proximity operations to demonstrate in-orbit servicing techniques. An 80,000-year mission to Alpha Centauri. The Seattle-area nonprofit Fermi Explorer Mission announced plans to launch a 100–200 kg probe toward Alpha Centauri (4.4 light-years away) at the end of 2029, most likely on a SpaceX rideshare. Solar electric propulsion plus repeated perihelion pumping manoeuvres would build a cruise speed of 24.2 km/s (about 54,000 mph) — faster than New Horizons at Pluto — for a journey of roughly 80,000 years: 12 years of active operations followed by around 79,500 years of coasting. Budget is under $15 million, with $10 million verbally pledged. Payload is at least 1 kg in a shielded 10 cm cube, including a digitised Voyager Golden Record, messages from children worldwide, and cosmic-ray detectors. Co-founders Philip Johnston, Ezra Feilden and Adi Oltean are behind the space computing company Starcloud; the advisory board includes Rob Meyerson (former Blue Origin president) and Jeff Thornburg (former SpaceX propulsion lead). Johnston: "We'll be the first to leave, and the last to arrive." It would be the first spacecraft deliberately aimed at a specific star. Tonight's sky and the month ahead: Five naked-eye planets are in play through September. Venus dominates the early evening, low in the west/west-southwest about 14° up an hour after sunset (Sydney sunset ≈ 5:34pm AEST), still close to Spica after last night's conjunction, and building to maximum brilliance on September 18 — with a thin crescent Moon alongside on the 14th. Saturn is up most of the night at magnitude +0.4 with its rings tilted just 8° from edge-on, the narrowest in about a dozen years, and rides far higher for Southern Hemisphere observers than for northern ones. Mars rises around 1:40am and is slowly brightening; Jupiter rises east-northeast around 3:50am, and on September 8 the Moon occults Jupiter for much of North America. Mercury appears low in evening twilight in the final week, about 1° above Spica on the 25th. The Moon is a waning gibbous heading to last quarter on September 4. Also this month: International Observe the Moon Night on the 19th, the equinox on the 22nd, and a Harvest Moon near Saturn on the 26th. Standing reminder: any solar filter must be certified to ISO 12312-2. Links & sources: Caltech — Thermal Anomaly Discovered Below Mars's South Pole (Aug 28) Nature — "Tidal Tomography Reveals a Thermal Anomaly Beneath Mars's Crustal Dichotomy", Berne et al. (Aug 27) Phys.org — Thermal anomaly discovered below Mars' south pole Space.com — Scientists discover massive underground 'thermal anomaly' on Mars NASA Space Station Blog — NASA, SpaceX Adjust Crew-13 Launch Date (Aug 29) Space.com — SpaceX, NASA delay next astronaut launch to ISS due to leak on Dragon spacecraft NASA Swift Blog — NASA's Swift Restarts Science Observations (Aug 28) Space.com — NASA's Swift space telescope resumes observations after failed orbital rescue attempt (Aug 31) GeekWire — Fermi Explorer team plans 80,000-year trip to Alpha Centauri (Sept 1) Space.com — Nonprofit wants to launch 80,000-year mission to Alpha Centauri in 2029 (Sept 1) MIT Technology Review — How AI plotted an interstellar journey to Alpha Centauri (Sept 1) NASA Science — What's Up: September 2026 Skywatching Tips Space.com — 5 planets will light up the September sky Follow us: @AstroDailyPod

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This episode includes AI-generated content.


00:00:00 --> 00:00:03 Anna: Hey, everyone. Welcome back to Astronomy

00:00:03 --> 00:00:05 daily. It's Wednesday, September 2nd,

00:00:05 --> 00:00:08 series five, episode 183.

00:00:08 --> 00:00:11 Avery: And today we've got a genuinely lovely piece

00:00:11 --> 00:00:13 of planetary science to lead with, which

00:00:13 --> 00:00:14 doesn't happen every day.

00:00:15 --> 00:00:16 Anna: It really is a good one.

00:00:17 --> 00:00:19 There's something hot buried under Mars's

00:00:19 --> 00:00:21 south pole. And I mean that literally.

00:00:22 --> 00:00:23 Avery: Bolton.

00:00:23 --> 00:00:26 Anna: Even Bolton. A new Nature

00:00:26 --> 00:00:28 paper says the southern half of Mars's

00:00:28 --> 00:00:30 interior is hundreds of degrees hotter than

00:00:30 --> 00:00:33 the northern half. And it might finally

00:00:33 --> 00:00:35 explain the single weirdest thing about that

00:00:35 --> 00:00:36 planet.

00:00:36 --> 00:00:39 Avery: Then Crew 13 is standing down after a leak

00:00:39 --> 00:00:42 turned up in Dragon. NASA's Swift telescope

00:00:42 --> 00:00:45 is observing again, but now it's in a race

00:00:45 --> 00:00:47 with the atmosphere. And the Seattle

00:00:47 --> 00:00:49 nonprofit wants to launch a spacecraft to

00:00:49 --> 00:00:52 Alpha Centauri that won't arrive for

00:00:52 --> 00:00:53 80 years.

00:00:53 --> 00:00:55 Anna: They're aware of that, by the way. That's the

00:00:55 --> 00:00:55 pitch.

00:00:56 --> 00:00:59 Avery: That is very much the pitch. Then we'll get

00:00:59 --> 00:01:02 you sorted for tonight's sky. Five planets

00:01:02 --> 00:01:04 are in play this month. North and south.

00:01:04 --> 00:01:05 Anna: Let's get into it.

00:01:06 --> 00:01:09 Avery: Okay, Set this up properly for me because I

00:01:09 --> 00:01:11 want to understand what was actually found.

00:01:11 --> 00:01:13 Anna: So this is a paper published in nature on

00:01:13 --> 00:01:16 August 27, titled, and I love

00:01:16 --> 00:01:19 this title. Title. Tomography Reveals a

00:01:19 --> 00:01:22 Thermal anomaly beneath Mars's Crustal

00:01:22 --> 00:01:24 Dichotomy. Lead author is Alexander

00:01:24 --> 00:01:27 Byrne, who did this as his PhD work at

00:01:27 --> 00:01:30 Caltech and has just moved to the University

00:01:30 --> 00:01:31 of Arizona.

00:01:31 --> 00:01:33 Avery: And the finding, in one sentence, the

00:01:33 --> 00:01:36 Anna: inside of Mars's southern hemisphere is

00:01:36 --> 00:01:39 somewhere between 200 and 400

00:01:39 --> 00:01:42 degrees Celsius, hotter than the inside of

00:01:42 --> 00:01:44 its northern hemisphere and parts of it are

00:01:44 --> 00:01:46 partially molten.

00:01:46 --> 00:01:49 Avery: Two to 400 degrees is not a

00:01:49 --> 00:01:50 subtle difference.

00:01:50 --> 00:01:53 Anna: It's enormous. This isn't a hot spot or

00:01:53 --> 00:01:56 a plume. This is one half of a planet's

00:01:56 --> 00:01:59 interior running fundamentally hotter than

00:01:59 --> 00:02:01 the other half and staying that way over

00:02:01 --> 00:02:02 geologic time.

00:02:03 --> 00:02:04 Avery: Before we get to how they measured that,

00:02:05 --> 00:02:06 explain the thing it might solve.

00:02:06 --> 00:02:09 You said the weirdest thing about Mars,

00:02:09 --> 00:02:12 Anna: the Martian crustal dichotomy. If

00:02:12 --> 00:02:14 you've ever looked at one of those false

00:02:14 --> 00:02:16 colour topographic maps of Mars, you'll have

00:02:16 --> 00:02:19 seen it immediately, even if nobody named it

00:02:19 --> 00:02:21 for you. The northern third of the planet is

00:02:21 --> 00:02:24 smooth, low lying, young looking plains.

00:02:24 --> 00:02:27 The southern two thirds is high, ancient,

00:02:27 --> 00:02:30 heavily cratered highlands on crust that's

00:02:30 --> 00:02:33 substantially thicker. And the boundary

00:02:33 --> 00:02:36 between them is remarkably sharp, a step

00:02:36 --> 00:02:38 of several kilometres in elevation in places.

00:02:39 --> 00:02:40 Avery: How long has that been sitting there,

00:02:40 --> 00:02:41 unexplained?

00:02:41 --> 00:02:44 Anna: It's sitting there since the Viking orbiters

00:02:44 --> 00:02:46 mapped it in the 70s. 50 years

00:02:47 --> 00:02:49 it's genuinely one of the oldest open

00:02:49 --> 00:02:51 questions in planetary science.

00:02:52 --> 00:02:54 Avery: So it's not just a surface feature, it goes

00:02:54 --> 00:02:54 deep.

00:02:55 --> 00:02:57 Anna: That's the point of this paper. The dichotomy

00:02:57 --> 00:03:00 isn't paint on the outside. The it appears to

00:03:00 --> 00:03:02 have a matching structure hundreds of

00:03:02 --> 00:03:05 kilometres down in the mantle. The hemisphere

00:03:05 --> 00:03:08 that looks different on the surface is also

00:03:08 --> 00:03:10 the hemisphere that's hotter underneath.

00:03:10 --> 00:03:13 Avery: Okay, so how do you take the temperature of

00:03:13 --> 00:03:15 another planet? We've got exactly one

00:03:15 --> 00:03:17 seismometer that's ever operated on Mars and

00:03:17 --> 00:03:18 it's dead now.

00:03:19 --> 00:03:21 Anna: This is the part I find really clever.

00:03:21 --> 00:03:24 They didn't use seismology at all. They used

00:03:24 --> 00:03:27 the fact that Mars flexes. Lex's

00:03:27 --> 00:03:30 Howe the sun pulls on Mars the way

00:03:30 --> 00:03:33 the moon pulls on Earth's oceans, tides.

00:03:33 --> 00:03:36 Mars has no oceans. But the whole solid

00:03:36 --> 00:03:38 planet still stretches and relaxes

00:03:39 --> 00:03:42 very slightly on every orbit. And how much

00:03:42 --> 00:03:45 it flexes depends on what it's made of and

00:03:45 --> 00:03:47 critically, how hot and soft its interior

00:03:47 --> 00:03:50 is. Hot, partially molten rock

00:03:50 --> 00:03:53 deforms more easily than cold rigid rock.

00:03:53 --> 00:03:55 Avery: So the amount of squish tells you

00:03:55 --> 00:03:58 Anna: the temperature, the amount of squish tells

00:03:58 --> 00:04:01 you the temperature. It's a tiny effect, but

00:04:01 --> 00:04:03 a planet that changes shape has a gravity

00:04:03 --> 00:04:06 field that changes with it. And we've had

00:04:06 --> 00:04:09 spacecraft orbiting Mars continuously for

00:04:09 --> 00:04:12 decades, all tracked by radio from Earth.

00:04:12 --> 00:04:15 Avery: So the spacecraft are the instrument, the

00:04:15 --> 00:04:18 Anna: spacecraft are the instrument. Burns team

00:04:18 --> 00:04:20 went back through tracking data from Mars

00:04:20 --> 00:04:23 Global Surveyor, Mars Odyssey and Mars

00:04:23 --> 00:04:26 Reconnaissance Orbiter. 25 years of it,

00:04:26 --> 00:04:29 looking at the minute velocity changes as

00:04:29 --> 00:04:31 each one flew over different parts of the

00:04:31 --> 00:04:34 planet. Those wiggles map the gravity field.

00:04:34 --> 00:04:36 And the way that field breathes across a

00:04:36 --> 00:04:38 martian year maps the flex.

00:04:39 --> 00:04:41 Avery: And nobody had done that before, not

00:04:41 --> 00:04:44 Anna: to this resolution and not with the aim of

00:04:44 --> 00:04:46 separating one hemisphere from the other.

00:04:46 --> 00:04:49 That's what the tomography in the title is

00:04:49 --> 00:04:51 doing. Same word as a medical CT scan.

00:04:51 --> 00:04:54 Roughly the same idea. Lots of measurements

00:04:54 --> 00:04:57 from lots of angles reconstructed into a

00:04:57 --> 00:04:58 picture of the inside.

00:04:59 --> 00:05:02 Avery: 25 years of data collected by missions

00:05:02 --> 00:05:03 that weren't launched to do this.

00:05:04 --> 00:05:06 Anna: Mars Global surveyor launched in

00:05:06 --> 00:05:09 1996 and stopped talking to us in

00:05:09 --> 00:05:11 2006. And its tracking data is still

00:05:11 --> 00:05:14 producing new results 20 years later.

00:05:14 --> 00:05:17 It's a good argument for archiving everything

00:05:17 --> 00:05:19 forever. And this is a big international

00:05:20 --> 00:05:22 effort. Co authors across Brown,

00:05:22 --> 00:05:25 NASA Goddard, Arizona, Academia

00:05:25 --> 00:05:28 Sinica in Taiwan, the University of Rome,

00:05:28 --> 00:05:31 Delft, ucla, UT Austin,

00:05:31 --> 00:05:34 Colorado, Boulder and UC Santa Cruz.

00:05:34 --> 00:05:37 Avery: So what else does this hot southern interior

00:05:37 --> 00:05:37 explain?

00:05:38 --> 00:05:40 Anna: Two things that have been nagging at people.

00:05:40 --> 00:05:43 First, magnetism. Mars has no global

00:05:43 --> 00:05:46 magnetic field today. But the crust is

00:05:46 --> 00:05:49 magnetised in patches, frozen in evidence

00:05:49 --> 00:05:51 of a field that switched off billions of

00:05:51 --> 00:05:53 years ago. And those anomalies are

00:05:53 --> 00:05:56 overwhelmingly concentrated in the southern

00:05:56 --> 00:05:58 highlands. A hemisphere with a, uh, different

00:05:58 --> 00:06:00 thermal history from the start would

00:06:00 --> 00:06:02 magnetise differently and hold that record

00:06:02 --> 00:06:03 differently.

00:06:03 --> 00:06:04 Avery: And the second.

00:06:05 --> 00:06:08 Anna: The second seismic, when Insight was

00:06:08 --> 00:06:10 operating its seismometer, found waves

00:06:10 --> 00:06:13 passing through parts of Mars interior were

00:06:13 --> 00:06:15 damped from far more strongly than expected.

00:06:16 --> 00:06:18 Waves lose energy fast in hot soft

00:06:18 --> 00:06:21 material. Exactly what partially molten

00:06:21 --> 00:06:23 rock down there would produce.

00:06:23 --> 00:06:26 Avery: So it's not one line of evidence. It makes

00:06:26 --> 00:06:27 three separate puzzles line up.

00:06:28 --> 00:06:31 Anna: That's what makes it feel solid. Any one

00:06:31 --> 00:06:33 on its own you'd want it replicated. All, ah,

00:06:33 --> 00:06:35 three pointing the same way is more

00:06:35 --> 00:06:36 persuasive.

00:06:37 --> 00:06:39 Avery: Do we know why the southern half ended up

00:06:39 --> 00:06:39 hotter?

00:06:40 --> 00:06:42 Anna: Oh, and the team is upfront about that. Three

00:06:42 --> 00:06:45 families of explanation. One, a, uh, giant

00:06:45 --> 00:06:48 impact early in Mars's history. Something

00:06:48 --> 00:06:50 enormous hitting the northern hemisphere,

00:06:50 --> 00:06:53 blasting out the lowlands and rearranging the

00:06:53 --> 00:06:56 interior. Two, mantle convection that

00:06:56 --> 00:06:58 settled into a lopsided pattern and stayed

00:06:58 --> 00:07:01 there. Which planetary interiors genuinely

00:07:01 --> 00:07:04 can do. Three, something compositional.

00:07:04 --> 00:07:06 A layer enriched in radioactive elements

00:07:06 --> 00:07:08 generating its own heat.

00:07:08 --> 00:07:10 Avery: And this result doesn't pick between them.

00:07:11 --> 00:07:13 Anna: Not yet. What it does is hand you a hard

00:07:13 --> 00:07:16 number. Every explanation now has to

00:07:16 --> 00:07:18 reproduce. Before this, why is Mars

00:07:18 --> 00:07:21 lopsided? Was mostly a surface geology

00:07:21 --> 00:07:24 question. Now it's a question about the whole

00:07:24 --> 00:07:26 planet with a temperature constraint

00:07:26 --> 00:07:26 attached.

00:07:27 --> 00:07:29 Avery: Does this connect to the water storey? That's

00:07:29 --> 00:07:31 usually where Mars questions, um, end up.

00:07:31 --> 00:07:34 Anna: It does. And it's the line from the team I

00:07:34 --> 00:07:37 keep coming back to. The dichotomy matters

00:07:37 --> 00:07:39 because it tells you about the processes that

00:07:39 --> 00:07:41 shaped the hydrology of Mars, including the

00:07:41 --> 00:07:44 formation of the basins that may have held

00:07:44 --> 00:07:47 water. Those northern lowlands are exactly

00:07:47 --> 00:07:49 where you'd put an ancient ocean, if Mars

00:07:49 --> 00:07:52 ever had one. So whatever made the north low

00:07:52 --> 00:07:55 may also have decided where the water went.

00:07:55 --> 00:07:57 Avery: And, um, there's a nice bit of symmetry for

00:07:57 --> 00:07:58 us, isn't there?

00:07:58 --> 00:08:01 Anna: There is. We're a show made in the southern

00:08:01 --> 00:08:03 hemisphere that spends a lot of time

00:08:03 --> 00:08:05 explaining why the southern sky is the

00:08:05 --> 00:08:08 interesting one. Turns out Mars southern

00:08:08 --> 00:08:11 hemisphere is the interesting one too. It's

00:08:11 --> 00:08:13 just interesting several hundred kilometres

00:08:13 --> 00:08:13 down.

00:08:14 --> 00:08:16 Avery: Anything coming that would test this further?

00:08:17 --> 00:08:19 Anna: More of the same. The tracking data keeps

00:08:19 --> 00:08:21 accumulating as long as we keep flying

00:08:21 --> 00:08:23 orbiters. And the technique sharpens the

00:08:23 --> 00:08:25 longer the baseline gets. A second

00:08:25 --> 00:08:28 seismometer on Mars would help enormously.

00:08:28 --> 00:08:31 But there isn't one funded in flying in the

00:08:31 --> 00:08:33 meantime. This is a very good example of

00:08:33 --> 00:08:36 squeezing genuinely new physics out of data.

00:08:36 --> 00:08:39 Avery: We already had storey two and

00:08:39 --> 00:08:40 it's a stand down.

00:08:40 --> 00:08:43 Anna: Crew 13 was scheduled to launch to the

00:08:43 --> 00:08:45 International space station on September

00:08:45 --> 00:08:48 12th. It's not launching on September

00:08:48 --> 00:08:50 12th. NASA and SpaceX announced on

00:08:50 --> 00:08:53 August 29th that they'd found an oxidizer

00:08:53 --> 00:08:56 leak in the Dragon spacecraft's propulsion

00:08:56 --> 00:08:59 system during standard pre launch processing.

00:08:59 --> 00:09:01 Avery: Standard processing meaning caught on the

00:09:01 --> 00:09:03 ground doing the cheques you do?

00:09:03 --> 00:09:06 Anna: Exactly. And that's worth saying, clearly,

00:09:06 --> 00:09:09 because Leak found on crew spacecraft

00:09:09 --> 00:09:12 reads alarming in a headline. This was the

00:09:12 --> 00:09:14 process working the way it's supposed to.

00:09:14 --> 00:09:16 Teams are running additional tests and data

00:09:16 --> 00:09:19 reviews and will do any rework needed before

00:09:19 --> 00:09:21 flight. No new target date yet.

00:09:22 --> 00:09:25 Avery: Why is an oxidizer leak, specifically a, uh,

00:09:25 --> 00:09:26 stop everything item?

00:09:26 --> 00:09:28 Anna: Because of what the Dragon's propulsion

00:09:28 --> 00:09:31 system is for and what's in it. Dragon

00:09:31 --> 00:09:34 runs hypergolic propellants, a fuel and

00:09:34 --> 00:09:37 an oxidizer that ignite on contact with each

00:09:37 --> 00:09:40 other. No spark needed. Fantastically

00:09:40 --> 00:09:42 reliable, which is exactly why you use it on

00:09:42 --> 00:09:45 a crew vehicle. But the oxidizer side is

00:09:45 --> 00:09:48 aggressively corrosive and you handle it with

00:09:48 --> 00:09:50 enormous care. And that propulsion system

00:09:50 --> 00:09:53 isn't just for manoeuvring. The same broad

00:09:53 --> 00:09:56 system family is tied to the launch escape

00:09:56 --> 00:09:58 capability, the thing that pulls the capsule

00:09:58 --> 00:10:00 off a failing rocket.

00:10:00 --> 00:10:03 Avery: So the bar for signing it off is about as

00:10:03 --> 00:10:03 high as it gets.

00:10:04 --> 00:10:07 Anna: Nobody is flying this until they can explain

00:10:07 --> 00:10:09 precisely where the leak was and why it won't

00:10:09 --> 00:10:12 happen again. Who's on this Crew

00:10:12 --> 00:10:14 commander is NASA's Jessica Watkins,

00:10:15 --> 00:10:18 pilot is NASA's Luke Delany. And the two

00:10:18 --> 00:10:20 mission specialists are Joshua Kutryk from

00:10:20 --> 00:10:23 the Canadian Space Agency and Sergey

00:10:23 --> 00:10:26 Tetrietnikov from Roscosmos. It's

00:10:26 --> 00:10:28 a roughly seven month increment. A lot of

00:10:28 --> 00:10:30 station maintenance. Several spacewalks

00:10:30 --> 00:10:32 planned the usual science load

00:10:33 --> 00:10:34 Avery: and, um, they'd be walking into a station

00:10:34 --> 00:10:37 that's just had a very busy month. We talked

00:10:37 --> 00:10:40 Yesterday about Expedition 75 running

00:10:40 --> 00:10:42 four spacewalks inside four weeks,

00:10:42 --> 00:10:43 which is

00:10:43 --> 00:10:46 Anna: exactly the backlog Crew 13's own

00:10:46 --> 00:10:48 task list was built on top of.

00:10:48 --> 00:10:50 Avery: Does a delay cause knock on problems?

00:10:50 --> 00:10:53 Anna: Station handovers are a chain. Rotations

00:10:53 --> 00:10:55 overlap deliberately, so there's always

00:10:56 --> 00:10:58 experienced crew aboard and a slip at one end

00:10:58 --> 00:11:01 compresses things at the other. NASA hasn't

00:11:01 --> 00:11:04 flagged any concern beyond the launch date

00:11:04 --> 00:11:06 itself, so read that as manageable for

00:11:06 --> 00:11:07 now.

00:11:07 --> 00:11:09 Avery: When do we expect a new date?

00:11:09 --> 00:11:12 Anna: Unknown. And it depends entirely on what the

00:11:12 --> 00:11:15 inspections find, a fitting or A seal is a

00:11:15 --> 00:11:17 fix measured in days. Something in the

00:11:17 --> 00:11:20 plumbing that needs the system opened up is

00:11:20 --> 00:11:23 longer. NASA's line is that a new target will

00:11:23 --> 00:11:25 be announced once available, and we'll flag

00:11:25 --> 00:11:26 it the moment it lands.

00:11:27 --> 00:11:29 Avery: Storey three closes a loop. We opened a

00:11:29 --> 00:11:31 couple of weeks back and it's a better ending

00:11:31 --> 00:11:32 than I expected.

00:11:33 --> 00:11:34 Anna: It genuinely is.

00:11:34 --> 00:11:37 NASA's Neil Gehrels Swift Observatory is

00:11:37 --> 00:11:40 doing science again. Two of its three

00:11:40 --> 00:11:42 instruments came back online on August

00:11:42 --> 00:11:45 26, and NASA expects the third within

00:11:45 --> 00:11:45 weeks.

00:11:46 --> 00:11:48 Avery: Remind everyone how Swift got into trouble.

00:11:49 --> 00:11:51 Anna: Swift launched in 2004 to catch

00:11:51 --> 00:11:54 Gamma ray bursts, the brightest explosions in

00:11:54 --> 00:11:57 the universe, by slewing incredibly fast

00:11:57 --> 00:11:59 to point at one with within seconds of

00:11:59 --> 00:12:02 detecting it. Hence the name 22

00:12:02 --> 00:12:05 years of workhorse science. But it's in

00:12:05 --> 00:12:07 low Earth orbit, which has just enough

00:12:07 --> 00:12:10 atmosphere in it to slowly drag you down.

00:12:10 --> 00:12:12 And Swift has no propulsion at all.

00:12:13 --> 00:12:14 Avery: So it can't save itself.

00:12:14 --> 00:12:17 Anna: It can't. As the orbit decayed, NASA

00:12:17 --> 00:12:20 started shutting things off to buy time. The

00:12:20 --> 00:12:23 ultraviolet and optical telescope and the X

00:12:23 --> 00:12:26 ray telescope went dark in February. The

00:12:26 --> 00:12:28 Burst Alert telescope in April, partly for

00:12:28 --> 00:12:31 power and partly to hold an orientation that

00:12:31 --> 00:12:34 minimised drag, the space

00:12:34 --> 00:12:35 equivalent

00:12:35 --> 00:12:38 Avery: of tucking your arms in. And meanwhile,

00:12:38 --> 00:12:39 there was a rescue coming.

00:12:39 --> 00:12:42 Anna: Catalyst Space's Link spacecraft, launched

00:12:42 --> 00:12:45 in July, designed to rendezvous with Swift,

00:12:45 --> 00:12:48 grab hold and boost the orbit. The first

00:12:48 --> 00:12:51 commercial rescue of a NASA science mission.

00:12:51 --> 00:12:54 Then, on August 19, NASA called it off.

00:12:54 --> 00:12:57 Link developed problems controlling its own

00:12:57 --> 00:13:00 orientation, which, for a spacecraft whose

00:13:00 --> 00:13:02 whole job is a delicate close proximity

00:13:02 --> 00:13:04 capture, is disqualifying.

00:13:05 --> 00:13:07 Avery: So what changed to let Swift start observing

00:13:07 --> 00:13:08 again?

00:13:08 --> 00:13:11 Anna: The calculus. With no rescue coming, there's

00:13:11 --> 00:13:13 no point conserving altitude for a rendezvous

00:13:13 --> 00:13:16 that isn't going to happen. So NASA turned

00:13:16 --> 00:13:19 the telescopes back on to get every last

00:13:19 --> 00:13:20 observation out of it.

00:13:21 --> 00:13:22 Avery: How long have they got?

00:13:22 --> 00:13:25 Anna: NASA's estimate is that Swift drops below

00:13:25 --> 00:13:26 about 300 kilometres

00:13:28 --> 00:13:31 in the next one to two months. Below that,

00:13:31 --> 00:13:33 the drag makes precise pointing difficult

00:13:33 --> 00:13:36 and the telescopes stop being useful.

00:13:36 --> 00:13:37 Reentry follows.

00:13:38 --> 00:13:40 Avery: So weeks of real science left?

00:13:40 --> 00:13:43 Anna: Weeks. And given. Swift's specialty is

00:13:43 --> 00:13:45 catching things that appear without warning.

00:13:45 --> 00:13:48 Every day up there is a day it might catch

00:13:48 --> 00:13:50 something nobody else was pointed at.

00:13:50 --> 00:13:52 Avery: What happens to Link?

00:13:52 --> 00:13:54 Anna: The other decent bit of news? Catalyst isn't

00:13:54 --> 00:13:57 writing it off. They'll fly proximity

00:13:57 --> 00:14:00 operations anyway to demonstrate in orbit

00:14:00 --> 00:14:02 servicing techniques. So the mission that

00:14:02 --> 00:14:05 couldn't save Swift still generates data for

00:14:05 --> 00:14:07 the next one that tries. And there's a whole

00:14:07 --> 00:14:10 generation of productive science spacecraft

00:14:10 --> 00:14:12 in low orbit with no propulsion, all

00:14:12 --> 00:14:15 quietly losing altitude. Swift is the test

00:14:15 --> 00:14:18 case for whether we ever get good at going up

00:14:18 --> 00:14:18 after them.

00:14:19 --> 00:14:21 Avery: Last storey before the sky. And it's the most

00:14:21 --> 00:14:23 quietly audacious thing

00:14:23 --> 00:14:25 Anna: I've read in the While a nonprofit in the

00:14:25 --> 00:14:28 Seattle area called the Fermi Explora Mission

00:14:28 --> 00:14:30 announced this week that it intends to launch

00:14:30 --> 00:14:33 a, uh, spacecraft to Alpha Centauri at the

00:14:33 --> 00:14:36 end of 2029. Travel time, about

00:14:36 --> 00:14:37 80 years.

00:14:37 --> 00:14:39 Avery: That's not a typo.

00:14:39 --> 00:14:42 Anna: Not a typo. And the team's own framing is the

00:14:42 --> 00:14:45 best part. Their president, Philip Johnston,

00:14:45 --> 00:14:48 says we'll be the first to leave and the

00:14:48 --> 00:14:48 last to arrive.

00:14:49 --> 00:14:51 Avery: Meaning they fully expect to be overtaken

00:14:51 --> 00:14:52 completely.

00:14:52 --> 00:14:55 Anna: It's baked in. Somebody will build something

00:14:55 --> 00:14:57 faster in the intervening millennia and beat

00:14:57 --> 00:15:00 them there. His other line none of us will be

00:15:00 --> 00:15:02 here when this journey ends. And that is the

00:15:02 --> 00:15:03 point.

00:15:03 --> 00:15:06 Avery: So what actually flies 80 years

00:15:06 --> 00:15:08 suggests they're not waiting on exotic

00:15:08 --> 00:15:08 propulsion.

00:15:08 --> 00:15:11 Anna: Deliberately not Nothing that needs

00:15:11 --> 00:15:14 inventing. A spacecraft in the 100 to

00:15:14 --> 00:15:16 200 kilogramme range. Solar electric

00:15:16 --> 00:15:19 propulsion to proven technology. We fly today

00:15:19 --> 00:15:22 carrying at least a kilogramme of payload in

00:15:22 --> 00:15:24 a shielded 10 centimetre cube.

00:15:24 --> 00:15:26 Avery: How do you get to interstellar speed?

00:15:26 --> 00:15:29 Anna: With an ion thruster, a manoeuvre they call

00:15:29 --> 00:15:31 perihelion pumping. Instead of burning

00:15:31 --> 00:15:34 straight outward, you loop in close to the

00:15:34 --> 00:15:37 sun and thrust hard at closest approach,

00:15:37 --> 00:15:40 where you're moving fastest. That's the Obert

00:15:40 --> 00:15:43 effect. And it converts your fuel into far

00:15:43 --> 00:15:45 more speed than the same burn would out here.

00:15:46 --> 00:15:48 Repeat it and you build real Velocity.

00:15:49 --> 00:15:51 They're targeting 24.2

00:15:51 --> 00:15:54 kilometres a second at cruise, about

00:15:54 --> 00:15:57 54 miles an hour faster

00:15:57 --> 00:15:59 than New Horizons was moving at Pluto.

00:16:00 --> 00:16:02 Avery: And, um, still nowhere near enough for four

00:16:02 --> 00:16:03 and a bit late years.

00:16:04 --> 00:16:06 Anna: 4.4. That's the honest

00:16:06 --> 00:16:09 arithmetic of interstellar travel. 12

00:16:09 --> 00:16:12 years of active operations, then roughly

00:16:12 --> 00:16:15 79 and a half thousand years of

00:16:15 --> 00:16:16 coasting in the dark.

00:16:17 --> 00:16:17 Avery: Who's behind it?

00:16:18 --> 00:16:20 Anna: Donston founded it with Ezra Feldon and

00:16:20 --> 00:16:23 Adi Oltean. The three of them are behind the

00:16:23 --> 00:16:26 space computing company Star Cloud. The

00:16:26 --> 00:16:28 advisory board has real names on it. Rob

00:16:28 --> 00:16:31 Meyerson, who used to run Blue Origin, and

00:16:31 --> 00:16:34 Jeff Thornberg, formerly SpaceX's

00:16:34 --> 00:16:36 propulsion lead budgets under $15

00:16:37 --> 00:16:39 million, with one billionaire space founder

00:16:39 --> 00:16:41 verbally pledging 10 million of it.

00:16:42 --> 00:16:43 Avery: What's it carrying?

00:16:43 --> 00:16:45 Anna: A digitised Voyager golden record.

00:16:46 --> 00:16:48 Messages from children around the world and

00:16:48 --> 00:16:51 real instruments. Cosmic ray detectors among

00:16:51 --> 00:16:54 them. The 12 active years aren't nothing.

00:16:54 --> 00:16:56 You'd be measuring your way out through the

00:16:56 --> 00:16:57 heliosphere.

00:16:58 --> 00:16:59 Avery: And the name's doing Some work.

00:17:00 --> 00:17:02 Anna: The Fermi is Enrico Fermi and his

00:17:02 --> 00:17:05 paradox. If the galaxy should be full of

00:17:05 --> 00:17:07 civilizations, where is everybody?

00:17:08 --> 00:17:10 Johnston's argument is that one candidate

00:17:10 --> 00:17:13 answer is that interstellar expansion is

00:17:13 --> 00:17:15 so hard, nobody bothers to start.

00:17:16 --> 00:17:18 So you start even badly, even

00:17:18 --> 00:17:19 slowly.

00:17:19 --> 00:17:21 Avery: How is it different from breakthrough

00:17:21 --> 00:17:24 Starshot, which made a lot of noise in 2016?

00:17:24 --> 00:17:27 Anna: Starshot was the opposite bet. Laser

00:17:27 --> 00:17:30 pushed light sales. 20% of light speed

00:17:30 --> 00:17:33 arrive within a human lifetime. But needing

00:17:33 --> 00:17:36 technology that doesn't exist, it's stalled.

00:17:37 --> 00:17:39 Fermi Explorer inverts it. Use only what

00:17:39 --> 00:17:42 exists except an absurd travel time

00:17:42 --> 00:17:45 and actually launch. It'd also be the

00:17:45 --> 00:17:48 first spacecraft ever deliberately aimed at a

00:17:48 --> 00:17:51 particular star. The Voyagers are leaving,

00:17:51 --> 00:17:53 but they're not going anywhere in particular.

00:17:54 --> 00:17:57 Avery: I find this weirdly moving and I can't fully

00:17:57 --> 00:17:58 justify why.

00:17:58 --> 00:18:00 Anna: It's the honesty of it. Most space

00:18:00 --> 00:18:03 projects sell you a payoff you'll live to

00:18:03 --> 00:18:05 see. This one explicitly doesn't and

00:18:05 --> 00:18:07 asks you to fund it anyway.

00:18:08 --> 00:18:10 Avery: Right, let's get everyone sorted with today's

00:18:10 --> 00:18:12 sky watch. And September is a good month.

00:18:12 --> 00:18:15 There are five planets in play, all

00:18:15 --> 00:18:17 Anna: five naked eye ones spread across the night.

00:18:18 --> 00:18:20 Let's take them in order of when you'd see

00:18:20 --> 00:18:20 them.

00:18:20 --> 00:18:21 Avery: Start with the evening.

00:18:21 --> 00:18:24 Anna: Venus, and it's unmissable.

00:18:24 --> 00:18:27 Low in the west to west southwest after

00:18:27 --> 00:18:30 sunset, about 14 degrees up an hour after

00:18:30 --> 00:18:32 the sun goes down. For Sydney sunsets

00:18:32 --> 00:18:35 around 5.34pm AEST

00:18:35 --> 00:18:37 tonight, so you're looking from a quarter

00:18:37 --> 00:18:40 past six. Northern listeners get a similar

00:18:40 --> 00:18:43 window after their own sunset. The key

00:18:43 --> 00:18:46 either way is a genuinely flat western

00:18:46 --> 00:18:49 horizon because Venus is not high.

00:18:49 --> 00:18:51 Avery: It was next to Spica last night.

00:18:52 --> 00:18:54 Anna: That conjunction peaked yesterday and they're

00:18:54 --> 00:18:57 separating now, but Spica is still right

00:18:57 --> 00:18:59 there. Worth a look through binoculars while

00:18:59 --> 00:19:02 they're close. Venus builds to maximum

00:19:02 --> 00:19:04 brilliance on the 18th, so it only

00:19:04 --> 00:19:07 improves mark the 14th too, when a

00:19:07 --> 00:19:09 thin crescent moon sits beside it.

00:19:10 --> 00:19:11 Avery: Then Saturn.

00:19:11 --> 00:19:13 Anna: Saturn's the one to actually point a

00:19:13 --> 00:19:16 telescope at this month. Up for most of the

00:19:16 --> 00:19:19 night. Magnitude 0.4

00:19:19 --> 00:19:22 and the rings are tilted just 8 degrees from

00:19:22 --> 00:19:24 edge on the narrowest in about a dozen

00:19:24 --> 00:19:27 years. That's a genuinely unusual view

00:19:27 --> 00:19:30 and it won't look like this again for a long

00:19:30 --> 00:19:30 time.

00:19:31 --> 00:19:32 Avery: And, um, there's a hemisphere difference

00:19:32 --> 00:19:33 here,

00:19:33 --> 00:19:36 Anna: a big one in our favour for once. From

00:19:36 --> 00:19:38 Sydney or Auckland or Cape Town, Saturn

00:19:38 --> 00:19:41 climbs high overhead. Less atmosphere to look

00:19:41 --> 00:19:44 through, so a steadier, sharper view from the

00:19:44 --> 00:19:47 northern US or the uk. It stays comparatively

00:19:47 --> 00:19:49 low and you'll be fighting turbulence.

00:19:49 --> 00:19:52 Northern listeners wait for it to get as high

00:19:52 --> 00:19:54 as it gets. And be patient with the seeing

00:19:54 --> 00:19:57 morning sky. Mars rises around

00:19:57 --> 00:20:00 1:40am that distinctive amber

00:20:00 --> 00:20:02 colour slowly brightening as Earth catches up

00:20:02 --> 00:20:05 to it. Then Jupiter up in the east

00:20:05 --> 00:20:08 northeast around 10 to 4 and easier to

00:20:08 --> 00:20:10 catch before dawn every week.

00:20:10 --> 00:20:12 Avery: And there's a Jupiter event for our North

00:20:12 --> 00:20:15 American listeners, specifically a good one.

00:20:15 --> 00:20:18 Anna: On September 8, the moon passes

00:20:18 --> 00:20:20 directly in front of Jupiter, an actual

00:20:20 --> 00:20:23 occultation visible from much of North

00:20:23 --> 00:20:26 America. Jupiter winks out behind the

00:20:26 --> 00:20:28 lunar limb and reappears on the other side.

00:20:29 --> 00:20:31 Small telescope makes it spectacular.

00:20:31 --> 00:20:34 Binoculars will show it. Not for us down

00:20:34 --> 00:20:36 south. So northern listeners, that one's

00:20:36 --> 00:20:38 yours. Put it in the calendar.

00:20:38 --> 00:20:40 Avery: And um, the fifth planet Mercury.

00:20:40 --> 00:20:43 Anna: But you'll wait for it final week of

00:20:43 --> 00:20:45 September. Low in the west southwest in

00:20:45 --> 00:20:48 evening twilight, magnitude minus

00:20:48 --> 00:20:51 0.1 on the 25th. It sits

00:20:51 --> 00:20:54 about a degree above Spica, which is a handy

00:20:54 --> 00:20:54 way to find it.

00:20:55 --> 00:20:56 Avery: What's the Moon doing tonight?

00:20:56 --> 00:20:59 Anna: Waning gibbous, past full heading for

00:20:59 --> 00:21:02 last quarter on the fourth. It's rising later

00:21:02 --> 00:21:05 each night, so the early evening is getting

00:21:05 --> 00:21:07 properly dark again. Good news for anything

00:21:07 --> 00:21:08 sane.

00:21:08 --> 00:21:09 Avery: Anything else for the diary?

00:21:10 --> 00:21:12 Anna: The 19th is international. Observe the moon

00:21:12 --> 00:21:15 night. The 22nd is the equinox.

00:21:15 --> 00:21:17 Spring for us, autumn for our northern

00:21:17 --> 00:21:20 listeners. And around the 26th the full

00:21:20 --> 00:21:23 moon rises near Saturn with Neptune close

00:21:23 --> 00:21:26 by. If you've got binoculars and patience, if

00:21:26 --> 00:21:29 you want the Milky Way itself. Mid month is

00:21:29 --> 00:21:32 the window, roughly the 14th to the 20th

00:21:32 --> 00:21:34 when the moon's out of the evening sky. The

00:21:34 --> 00:21:37 core and Harry's in Scorpius. The

00:21:37 --> 00:21:40 teapot in Sagittarius sits high

00:21:40 --> 00:21:42 overhead. For us northern listeners get the

00:21:42 --> 00:21:45 same region but low toward the south. So

00:21:45 --> 00:21:47 you'll want a dark site and a clear southern

00:21:47 --> 00:21:48 horizon.

00:21:48 --> 00:21:51 Avery: One standing reminder before we go, the

00:21:51 --> 00:21:53 Anna: one we never skip. If you're pointing

00:21:53 --> 00:21:56 anything at or near the sun, whether

00:21:56 --> 00:21:58 that's sunspots, a ah, transit or just

00:21:58 --> 00:22:01 chasing Venus a bit too close to sunset.

00:22:01 --> 00:22:04 Any filter you use must be Certified to

00:22:04 --> 00:22:05 the ISO

00:22:05 --> 00:22:08 123122.

00:22:08 --> 00:22:11 Standard sunglasses are not solar

00:22:11 --> 00:22:13 filters. Welding glass off the shelf is not

00:22:13 --> 00:22:16 a solar filter. Improvised filters

00:22:16 --> 00:22:18 cause permanent damage in seconds.

00:22:19 --> 00:22:20 Certified or don't look.

00:22:21 --> 00:22:23 Avery: Never gets old, never should.

00:22:23 --> 00:22:25 And that brings us to the end of today's

00:22:25 --> 00:22:28 show. Molten anomaly under Mars southern

00:22:28 --> 00:22:30 hemisphere. That may finally explain the

00:22:30 --> 00:22:33 crustal dichotomy. Crew 13 standing

00:22:33 --> 00:22:35 down over an oxidizer leak in Dragon.

00:22:36 --> 00:22:38 Swift back doing science in a race against

00:22:38 --> 00:22:41 its own orbit. An 80 year

00:22:41 --> 00:22:44 mission to Alpha Centauri and five planets

00:22:44 --> 00:22:45 to hunt down this month.

00:22:46 --> 00:22:48 Anna: If you enjoyed today's episode, the best

00:22:48 --> 00:22:50 thing you can do for us is leave a rating or

00:22:50 --> 00:22:52 review wherever you're listening and share it

00:22:52 --> 00:22:55 with a fellow space nerd. It really does help

00:22:55 --> 00:22:57 us out and makes a difference. Plus, you get

00:22:57 --> 00:22:59 featured on our new website, where you can

00:22:59 --> 00:23:02 also find full show notes, sources and

00:23:02 --> 00:23:05 links for every storey we covered today. Just

00:23:05 --> 00:23:07 point your browser to astronomydaily

00:23:07 --> 00:23:10 IO cheque out our new blog there too.

00:23:10 --> 00:23:12 Avery: We'll be back tomorrow with more space and

00:23:12 --> 00:23:15 astronomy news. Until then, keep looking up.

00:23:15 --> 00:23:17 Anna: See you next time. Clear skies, everyone.