Reading Io’s Hidden Heat: Juno’s First Subsurface Reading | Today’s Space News
Astronomy Daily: The Latest Space NewsJuly 28, 2026x
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Reading Io’s Hidden Heat: Juno’s First Subsurface Reading | Today’s Space News

Astronomy Daily S05E152 — “Reading the Heat” · Tuesday 28 July 2026. Hosts Anna & Avery. NASA’s Juno spacecraft has taken the first-ever temperature reading beneath the surface of Io, Jupiter’s volcanic moon — and the technique behind it could reshape how we study icy ocean moons and even volcanoes on Earth. We also look at why JWST’s “Little Red Dots” might be globular clusters being born, the first SETI search built from archived ALMA data (and its six-million-star surprise), and a live burst of space weather feeding into a meteor-filled — if Moon-washed — skywatch. In this episode ● Juno reads Io’s subsurface temperature for the first time — >20°C rise within a few metres, heat flow up to ~30× Earth’s average, and a remarkably smooth, low-density surface. ● Why the method matters: a multi-depth microwave thermometer that works from orbit — promising for Europa, Enceladus, and terrestrial volcanology. ● JWST’s “Little Red Dots” may be globular clusters in formation, powered by a short-lived supermassive star — linking two long-standing mysteries. ● The first SETI survey of archived ALMA data opens the millimetre band — and reveals “stellar bycatch” of 6.1 million background stars. ● Live space weather: an M3.2 flare from region AR4494 and a glancing CME, with G1–G2 storms and possible aurorae, north and south. ● Skywatch: meteor week under the full Buck Moon (29 July), the Alpha Capricornid fireball tip, evening Venus, pre-dawn Saturn/Mars/Mercury — and Jupiter vanishing behind the Sun. Sources ● NASA/JPL — “NASA’s Juno Takes Temperature of Jupiter’s Fiery Moon Io” (22 July 2026); Brown et al., J. Geophys. Res.: Planets, DOI 10.1029/2025JE009622. ● Chisholm et al., “Little Red Dots as Globular Clusters in Formation,” Astrophysical Journal Letters (press cycle 20 July 2026; UT Austin / McDonald Observatory). ● L. Mason (University of Manchester), first ALMA-archive SETI survey, RAS National Astronomy Meeting 2026. ● Space-weather status: EarthSky Sun news / NOAA SWPC (M3.2 flare AR4494, 26 July; 24 July CME; G1–G2 outlook, 27–28 July). ● Skywatch data: EarthSky, Star Walk, American Meteor Society, NASA — Southern Delta Aquariids (peak ~30 July), Alpha Capricornids (30–31 July), full Buck Moon 29 July, Jupiter solar conjunction 29 July.
 

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00:00:00 --> 00:00:03 Anna: On the most volcanic world on the solar

00:00:03 --> 00:00:06 system, hundreds of erupting mountains have

00:00:06 --> 00:00:08 been hurling light and heat into space

00:00:09 --> 00:00:10 as long as we've been able to watch.

00:00:11 --> 00:00:14 Avery: But that's the surface underneath. In the

00:00:14 --> 00:00:16 first few meters of crust, there was a

00:00:16 --> 00:00:18 temperature nobody had ever actually

00:00:18 --> 00:00:19 measured.

00:00:19 --> 00:00:22 Anna: Until a spacecraft built to study

00:00:22 --> 00:00:24 Jupiter's clouds pointed its instrument

00:00:24 --> 00:00:27 down at a moon and read the heat

00:00:27 --> 00:00:28 beneath the ground.

00:00:29 --> 00:00:31 Avery: Welcome to Astronomy Daily.

00:00:31 --> 00:00:34 Anna: Hello and welcome to Astronomy daily

00:00:34 --> 00:00:36 for Tuesday, the 28th of July,

00:00:37 --> 00:00:39 2026. I'm Anna.

00:00:39 --> 00:00:41 Avery: And I'm Avery. Whether you're under southern

00:00:41 --> 00:00:44 skies here in Australia and New Zealand, or

00:00:44 --> 00:00:45 across North America and the rest of the

00:00:45 --> 00:00:48 Northern Hemisphere, good day and good

00:00:48 --> 00:00:49 evening wherever this finds you.

00:00:50 --> 00:00:52 Anna: Big show. Today, our lead takes us to

00:00:52 --> 00:00:55 IO, Jupiter's fiery moon, and a

00:00:55 --> 00:00:58 genuine first, the temperature below its

00:00:58 --> 00:01:01 surface surface. Then two cosmic puzzles

00:01:01 --> 00:01:04 that might turn out to be the same puzzle. A

00:01:04 --> 00:01:07 fresh way to hunt for alien signals and

00:01:07 --> 00:01:10 a burst of space weather arriving at Earth

00:01:10 --> 00:01:11 just about now.

00:01:11 --> 00:01:13 Avery: Plus a, uh, skywatch with meteor showers

00:01:13 --> 00:01:16 peaking all week. Though the moon has other

00:01:16 --> 00:01:17 ideas. Let's get into it.

00:01:18 --> 00:01:21 Anna: So let's start with the star of the show, and

00:01:21 --> 00:01:23 it's a moon, IO, Jupiter's

00:01:23 --> 00:01:26 innermost large moon and the most

00:01:26 --> 00:01:28 volcanically active body in the entire

00:01:28 --> 00:01:31 solar system. If you've seen the pictures,

00:01:31 --> 00:01:34 it's that slightly unsettling pizza

00:01:34 --> 00:01:37 colored world. Yellows, oranges,

00:01:37 --> 00:01:40 sulfur reds, blotched with hundreds of

00:01:40 --> 00:01:42 volcanoes, some of them throwing plumes

00:01:42 --> 00:01:44 hundreds of kilometers into space.

00:01:45 --> 00:01:47 Avery: It's genuinely hard to overstay how active

00:01:47 --> 00:01:50 IO is. More than 400 active

00:01:50 --> 00:01:53 volcanoes, lava lakes, the works.

00:01:53 --> 00:01:55 Per square meter, it pumps out many times

00:01:55 --> 00:01:57 more heat than Earth does.

00:01:57 --> 00:02:00 Anna: And that's the puzzle at the heart of today's

00:02:00 --> 00:02:03 story. All that volcanism is powered by

00:02:03 --> 00:02:06 something called tidal heating. IO

00:02:06 --> 00:02:08 orbits Jupiter on a slightly stretched

00:02:08 --> 00:02:11 elliptical path. And Jupiter's enormous

00:02:11 --> 00:02:14 gravity is constantly squeezing and

00:02:14 --> 00:02:17 flexing the moon, like bending a paperclip

00:02:17 --> 00:02:20 back and forth until it warms up, except on

00:02:20 --> 00:02:22 a planetary scale. And forever.

00:02:23 --> 00:02:25 Avery: Flex a paperclip fast enough, it gets hot in

00:02:25 --> 00:02:28 your fingers. IO is that paperclip. And

00:02:28 --> 00:02:30 Jupiter never stops bending it.

00:02:30 --> 00:02:33 Anna: Exactly. But here's the thing. For

00:02:33 --> 00:02:36 all the decades we've studied IO, almost

00:02:36 --> 00:02:39 everything we knew about that heat came from

00:02:39 --> 00:02:41 looking at the surface infrared cameras,

00:02:41 --> 00:02:44 which read the temperature of the very top

00:02:44 --> 00:02:46 layer. What we'd never done, what

00:02:46 --> 00:02:49 nobody had ever done for a rocky world other

00:02:49 --> 00:02:52 than Earth, it is measure the temperature

00:02:52 --> 00:02:54 below the surface under the ground.

00:02:55 --> 00:02:57 Avery: And that's exactly what NASA's Juno

00:02:57 --> 00:02:58 spacecraft just did.

00:02:59 --> 00:03:01 Anna: It is. Juno has been orbiting

00:03:01 --> 00:03:04 Jupiter since 2016, and it made

00:03:04 --> 00:03:07 two very close passes of IO in

00:03:07 --> 00:03:10 late December 2023 and early

00:03:10 --> 00:03:13 February 2024, sweeping within

00:03:13 --> 00:03:16 about 1500 kilometers, roughly

00:03:16 --> 00:03:18 930 miles of the surface.

00:03:19 --> 00:03:22 And on both passes, it used an instrument

00:03:22 --> 00:03:24 called the Microwave Radiometer.

00:03:24 --> 00:03:26 MWR for short.

00:03:26 --> 00:03:28 Avery: And this is the part I love, because that

00:03:28 --> 00:03:31 instrument was never designed to do this. The

00:03:31 --> 00:03:34 MWR was built to look down through Jupiter's

00:03:34 --> 00:03:36 thick clouds and read the giant planet's

00:03:36 --> 00:03:39 atmosphere at different depths. It has six

00:03:39 --> 00:03:41 antennas, each tuned to a different

00:03:41 --> 00:03:41 wavelength.

00:03:42 --> 00:03:45 Anna: And that multi wavelength design turns

00:03:45 --> 00:03:47 out to be the whole trick. Different

00:03:47 --> 00:03:50 wavelengths of microwave energy escape from

00:03:50 --> 00:03:52 different depths. So if you point that

00:03:52 --> 00:03:55 instrument at solid ground instead of cloud,

00:03:55 --> 00:03:58 each channel is effectively reading the

00:03:58 --> 00:04:00 temperature at a slightly different depth

00:04:00 --> 00:04:03 below the surface, all at once, all

00:04:03 --> 00:04:06 from orbit, using nothing but the natural

00:04:06 --> 00:04:08 heat the crust is already giving off.

00:04:09 --> 00:04:11 Avery: So it's like a thermometer that reads several

00:04:11 --> 00:04:14 depths at the same time without ever touching

00:04:14 --> 00:04:14 the ground.

00:04:15 --> 00:04:17 Anna: That's a lovely way to put it. And what did

00:04:17 --> 00:04:20 it find? Within just the first few meters of

00:04:20 --> 00:04:23 crust, the temperature climbs by more than 20

00:04:23 --> 00:04:26 degrees Celsius over 40 Fahrenheit.

00:04:26 --> 00:04:28 That might not sound dramatic, but for a

00:04:28 --> 00:04:30 world whose surface sits at around minus

00:04:30 --> 00:04:33 143 Celsius, a rise

00:04:33 --> 00:04:36 that steep, that shallow, tells you there's

00:04:36 --> 00:04:37 serious heat welling up from below.

00:04:38 --> 00:04:40 Avery: Put a number on it. How much heat are we

00:04:40 --> 00:04:41 talking?

00:04:41 --> 00:04:44 Anna: The team estimates a heat flow of roughly 1

00:04:44 --> 00:04:47 to 3 watts per square meter, up to about

00:04:47 --> 00:04:50 30 times Earth's global average, seeping

00:04:50 --> 00:04:52 up through the top 10 meters or so of crust,

00:04:53 --> 00:04:55 most likely from a mix of that tidal heating

00:04:55 --> 00:04:57 and lava still cooling underground.

00:04:58 --> 00:05:00 Avery: 30 times Earth's average welling up through

00:05:00 --> 00:05:02 the ground. That's the engine of all those

00:05:02 --> 00:05:04 volcanoes caught in the act.

00:05:04 --> 00:05:07 Anna: And there was a second surprise in the same

00:05:07 --> 00:05:10 data. The MWR also showed that most of

00:05:10 --> 00:05:13 IO's surface is remarkably smooth and made

00:05:13 --> 00:05:15 of very low density material, which fits a

00:05:15 --> 00:05:18 world that's constantly repaving itself with

00:05:18 --> 00:05:20 fresh volcanic deposits, burying its own

00:05:20 --> 00:05:22 craters almost as fast as they form.

00:05:23 --> 00:05:24 Avery: Now the study is in the Journal of

00:05:24 --> 00:05:27 Geophysical Research Planets, led by Shannon

00:05:27 --> 00:05:29 Brown at JPL. And NASA put it out on the

00:05:29 --> 00:05:32 22nd. But, Anna, uh, I think the really big

00:05:32 --> 00:05:35 deal here might not even be IO itself. It's

00:05:35 --> 00:05:36 the method.

00:05:36 --> 00:05:39 Anna: I completely agree. This is the first time

00:05:39 --> 00:05:41 anyone has read a subsurface temperature

00:05:41 --> 00:05:44 profile of a rocky body from orbit. And

00:05:44 --> 00:05:46 that technique doesn't care whether the World

00:05:46 --> 00:05:49 is fiery or frozen. Point it at an icy

00:05:49 --> 00:05:52 moon, Europa Enceladus, and in principle,

00:05:52 --> 00:05:54 you could sense the warmth of an ocean

00:05:54 --> 00:05:56 beneath the ice or work out how thick that

00:05:56 --> 00:05:57 ice actually is.

00:05:58 --> 00:06:00 Avery: Which is precisely the question those

00:06:00 --> 00:06:02 missions are built to answer. Europa Clipper

00:06:02 --> 00:06:03 is already on its way

00:06:03 --> 00:06:06 Anna: and it gets better and closer to home. Juno's

00:06:06 --> 00:06:09 principal investigator, Scott Bolton, pointed

00:06:09 --> 00:06:12 out that you could fly an MWR type instrument

00:06:12 --> 00:06:14 over a volcano here on Earth and read the

00:06:14 --> 00:06:17 same kind of subsurface temperature gradient.

00:06:17 --> 00:06:19 A whole new way to study our own volcanoes

00:06:19 --> 00:06:20 from the air.

00:06:20 --> 00:06:23 Avery: So an instrument built for Jupiter's clouds

00:06:23 --> 00:06:25 ends up potentially rewriting how we study

00:06:25 --> 00:06:27 volcanoes on Earth. That's the kind of

00:06:27 --> 00:06:29 accidental genius that makes me love this

00:06:29 --> 00:06:30 stuff.

00:06:30 --> 00:06:32 Anna: It's the story of exploration in miniature,

00:06:32 --> 00:06:35 isn't it? You build a tool for one job, you

00:06:35 --> 00:06:37 point it somewhere new and it hands you a

00:06:37 --> 00:06:40 capability nobody planned for. IO got its

00:06:40 --> 00:06:43 first ever subsurface reading and we got a

00:06:43 --> 00:06:45 new way to take the temperature of worlds.

00:06:45 --> 00:06:48 Avery: Ours included a fitting lead. And keep

00:06:48 --> 00:06:50 IO in your back of your mind, because Jupiter

00:06:50 --> 00:06:52 itself is going to come back around in our

00:06:52 --> 00:06:54 skywatch in a slightly surprising way.

00:06:55 --> 00:06:57 Anna: Ooh, a, uh, tease. Alright. From a moon

00:06:57 --> 00:07:00 on fire to something at the very edge of what

00:07:00 --> 00:07:01 we can see.

00:07:01 --> 00:07:03 Avery: Now onto story two.

00:07:03 --> 00:07:06 JWST's little red

00:07:06 --> 00:07:08 dots. So, Anna, set us up nicely to the

00:07:08 --> 00:07:11 deep early universe. One of the strangest

00:07:11 --> 00:07:13 things the James Webb's telescope has turned

00:07:13 --> 00:07:16 up since it started sending back data in 2022

00:07:16 --> 00:07:18 is a whole population of objects

00:07:18 --> 00:07:20 nicknamed little red dots.

00:07:21 --> 00:07:22 Anna: I love that they just called them what they

00:07:22 --> 00:07:23 look like.

00:07:23 --> 00:07:25 Avery: Astronomers are refreshingly literal.

00:07:25 --> 00:07:28 Sometimes they're exactly that. Tiny,

00:07:28 --> 00:07:31 intensely red, compact points of light.

00:07:31 --> 00:07:34 And they're ancient. They show up around 600

00:07:34 --> 00:07:36 million years after the Big Bang. And then

00:07:36 --> 00:07:39 here's the weird part. They seem to vanish by

00:07:39 --> 00:07:41 the time the universe is about a billion and

00:07:41 --> 00:07:44 a half years old. Nobody's been sure what

00:07:44 --> 00:07:46 they even are. Supermassive black holes

00:07:46 --> 00:07:49 wrapped in gas bursts of furious star

00:07:49 --> 00:07:51 formation. Something else entirely.

00:07:51 --> 00:07:53 Anna: And there's a new answer this week.

00:07:53 --> 00:07:56 Avery: A new idea, and it's a clever one. A team led

00:07:56 --> 00:07:58 by John Chisum at the University of Texas at

00:07:58 --> 00:08:01 Austin, published in the Astrophysical

00:08:01 --> 00:08:03 Journal Letters, suggests the little red dots

00:08:03 --> 00:08:06 might be globular clusters caught in the act

00:08:06 --> 00:08:07 of being born.

00:08:08 --> 00:08:10 Anna: Globular clusters, those dense, ancient

00:08:10 --> 00:08:13 balls of hundreds of thousands of stars that

00:08:13 --> 00:08:16 hang around the outskirts of galaxies like

00:08:16 --> 00:08:16 ours.

00:08:16 --> 00:08:19 Avery: Those exact things, around 150 of them,

00:08:19 --> 00:08:22 orbit the Milky Way. And their origin has

00:08:22 --> 00:08:25 been its own long standing mystery. So this

00:08:25 --> 00:08:28 paper does something elegant. It takes two

00:08:28 --> 00:08:30 puzzles. What are little red dots? And where

00:08:30 --> 00:08:33 do globular clusters come from? Ann proposes

00:08:33 --> 00:08:35 they're the same puzzle that the little red

00:08:35 --> 00:08:38 dots are simply what globular clusters look

00:08:38 --> 00:08:39 like while they were forming.

00:08:39 --> 00:08:41 Anna: Two birds, one stone.

00:08:41 --> 00:08:43 Avery: That's exactly the phrase the researchers

00:08:43 --> 00:08:46 reach for in the model. A, uh, young cluster

00:08:46 --> 00:08:49 of stars supplies the blue ultraviolet light.

00:08:49 --> 00:08:51 And a single short lived, absolutely

00:08:51 --> 00:08:54 colossal star at the center, a

00:08:54 --> 00:08:56 supermassive star tens of thousands of

00:08:56 --> 00:08:59 times the Sun's mass, supplies the red.

00:08:59 --> 00:09:02 And crucially, it predicts specific chemical

00:09:02 --> 00:09:05 fingerprints, unusual amounts of helium and

00:09:05 --> 00:09:08 nitrogen, the very oddities we already see in

00:09:08 --> 00:09:10 the stars of today's globular clusters.

00:09:11 --> 00:09:13 Anna: So the test is in the chemistry.

00:09:13 --> 00:09:16 Avery: The test is in the chemistry and the team is

00:09:16 --> 00:09:18 careful about it. Co author Mike Boylan

00:09:18 --> 00:09:21 Kolchin put it. Well, there's no single

00:09:21 --> 00:09:24 smoking gun yet. But this would explain a lot

00:09:24 --> 00:09:26 of surprising observations at once. They're

00:09:26 --> 00:09:29 calling it plausible and laying out ways to

00:09:29 --> 00:09:30 stress test it.

00:09:30 --> 00:09:33 Anna: There's a lovely framing. I saw that these

00:09:33 --> 00:09:35 might be, uh, cosmic dinosaurs that never

00:09:35 --> 00:09:37 actually went extinct.

00:09:37 --> 00:09:39 Avery: That's the one we used to think the

00:09:39 --> 00:09:42 dinosaurs simply vanished. Then we

00:09:42 --> 00:09:45 realized they became birds. The suggestion

00:09:45 --> 00:09:47 here is that the little red dots didn't

00:09:47 --> 00:09:49 disappear either. They grew up into the

00:09:49 --> 00:09:51 globular clusters. You can still point a

00:09:51 --> 00:09:54 backyard telescope at tonight. The strange

00:09:54 --> 00:09:57 early universe. And the familiar one might be

00:09:57 --> 00:09:58 far more connected than we thought.

00:09:59 --> 00:10:01 Anna: From the oldest starlight to possibly

00:10:01 --> 00:10:03 no starlight at all.

00:10:03 --> 00:10:05 Because the next one is all about listening.

00:10:06 --> 00:10:08 For more than 60 years, the Search for

00:10:08 --> 00:10:11 Extraterrestrial Intelligence, SETI has

00:10:11 --> 00:10:13 mostly listened in one narrow stretch of the

00:10:13 --> 00:10:15 radio dial, a band between about

00:10:15 --> 00:10:18 1.4 and 1.7 gigahertz

00:10:18 --> 00:10:20 that astronomers call the water hole.

00:10:21 --> 00:10:21 Avery: Why there?

00:10:21 --> 00:10:24 Anna: Two reasons. It's a naturally quiet part of

00:10:24 --> 00:10:26 the spectrum and it sits right between the

00:10:26 --> 00:10:29 frequencies given off by hydrogen and by

00:10:29 --> 00:10:31 hydroxyl, the two pieces that together make

00:10:31 --> 00:10:34 water. The romantic idea is that any water

00:10:34 --> 00:10:37 based civilization might recognize it as

00:10:37 --> 00:10:40 an obvious meeting place. A, ah, cosmic

00:10:40 --> 00:10:41 watering hole.

00:10:41 --> 00:10:43 Avery: Poetic, but maybe a touch assumption

00:10:43 --> 00:10:44 heavy.

00:10:44 --> 00:10:46 Anna: That's exactly the point a young researcher

00:10:46 --> 00:10:49 has just made. Louisa Mason, a PhD

00:10:49 --> 00:10:51 student at the University of Manchester,

00:10:52 --> 00:10:54 presented work at the Royal Astronomical

00:10:54 --> 00:10:57 Society's National Astronomy meeting, arguing

00:10:57 --> 00:10:59 we might be listening on the wrong channel

00:10:59 --> 00:11:02 entirely. And rather than ask for expensive

00:11:02 --> 00:11:05 new telescope time, she did something smart.

00:11:05 --> 00:11:07 She went digging in the archives.

00:11:07 --> 00:11:07 Avery: Old data.

00:11:08 --> 00:11:11 Anna: Old data from Alma, that enormous array of

00:11:11 --> 00:11:13 dishes up on the chajenant plateau In Chile,

00:11:13 --> 00:11:16 which observes at much higher millimeter and

00:11:16 --> 00:11:19 submillimeter frequencies that SETI has

00:11:19 --> 00:11:21 barely touched. She ran the first ever

00:11:21 --> 00:11:24 SETI search through archived ALMA

00:11:24 --> 00:11:27 observations, hunting for narrow artificial

00:11:27 --> 00:11:27 looking signals.

00:11:28 --> 00:11:30 Avery: Um, and did she find E.T.

00:11:30 --> 00:11:33 Anna: she did not. No technosignatures, which is

00:11:33 --> 00:11:36 the honest and entirely expected result from

00:11:36 --> 00:11:39 just four archived observations. But here's

00:11:39 --> 00:11:41 the finding that made me sit up when she

00:11:41 --> 00:11:43 properly modeled how many stars were sitting

00:11:43 --> 00:11:45 in the background of those observations.

00:11:45 --> 00:11:47 Stars caught in the frame. While ALMA was

00:11:47 --> 00:11:50 pointed at something else. The count jumped

00:11:50 --> 00:11:52 from a previous estimate of around

00:11:52 --> 00:11:55 288 stars

00:11:55 --> 00:11:56 to more than six million.

00:11:57 --> 00:12:00 Avery: Six million. Just from recounting what was

00:12:00 --> 00:12:01 already there.

00:12:01 --> 00:12:04 Anna: More than six million. She calls it

00:12:04 --> 00:12:07 stellar bycatch. All the stars you

00:12:07 --> 00:12:09 survey by accident every single time you

00:12:09 --> 00:12:12 point a big telescope anywhere. It

00:12:12 --> 00:12:14 means archives around the world may already

00:12:14 --> 00:12:17 hold a vastly larger SETI survey

00:12:17 --> 00:12:20 than anyone realized, hiding inside data

00:12:20 --> 00:12:21 gathered for complet completely different

00:12:21 --> 00:12:22 reasons.

00:12:22 --> 00:12:25 Avery: I love that you don't always need a bigger

00:12:25 --> 00:12:27 net. Sometimes you just need to count what

00:12:27 --> 00:12:28 you've already caught.

00:12:29 --> 00:12:31 Anna: Beautifully put. New frequencies and

00:12:31 --> 00:12:34 millions of free stars. Not a bad

00:12:34 --> 00:12:35 afternoon's work.

00:12:35 --> 00:12:38 And speaking of signals arriving, there's one

00:12:38 --> 00:12:40 headed for Earth right now.

00:12:40 --> 00:12:43 Avery: And this one's live unfolding as we record

00:12:43 --> 00:12:46 our own star has been rustless. There's an

00:12:46 --> 00:12:48 active region on the sun cataloged as region

00:12:48 --> 00:12:51 4494. And on the 26th

00:12:52 --> 00:12:54 it let off a moderate flare. An M M class

00:12:54 --> 00:12:57 flare. An M M3.2 to be exact.

00:12:57 --> 00:13:00 Anna: M class being middle of the road as

00:13:00 --> 00:13:01 flares go.

00:13:01 --> 00:13:04 Avery: Moderate, yes, below the big X class

00:13:04 --> 00:13:06 monsters, but nothing to sneeze at. And

00:13:06 --> 00:13:09 separately, a cloud of solar material. A, uh,

00:13:09 --> 00:13:11 coronal mass ejection launched back on the

00:13:11 --> 00:13:14 24th is due to give Earth a glancing

00:13:14 --> 00:13:16 blow right about now.

00:13:16 --> 00:13:19 Anna: A glancing blow. So not a direct

00:13:19 --> 00:13:19 hit.

00:13:20 --> 00:13:22 Avery: Not a direct hit, which is the good news. But

00:13:22 --> 00:13:25 even a side wipe can rattle our magnetic

00:13:25 --> 00:13:28 field. Forecasters are calling for G1,

00:13:29 --> 00:13:30 possibly nudging up to G2

00:13:31 --> 00:13:34 geomagnetic storm levels across the

00:13:34 --> 00:13:37 27th and 28th. And the fun part for

00:13:37 --> 00:13:39 us is what that does to the sky. Aurorae.

00:13:39 --> 00:13:41 Anna: Uh, aurorae.

00:13:41 --> 00:13:43 Avery: When that solar material meets the magnetic

00:13:43 --> 00:13:45 field, it funnels particles down over the

00:13:45 --> 00:13:48 poles and lights up the atmosphere. The

00:13:48 --> 00:13:50 southern lights, the Aurora Australis for our

00:13:50 --> 00:13:52 listeners down here. And the northern lights

00:13:52 --> 00:13:55 up top at, uh, G1 to G2, we're

00:13:55 --> 00:13:58 mostly talking higher latitudes. So

00:13:58 --> 00:14:00 Tasmania and the deep south of New Zealand

00:14:00 --> 00:14:03 have the better odds. Here up north, think

00:14:03 --> 00:14:05 Scotland, Scandinavia and the northern tier

00:14:05 --> 00:14:06 of the US and Canada.

00:14:07 --> 00:14:10 Anna: And I should say space weather moves fast.

00:14:10 --> 00:14:12 By the time you're hearing this, the numbers

00:14:12 --> 00:14:13 may well have shifted.

00:14:14 --> 00:14:16 Avery: Good caveat. So if you're keen, check the

00:14:16 --> 00:14:18 live alerts, the Space Weather Prediction

00:14:18 --> 00:14:21 center or the Bureau of Meteorology's Space

00:14:21 --> 00:14:23 Weather Service here in Australia for the

00:14:23 --> 00:14:25 current picture. But it's worth a glance at

00:14:25 --> 00:14:27 the southern horizon tonight because the sun

00:14:27 --> 00:14:29 may just have laid on a show.

00:14:29 --> 00:14:32 Anna: A perfect handover because it's time to look

00:14:32 --> 00:14:32 up.

00:14:33 --> 00:14:36 Skywatch. Though this is meteor week

00:14:36 --> 00:14:38 in theory, we've got a run of showers

00:14:38 --> 00:14:41 peaking over the next few nights. The July

00:14:41 --> 00:14:44 Gamma Draconids tonight, the Pisces

00:14:44 --> 00:14:47 Austrianids around the 28th and 29th. And

00:14:47 --> 00:14:49 then the big one for us, the Southern Delta

00:14:49 --> 00:14:52 Aquarids, building to their peak around the

00:14:52 --> 00:14:55 30th, alongside the alpha capricornids

00:14:55 --> 00:14:56 on the 30th and 31st.

00:14:57 --> 00:14:59 Avery: And in theory being the operative phrase,

00:15:00 --> 00:15:02 because there's a giant obstacle rising in

00:15:02 --> 00:15:03 the east.

00:15:03 --> 00:15:06 Anna: The Moon. The Full Buck Moon lands on the

00:15:06 --> 00:15:09 29th, and a nearly full moon all week

00:15:09 --> 00:15:12 is going to flood the sky with light and wash

00:15:12 --> 00:15:14 out most of these meteors, which tend to be

00:15:14 --> 00:15:16 on the faint side to begin with.

00:15:16 --> 00:15:18 Avery: So is it a write off?

00:15:18 --> 00:15:21 Anna: Not at all. You just have to be smart about

00:15:21 --> 00:15:24 it first. The Southern Delta Aquariids

00:15:24 --> 00:15:27 genuinely favor us. In the south, the

00:15:27 --> 00:15:29 radiant over near the star Skat in

00:15:29 --> 00:15:32 Aquarius climbs high overhead from southern

00:15:32 --> 00:15:35 latitudes. Which is exactly why this is so

00:15:35 --> 00:15:37 often the Southern hemisphere's best shower

00:15:37 --> 00:15:39 of the year. Though for our listeners in

00:15:39 --> 00:15:42 Australia and New Zealand, look after

00:15:42 --> 00:15:45 midnight into the pre dawn hours when that

00:15:45 --> 00:15:46 radiant is highest.

00:15:46 --> 00:15:48 Avery: And um, for the Northern hemisphere, for

00:15:48 --> 00:15:50 Anna: North America and other northern listeners,

00:15:50 --> 00:15:53 the radiant sits lower in the southern sky.

00:15:53 --> 00:15:56 But the southern United States, Mexico and

00:15:56 --> 00:15:59 Southern Europe still get a decent view. Same

00:15:59 --> 00:16:02 advice. The hours after midnight local time

00:16:02 --> 00:16:04 into the couple of hours before dawn are your

00:16:04 --> 00:16:06 best window. And face south.

00:16:07 --> 00:16:09 Avery: And here's the pro tip that beats the Moon.

00:16:09 --> 00:16:11 The Alpha Capricornids. They're not

00:16:11 --> 00:16:14 numerous, only a handful an hour. But they're

00:16:14 --> 00:16:16 famous for slow, bright, colorful

00:16:16 --> 00:16:19 fireballs. And a fireball doesn't care about

00:16:19 --> 00:16:22 moonlight. So even in a bright week, one

00:16:22 --> 00:16:25 brilliant, lazy Alpha Capricornid drifting

00:16:25 --> 00:16:27 across the sky is worth the wait. North or

00:16:27 --> 00:16:28 south?

00:16:28 --> 00:16:30 Anna: Lovely. And if the meteors do get washed out,

00:16:30 --> 00:16:33 there are planets to fall back on in the

00:16:33 --> 00:16:35 evening. Low in the west after sunset, Venus

00:16:35 --> 00:16:38 is blazing away, unmistakable. And climbing

00:16:38 --> 00:16:40 a little higher each night as it heads for

00:16:40 --> 00:16:42 its best evening showing in August.

00:16:42 --> 00:16:43 Avery: And, um, the morning sky.

00:16:43 --> 00:16:46 Anna: The morning belongs to Saturn. Golden well up

00:16:46 --> 00:16:48 in the pre dawn sky. And it actually paused

00:16:48 --> 00:16:50 in its motion against the background stars

00:16:50 --> 00:16:53 this week. Mars is climbing higher before

00:16:53 --> 00:16:56 dawn too. And if you've got a clear flat

00:16:56 --> 00:16:58 horizon, elusive Mercury is making a

00:16:58 --> 00:17:01 low pre dawn appearance in the last days of

00:17:01 --> 00:17:01 the month.

00:17:01 --> 00:17:03 Avery: And one that ties us right back to where we

00:17:03 --> 00:17:04 started. Jupiter.

00:17:04 --> 00:17:07 Anna: Yes, here's the lovely irony. We

00:17:07 --> 00:17:10 opened the show at IO, a moon of Jupiter. But

00:17:10 --> 00:17:13 Jupiter itself as just slipped behind the

00:17:13 --> 00:17:15 sun. It reaches solar conjunction on the

00:17:15 --> 00:17:18 29th, essentially lined up on the far side

00:17:18 --> 00:17:21 of our star. So the very planet whose moon

00:17:21 --> 00:17:24 we spent our whole lead story on is the one

00:17:24 --> 00:17:26 planet you can't actually see in the sky

00:17:26 --> 00:17:26 right now.

00:17:26 --> 00:17:29 Avery: The moon. We can study up close. The planet

00:17:29 --> 00:17:32 we've temporarily lost space has a sense of

00:17:32 --> 00:17:32 humor.

00:17:32 --> 00:17:34 Anna: It'll be back in the morning sky in late

00:17:34 --> 00:17:36 August. And one last one for our northern

00:17:36 --> 00:17:38 friends before we go. Look straight up after

00:17:38 --> 00:17:40 dark and you'll find the summer triangle.

00:17:40 --> 00:17:43 Vega, uh, Deneb, uh, and Altair riding high

00:17:43 --> 00:17:46 overhead, a reliable anchor on a moonlit

00:17:46 --> 00:17:46 night.

00:17:46 --> 00:17:48 Avery: North or south, there's always something up

00:17:48 --> 00:17:48 there.

00:17:48 --> 00:17:51 Anna: And that's our show for Tuesday, A first look

00:17:51 --> 00:17:53 beneath the skin of the solar system's most

00:17:53 --> 00:17:56 volcanic moon. Two cosmic mysteries that

00:17:56 --> 00:17:58 might be one. A fresh way to listen for

00:17:58 --> 00:18:01 company, and a burst of weather from our own

00:18:01 --> 00:18:01 star.

00:18:01 --> 00:18:03 Avery: If you enjoyed it, find. Follow Astronomy

00:18:03 --> 00:18:05 Daily wherever you get your podcasts and find

00:18:05 --> 00:18:08 our new website@astronomydaily,IO

00:18:08 --> 00:18:10 and on the socials strodaily

00:18:10 --> 00:18:12 pod. We're back tomorrow.

00:18:12 --> 00:18:14 Anna: Until then, from Avery and me, keep looking

00:18:14 --> 00:18:15 up.

00:18:15 --> 00:18:16 Avery: Clear skies.

00:18:28 --> 00:18:30 Sam. Hmm.