Mars Gullies Aren't Made by Water: The Surprising Dry Ice Answer
Space Nuts: Exploring the CosmosSeptember 24, 2026
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00:32:5130.13 MB

Mars Gullies Aren't Made by Water: The Surprising Dry Ice Answer

Perseverance drove to the edge of an ancient Martian lake expecting a beach and found the inside of a volcano โ€” rock that water has been through at least three separate times. Europe's Jupiter probe comes home on Monday night and crosses Australia in a fully dark sky. Two teams, using two completely different techniques, both find something hiding inside the most famous planetary system we have ever photographed โ€” and an Australian instrument is in the middle of one of them. Plus: heavy water in an interstellar comet, and what it says about the star that made it. In this episode ยท LEAD โ€” Three floods at the crater's edge. Candice Bedford (Purdue) and colleagues publish in Communications Earth & Environment: the Margin Unit at Jezero is igneous, not sedimentary, and records at least three distinct episodes of water โ€” COโ‚‚-rich groundwater making carbonate ridges, then silica associated with the lake, then a later hot-water event leaving fluorite veins. Habitability context, not a biosignature. ยท Juice returns. ESA confirms the third Earth gravity assist for 28 September โ€” closest approach 11:45 UTC over the Indian Ocean, bending the trajectory ~20ยฐ and adding ~3.5 km/s. The spacecraft crosses Australia north-east to north-west 15โ€“30 minutes earlier, in full darkness. ยท HR 8799. Two preprints in two weeks point at a fifth, inner planet โ€” one from archival JWST aperture-masking data (~7 au, a few Jupiter masses), one from Gaia astrometry (2โ€“3 au, 10โ€“14 Jupiter masses). They do not obviously describe the same object. Neither is peer-reviewed. ยท 3I/ATLAS. A modelling paper explains the high deuterium-to-hydrogen ratio measured in March as consistent with formation around a low-metallicity โ€” meaning old โ€” star. ยท Quick hit: Starship Flight 14 still targeting 28 September; Crew-13 still 'no earlier than early October' on NASA's own page; Albania signs the Artemis Accords as the 73rd country. ยท Skywatch: the equinox as an instant rather than a date, the Juice pass over Australia, Venus and Mercury for the south, Mars and Jupiter before dawn for the north, and Saturn heading into opposition. Sources and further reading ยท Bedford, C. C. et al., 'Lake- and groundwater-associated alteration of the olivine-rich Margin unit in Jezero crater, Mars', Communications Earth & Environment (2026). DOI 10.1038/s43247-026-03997-9 ยท NASA/JPL, 'NASA Discovery Reveals Complex Water Systems on Early Mars', 21 September 2026. ยท ESA, 'Juice to fly past Earth for third gravity assist', 21 September 2026. ยท Nguyen, J. S. et al., 'A Candidate Innermost Fifth Planet In the HR 8799 System Revealed By JWST NIRISS Aperture Masking Interferometry', arXiv:2609.10507. ยท Lagrange, A.-M. et al., 'A fifth companion in the HR 8799 system revealed by Gaia', arXiv:2609.20996 (submitted to Nature Astronomy). ยท Furuya, K., Cordiner, M., Bockelรฉe-Morvan, D. et al., arXiv:2609.12370. ยท NASA OIIR, 'NASA Welcomes Albania as Newest Artemis Accords Signatory', 21 September 2026. Skywatch figures computed in-session with PyEphem 4.2.1 for Sydney, Los Angeles, New York and London. Times are local unless marked UTC.

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00:00:00 --> 00:00:02 Andrew Dunkley: Hello. Thanks for joining us. This is Space

00:00:02 --> 00:00:05 Nuts. A fresh, crisp episode for you

00:00:05 --> 00:00:08 to devour, I hope. My name is Andrew Dunkley.

00:00:08 --> 00:00:10 Uh, your host. Great to have your company.

00:00:10 --> 00:00:13 Uh, a bit of a water theme in this particular

00:00:13 --> 00:00:15 episode, or partly.

00:00:16 --> 00:00:19 There's a question being raised in, uh,

00:00:19 --> 00:00:21 space science about what causes the

00:00:21 --> 00:00:24 gullies on Mars. Well, we know that gullies

00:00:24 --> 00:00:27 are caused by, uh, water flows and rainfall

00:00:27 --> 00:00:30 on Earth. But, um, that can't be the case on

00:00:30 --> 00:00:33 Mars. Or can it? They think they've figured

00:00:33 --> 00:00:35 it out and it's quite a surprising thing.

00:00:36 --> 00:00:38 Uh, we're also going to look at water on the

00:00:38 --> 00:00:40 moon, or the lack of which could threaten

00:00:40 --> 00:00:42 future cities and the search for

00:00:42 --> 00:00:45 ocean worlds. They think they know how. We'll

00:00:45 --> 00:00:48 tell you all about it on this episode of

00:00:48 --> 00:00:49 space nuts.

00:00:49 --> 00:00:51 Generic: 15 seconds. Guidance is internal.

00:00:52 --> 00:00:54 10, 9, ignition

00:00:54 --> 00:00:55 sequence.

00:00:55 --> 00:00:56 Professor Fred Watson: Star space nuts.

00:00:56 --> 00:00:59 Generic: 5, 4, 3, 2, 1, 2, 3, 4,

00:00:59 --> 00:01:01 5, 5, 4, 3, 2', 1.

00:01:01 --> 00:01:02 Andrew Dunkley: Space nuts.

00:01:02 --> 00:01:04 Generic: Astronau. But it feels good.

00:01:05 --> 00:01:07 Andrew Dunkley: To help us with all of that is Professor

00:01:07 --> 00:01:09 Fred Watson Watson, Astronomer Large,

00:01:09 --> 00:01:12 sporting his new knee because he

00:01:12 --> 00:01:14 wanted to be needed.

00:01:17 --> 00:01:20 Professor Fred Watson: Oh, uh, dear. That's all

00:01:20 --> 00:01:23 right. Um, that's, uh,

00:01:23 --> 00:01:25 that's as good as they get today.

00:01:25 --> 00:01:27 Andrew Dunkley: I think it's, you know, that's. That's dad

00:01:27 --> 00:01:30 joke. Yeah, that's just beyond

00:01:30 --> 00:01:32 a dad joke. That's. That's weird.

00:01:34 --> 00:01:37 Professor Fred Watson: So it was three, three weeks ago yesterday

00:01:37 --> 00:01:39 that I got my new knee. So progress is

00:01:39 --> 00:01:42 happening. I am walking pretty well now.

00:01:42 --> 00:01:45 Um, I have yet to

00:01:45 --> 00:01:47 have my first drive in the car, but that'll

00:01:47 --> 00:01:49 be this week, I think. I'm told that I'm

00:01:49 --> 00:01:51 allowed to do that now. I'm off the

00:01:52 --> 00:01:55 high, um, intensity medication. Uh,

00:01:55 --> 00:01:58 and, uh, so far, so good. There was a

00:01:58 --> 00:02:00 bad week last week when things took a turn

00:02:00 --> 00:02:03 for the worse, uh, because I had an allergic

00:02:03 --> 00:02:05 reaction to the dressings that were on the

00:02:05 --> 00:02:08 knee. That can be

00:02:08 --> 00:02:10 quite dangerous, it turns out. They didn't

00:02:10 --> 00:02:11 tell me that until after they'd fixed the

00:02:11 --> 00:02:14 problem. Um, so, yeah,

00:02:14 --> 00:02:16 anyway, so it's all good. Everybody's happy

00:02:16 --> 00:02:16 at the moment.

00:02:17 --> 00:02:17 Generic: Yeah.

00:02:18 --> 00:02:20 Andrew Dunkley: Uh, the only downside is you've got the

00:02:20 --> 00:02:22 hybrid knee, which means every night you've

00:02:22 --> 00:02:23 got to plug it in to charge it.

00:02:25 --> 00:02:27 Professor Fred Watson: A bionic knee would be good for that. You

00:02:27 --> 00:02:29 could perhaps get up to speed a bit faster

00:02:29 --> 00:02:31 than I do at the moment, but no, it's working

00:02:31 --> 00:02:33 very well. All credit to the team who did the

00:02:33 --> 00:02:36 job. Dr. Parker and his friends and

00:02:36 --> 00:02:38 stuff. Uh, we had a great. We had a great

00:02:38 --> 00:02:40 time. I.

00:02:40 --> 00:02:42 Andrew Dunkley: It reminds me of Something my son told me

00:02:42 --> 00:02:44 about because he's always online looking for

00:02:44 --> 00:02:46 the next weirdest thing. And he said, um, the

00:02:46 --> 00:02:49 Chinese, I think the Chinese have invented,

00:02:49 --> 00:02:52 uh, an exoskeleton that you can

00:02:52 --> 00:02:55 wear that will walk for you so you

00:02:55 --> 00:02:56 don't have to make the effort.

00:02:56 --> 00:02:58 Professor Fred Watson: Yeah, yeah. And run.

00:02:59 --> 00:03:00 Andrew Dunkley: Oh my goodness.

00:03:00 --> 00:03:01 Professor Fred Watson: Yeah, they're good.

00:03:01 --> 00:03:04 Andrew Dunkley: Isn't technology going in strange places,

00:03:04 --> 00:03:05 directions?

00:03:05 --> 00:03:05 Professor Fred Watson: That's right, yes.

00:03:05 --> 00:03:08 Andrew Dunkley: But that, that I think is going to be great

00:03:08 --> 00:03:10 for people in the future who are um, uh,

00:03:11 --> 00:03:12 have paralysis problems or.

00:03:12 --> 00:03:14 Professor Fred Watson: Yeah. Profoundly disabled. That's right.

00:03:14 --> 00:03:15 Andrew Dunkley: Sort of thing.

00:03:15 --> 00:03:15 Professor Fred Watson: Mhm.

00:03:15 --> 00:03:18 Andrew Dunkley: And probably good for rehabilitation. Who

00:03:18 --> 00:03:18 knows?

00:03:19 --> 00:03:21 Professor Fred Watson: Maybe. Yeah, maybe.

00:03:21 --> 00:03:24 Andrew Dunkley: All right, uh, let's uh, talk about these

00:03:24 --> 00:03:27 storeys that are in the news at the

00:03:27 --> 00:03:30 moment. And the um, the

00:03:30 --> 00:03:32 focus is on Mars in terms of uh,

00:03:32 --> 00:03:35 uh, images of Martian Gul. Now a lot of

00:03:35 --> 00:03:38 things about Mars are so strikingly similar

00:03:38 --> 00:03:41 to Earth. The canyons and the, and the

00:03:41 --> 00:03:43 ocean beds and all that. The only thing

00:03:43 --> 00:03:45 lacking is well, you know, a breathable

00:03:45 --> 00:03:47 atmosphere, liquid water on the surface,

00:03:48 --> 00:03:50 weather, uh, etc. Gravity, um.

00:03:51 --> 00:03:53 But the question has come up as to what

00:03:53 --> 00:03:56 causes the gullies on Mars. Now my first

00:03:56 --> 00:03:57 thought was well hang on a minute, they were

00:03:57 --> 00:03:59 already there. I mean they happened billions

00:03:59 --> 00:04:02 of years ago and that was when water was

00:04:02 --> 00:04:05 liquid on the surface. But they've been

00:04:05 --> 00:04:07 changing without water.

00:04:08 --> 00:04:09 So what's going on?

00:04:11 --> 00:04:14 Professor Fred Watson: Uh, indeed, that is a good

00:04:14 --> 00:04:17 question. So um, probably you and I spoke

00:04:17 --> 00:04:20 about um, gullies on Mars a long

00:04:20 --> 00:04:23 time ago because there was a time when

00:04:23 --> 00:04:26 uh, it was being suggested that

00:04:26 --> 00:04:29 some of these gullies were due to

00:04:30 --> 00:04:32 the fact that on the equator on Mars in the

00:04:32 --> 00:04:35 Martian summertime you can actually

00:04:35 --> 00:04:37 get temperatures that are high enough for

00:04:37 --> 00:04:39 liquid water to exist. And the theory was

00:04:39 --> 00:04:42 that maybe, you know, there's a permafrost of

00:04:42 --> 00:04:45 uh, ice that come mid

00:04:45 --> 00:04:48 summer it melts and you get these water

00:04:48 --> 00:04:50 flows down slopes which are uh, what cause

00:04:50 --> 00:04:53 the gullies. Gullies I guess they're, you

00:04:53 --> 00:04:55 know, they're the beginnings of rivers really

00:04:55 --> 00:04:58 in a way. They're the sort of

00:04:58 --> 00:05:00 little gentle impressions

00:05:00 --> 00:05:03 in a landscape which are made by

00:05:03 --> 00:05:05 flowing water which always wants to go

00:05:05 --> 00:05:08 downhill. Uh, and eventually you carve out a

00:05:08 --> 00:05:10 river valley. Um, but as you say,

00:05:10 --> 00:05:12 uh, some of the early observations, I think

00:05:12 --> 00:05:15 with Mars Reconnaissance Orbiter, with Mars

00:05:15 --> 00:05:17 Express, um, those two

00:05:17 --> 00:05:20 venerable orbiting uh, spacecraft, it was

00:05:20 --> 00:05:22 quickly realised that these things change on

00:05:22 --> 00:05:24 a seasonal basis. And that was why

00:05:25 --> 00:05:27 uh, the thinking was that maybe there's uh,

00:05:27 --> 00:05:30 enough water to do it. However, um,

00:05:30 --> 00:05:33 it turns out that you get these

00:05:33 --> 00:05:35 gullies in regions of Mars where the

00:05:35 --> 00:05:37 temperature never gets high enough for liquid

00:05:37 --> 00:05:39 water to exist on the surface. In other words

00:05:39 --> 00:05:41 the, you know, the higher latitude regions,

00:05:41 --> 00:05:44 the regions towards the poles. And so

00:05:45 --> 00:05:48 what has happened is that a group of

00:05:48 --> 00:05:50 scientists actually in uh, one of the

00:05:50 --> 00:05:52 Parisian uh universities in France,

00:05:53 --> 00:05:55 uh, they've looked at the

00:05:55 --> 00:05:58 alternatives for water. So ruling out water

00:05:59 --> 00:06:02 you uh, can do it uh, because there's that

00:06:02 --> 00:06:04 we know what the temperature is, we know what

00:06:04 --> 00:06:05 the pressure is, uh, it's just not possible

00:06:05 --> 00:06:08 for liquid water to exist uh in

00:06:08 --> 00:06:11 some of these regions. But they did actually

00:06:11 --> 00:06:14 go even a step further. They

00:06:14 --> 00:06:16 uh, looked um, uh,

00:06:18 --> 00:06:20 from the data from Mars Express and Mars

00:06:20 --> 00:06:22 Reconnaissance Orbiter, they looked at the

00:06:22 --> 00:06:24 spectrum of some of these

00:06:24 --> 00:06:27 uh, at melting ice fields where

00:06:28 --> 00:06:31 you're looking really near the poles, ah of

00:06:31 --> 00:06:33 Mars where some of these gullies are. And

00:06:33 --> 00:06:35 they found um, there's

00:06:37 --> 00:06:40 no signature for water in uh, other words,

00:06:40 --> 00:06:42 water ice is definitely not

00:06:42 --> 00:06:45 ah, a player or liquid water is definitely

00:06:45 --> 00:06:48 not a player, um,

00:06:48 --> 00:06:50 in this storey. And so the alternative

00:06:51 --> 00:06:53 which we know is present on Mars and

00:06:53 --> 00:06:56 we know that at least some of Mars's polar

00:06:56 --> 00:06:58 ice caps are made of this is

00:06:58 --> 00:07:01 uh, solid carbon dioxide or

00:07:01 --> 00:07:03 carbon dioxide generally. We

00:07:04 --> 00:07:06 on Earth are familiar with solid carbon

00:07:06 --> 00:07:08 dioxide as dry ice. Uh, uh,

00:07:08 --> 00:07:11 on Mars it does exist.

00:07:11 --> 00:07:14 We know there's a frost of dry ice near the

00:07:14 --> 00:07:17 poles. Uh but because the pressure is

00:07:17 --> 00:07:20 lower on Mars, um, it's got slightly

00:07:20 --> 00:07:22 different uh mechanisms of

00:07:22 --> 00:07:25 behaviour. Uh so uh, it

00:07:25 --> 00:07:28 is possible for dryas, dry ice and

00:07:28 --> 00:07:30 Earth just sublimes. It goes straight from a

00:07:30 --> 00:07:33 solid to a gas. But I think under

00:07:33 --> 00:07:35 certain conditions on Mars it can be a liquid

00:07:35 --> 00:07:38 for a short time. So uh,

00:07:38 --> 00:07:41 what's the storey? These researchers

00:07:41 --> 00:07:44 uh had two theories uh which

00:07:44 --> 00:07:47 were to try and explain the origin

00:07:48 --> 00:07:51 uh of the gullies. Uh

00:07:51 --> 00:07:54 one is something which is um, a

00:07:54 --> 00:07:57 geyser, um, mechanism. The idea is

00:07:57 --> 00:07:59 you've got geysers which we're familiar with

00:07:59 --> 00:08:02 as jets of hot water uh, coming

00:08:02 --> 00:08:05 up from uh, underneath the surface of

00:08:05 --> 00:08:08 Earth being heated by magmatic heat.

00:08:08 --> 00:08:11 I think both of us, you and I, Andrew, have

00:08:11 --> 00:08:13 been to the place that gives those things

00:08:13 --> 00:08:15 their name. Geysir in Iceland

00:08:15 --> 00:08:17 did visit the guys there.

00:08:17 --> 00:08:20 Andrew Dunkley: Oh yeah, yeah, yeah. Actually the best one

00:08:20 --> 00:08:21 I've ever seen was in New Zealand.

00:08:22 --> 00:08:25 Professor Fred Watson: Yeah, at Rotorua.

00:08:25 --> 00:08:25 Andrew Dunkley: Wow.

00:08:25 --> 00:08:28 Professor Fred Watson: Rotorua, that's right, yeah. Uh, so

00:08:28 --> 00:08:31 anyway, um, we don't call them Rotoruas, we

00:08:31 --> 00:08:33 call them geysers. That's because of the one

00:08:33 --> 00:08:36 In Iceland. So what's the theory there?

00:08:36 --> 00:08:38 The theory is that

00:08:38 --> 00:08:41 um, you've got basically

00:08:41 --> 00:08:44 a sheet of, of dry

00:08:44 --> 00:08:47 ice of solid carbon dioxide that

00:08:47 --> 00:08:49 forms in the wintertime.

00:08:50 --> 00:08:52 And as spring comes,

00:08:54 --> 00:08:57 the heat passing through that sheet of

00:08:57 --> 00:08:59 dry ice, uh, basically warms up the

00:08:59 --> 00:09:02 soil underneath and that

00:09:02 --> 00:09:05 turns some of the ice, this

00:09:05 --> 00:09:08 carbon dioxide ice, into gaseous carbon

00:09:08 --> 00:09:10 dioxide. So you've got a buildup of pressure

00:09:11 --> 00:09:13 underneath the sheet of ice and eventually

00:09:13 --> 00:09:16 the ice basically ruptures bang and out

00:09:16 --> 00:09:19 comes this high velocity jet of carbon

00:09:19 --> 00:09:22 dioxide. Um, and the theory

00:09:22 --> 00:09:24 is that that takes a lot of soil and

00:09:25 --> 00:09:28 uh, you know, dust and stuff with it and that

00:09:28 --> 00:09:30 gives you, gives rise to the gullies. It

00:09:30 --> 00:09:33 gives you the, basically the

00:09:33 --> 00:09:35 discoloration that we see in the gullies.

00:09:36 --> 00:09:39 Uh, and that is a mechanism that

00:09:39 --> 00:09:42 they looked at. But uh, what

00:09:42 --> 00:09:45 has caused them to discard that idea

00:09:45 --> 00:09:48 is that the

00:09:48 --> 00:09:51 geyser action would appear

00:09:52 --> 00:09:54 um, around the spring

00:09:54 --> 00:09:56 equinox on Mars. Ah,

00:09:57 --> 00:10:00 but you don't see this

00:10:00 --> 00:10:03 gully activity, these darkenings of the

00:10:03 --> 00:10:06 gullies until later in

00:10:06 --> 00:10:07 the year. You don't see them until

00:10:08 --> 00:10:11 getting on almost for the Martian summer when

00:10:11 --> 00:10:14 those geysers should have shut down. So

00:10:14 --> 00:10:17 they ruled that out as the

00:10:17 --> 00:10:20 origin. Um, and this

00:10:20 --> 00:10:23 is the uh, start of what they looked at

00:10:23 --> 00:10:26 instead, which is something

00:10:26 --> 00:10:29 a bit similar. But rather than an

00:10:29 --> 00:10:32 sort of explosive process with the carbon

00:10:32 --> 00:10:34 dioxide sort of, you know, bursting out from

00:10:34 --> 00:10:37 underneath these sheets of dry ice, uh, what

00:10:37 --> 00:10:40 you've got is the idea that there are, there

00:10:40 --> 00:10:43 are small, um,

00:10:44 --> 00:10:46 there aren't, you know, there might be small

00:10:46 --> 00:10:48 cracks in the ice but there's nothing big.

00:10:49 --> 00:10:51 But what happens instead of the gas

00:10:51 --> 00:10:54 bursting out through a large

00:10:54 --> 00:10:57 crack in the ice, the gas stays underneath

00:10:57 --> 00:11:00 the sheet of ice but kind of lubricates

00:11:00 --> 00:11:03 it, uh, uh, so that you've got

00:11:03 --> 00:11:06 essentially a floating sheet

00:11:06 --> 00:11:08 of dry ice and of course gravity takes over

00:11:08 --> 00:11:11 so it slides down the slope and actually

00:11:11 --> 00:11:14 can cause the appearance of these

00:11:14 --> 00:11:17 gullies. Uh, and so uh,

00:11:17 --> 00:11:19 that's their current favourite theory for

00:11:19 --> 00:11:22 how these gullies uh, form. And their

00:11:22 --> 00:11:25 modelling shows that in the end what you've

00:11:25 --> 00:11:28 got uh, is exactly what we see in uh the

00:11:28 --> 00:11:31 gullies on Mars. Uh, and they make a comment

00:11:32 --> 00:11:34 um, that Earth, uh, like features don't

00:11:34 --> 00:11:36 always require Earth like physics. I think

00:11:36 --> 00:11:38 that might actually be a comment from

00:11:38 --> 00:11:40 Universe Today, uh, which is where this

00:11:40 --> 00:11:41 article comes from.

00:11:41 --> 00:11:44 An old friend of ours, Univers, uh,

00:11:44 --> 00:11:46 uh, uh, with Fraser Cain and others,

00:11:46 --> 00:11:49 uh, um, involved with that. So no liquid

00:11:49 --> 00:11:52 water on Mars. But uh, dry ice gullies

00:11:52 --> 00:11:53 perhaps?

00:11:53 --> 00:11:55 Andrew Dunkley: Yeah. I like the way they

00:11:56 --> 00:11:59 describe it for people like me to get

00:11:59 --> 00:12:01 into our heads what might be going on.

00:12:01 --> 00:12:02 They call it the air hockey effect.

00:12:03 --> 00:12:03 Professor Fred Watson: Yes.

00:12:03 --> 00:12:03 Generic: Ah.

00:12:03 --> 00:12:06 Andrew Dunkley: If anyone's ever been to an arcade and played

00:12:06 --> 00:12:08 air hockey, it's um, it's played on a

00:12:08 --> 00:12:11 table with lots of little pinholes in it

00:12:11 --> 00:12:14 blowing air up, uh, which causes a

00:12:14 --> 00:12:17 disc to be able to hover when you hit it. And

00:12:17 --> 00:12:19 that's, that's what they think might be the

00:12:19 --> 00:12:21 effect that's changing and causing the

00:12:21 --> 00:12:24 gullies on Mars. So really fascinating,

00:12:25 --> 00:12:27 really fascinating. Um, the other effect

00:12:27 --> 00:12:30 is um, is comparing a human bodily

00:12:30 --> 00:12:33 function. It's not as big and powerful as a

00:12:33 --> 00:12:36 trumpet, but it could be a silent but deadly.

00:12:40 --> 00:12:42 Professor Fred Watson: I'm going to leave that one completely alone,

00:12:42 --> 00:12:43 Andrew.

00:12:43 --> 00:12:44 Andrew Dunkley: Just leave that one hanging in the

00:12:44 --> 00:12:46 Professor Fred Watson: air Fred Watson, as you would, yes.

00:12:47 --> 00:12:49 I'm afraid we've got a dog that does that.

00:12:49 --> 00:12:51 You don't see that side of Jordy's

00:12:51 --> 00:12:53 personality. Um, but we do.

00:12:54 --> 00:12:56 Andrew Dunkley: Hearing, hearing him's enough.

00:12:56 --> 00:12:59 Professor Fred Watson: Yes it is. Yeah, yeah. Oh, uh,

00:12:59 --> 00:12:59 gosh.

00:12:59 --> 00:13:02 Andrew Dunkley: But uh, no, it's fascinating and if you want

00:13:02 --> 00:13:05 to read about IT, universetoday, uh.com is

00:13:05 --> 00:13:07 the website where you'll find that very

00:13:07 --> 00:13:10 interesting storey. This is Space Nuts with

00:13:10 --> 00:13:12 Andrew Dunkley and Professor Fred Watson

00:13:12 --> 00:13:13 Watson.

00:13:15 --> 00:13:17 Generic: 0G and I feel fine.

00:13:17 --> 00:13:20 Andrew Dunkley: Space Nuts, our uh, next storey takes us from

00:13:20 --> 00:13:23 not water on Mars to a particular

00:13:23 --> 00:13:26 lack of water on the moon. And the reason

00:13:26 --> 00:13:29 they're saying that is because of

00:13:29 --> 00:13:32 um, you know, the potential for people living

00:13:32 --> 00:13:34 long term on the lunar surface.

00:13:34 --> 00:13:36 And up until now they've thought well there's

00:13:36 --> 00:13:38 a ready supply of water, everything will be

00:13:38 --> 00:13:41 fine, we can build a million person

00:13:41 --> 00:13:44 city there and um, yeah, it'll be

00:13:44 --> 00:13:47 great. Uh, now they don't think that's the

00:13:47 --> 00:13:49 case. They don't think there's nearly enough

00:13:49 --> 00:13:51 water to sustain uh, even a small

00:13:51 --> 00:13:54 city on uh, on the moon. So

00:13:54 --> 00:13:56 what's um, what's going on there,

00:13:56 --> 00:13:58 Fred Watson? And there's Earth.

00:13:59 --> 00:14:01 Professor Fred Watson: Yeah, Earth just making a comment there. Um,

00:14:02 --> 00:14:05 so thank you Jordan. Yeah,

00:14:06 --> 00:14:09 uh, very tiring. Yeah. One day

00:14:09 --> 00:14:11 we'll, I hope he'll end up on the moon.

00:14:13 --> 00:14:15 So yes, that we've got. And look the

00:14:15 --> 00:14:18 whole, it's really interesting the extent to

00:14:18 --> 00:14:20 which our explanation, you know, our

00:14:20 --> 00:14:23 exploration of the moon in terms of human

00:14:23 --> 00:14:26 landing is focused on this idea

00:14:26 --> 00:14:29 of there being copious water uh, on the

00:14:29 --> 00:14:32 moon. Uh, I'm doing a talk this weekend

00:14:32 --> 00:14:34 uh, at Macquarie uh, University. I'm their

00:14:34 --> 00:14:36 Keynote speaker for their open astronomy

00:14:36 --> 00:14:38 night, which I'm very honoured to be doing.

00:14:39 --> 00:14:42 Um, and it's. My talk's about the future

00:14:42 --> 00:14:45 of Artemis and uh, other ventures

00:14:45 --> 00:14:47 to the Moon. And it all focuses

00:14:48 --> 00:14:50 on the southern polar region of the Moon

00:14:51 --> 00:14:51 where

00:14:53 --> 00:14:56 uh, there is a cluster

00:14:56 --> 00:14:59 of quite deep craters which

00:14:59 --> 00:15:02 never see sunlight, uh, because they're

00:15:02 --> 00:15:05 at the south pole. Um, the

00:15:05 --> 00:15:08 sun always misses their depths. Uh,

00:15:08 --> 00:15:11 some of them are quite deep. The one

00:15:11 --> 00:15:13 actually at the south pole, which is called

00:15:13 --> 00:15:15 Shackleton Crater, that's four kilometres

00:15:15 --> 00:15:17 deep, it's 20 kilometres across. Um,

00:15:17 --> 00:15:20 and uh, the evidence from previous space

00:15:20 --> 00:15:23 missions is that there is water ice

00:15:23 --> 00:15:25 in the base of these craters that may be

00:15:25 --> 00:15:27 billions of years old. Andrew because, uh,

00:15:27 --> 00:15:30 it's never seen the sun, so it's never been,

00:15:30 --> 00:15:33 you know, warmed up enough to turn into a

00:15:33 --> 00:15:35 gas. And the temperature in some of these

00:15:35 --> 00:15:37 craters is extremely low, um, minus

00:15:37 --> 00:15:40 200 or thereabouts. So it's frozen

00:15:40 --> 00:15:43 solid. So, um, we've got this whole

00:15:43 --> 00:15:46 focus now on getting um,

00:15:46 --> 00:15:49 spacecraft and humans eventually with

00:15:49 --> 00:15:52 Artemis 4, hopefully, uh,

00:15:52 --> 00:15:55 early in 2028, uh, actually

00:15:55 --> 00:15:58 landing on the Moon in this region. Uh, and

00:15:58 --> 00:16:00 it's quite a hazardous thing to do because

00:16:00 --> 00:16:02 the south pole of the Moon is very

00:16:02 --> 00:16:04 mountainous. It's got all these craters. It's

00:16:04 --> 00:16:07 not smooth, uh, sailing in terms of

00:16:07 --> 00:16:09 finding nice, um, flat places to land,

00:16:10 --> 00:16:12 as happened with the Apollo missions, which

00:16:12 --> 00:16:15 were all in much less

00:16:15 --> 00:16:18 challenging parts of the Moon's surf. So the

00:16:18 --> 00:16:21 focus on water on the Moon is

00:16:21 --> 00:16:23 enormous and uh, I don't

00:16:23 --> 00:16:26 know that it's really been

00:16:26 --> 00:16:29 looked at in great detail before,

00:16:29 --> 00:16:32 but we now have some work that

00:16:32 --> 00:16:35 suggests that, uh, yes, there probably

00:16:35 --> 00:16:38 is water on the Moon's surface,

00:16:38 --> 00:16:41 but, uh, there might not

00:16:41 --> 00:16:43 be enough of it to make it,

00:16:44 --> 00:16:47 um, you know, uh, available on an industrial

00:16:47 --> 00:16:49 scale, if I can put that. A place where

00:16:49 --> 00:16:52 humans could survive, uh, permanently or

00:16:52 --> 00:16:54 where you could have permanent presence.

00:16:55 --> 00:16:58 So it's um, a theory

00:16:58 --> 00:17:01 that really I think will start, uh, you know,

00:17:01 --> 00:17:03 raising a few eyebrows.

00:17:04 --> 00:17:07 Um, uh, it's come from,

00:17:08 --> 00:17:10 I guess, um, the idea of

00:17:11 --> 00:17:14 uh, just how much water there

00:17:14 --> 00:17:17 is there, um, you know, on the basis of the

00:17:17 --> 00:17:19 geography, if I can put it that way, the fact

00:17:19 --> 00:17:21 that you have got these deep craters, um,

00:17:22 --> 00:17:25 I, I uh, think the

00:17:25 --> 00:17:28 jury is still out on, on

00:17:28 --> 00:17:30 um, uh, just how much

00:17:30 --> 00:17:33 water there is, what form it takes, because

00:17:33 --> 00:17:36 it, you know, it could be buried under,

00:17:36 --> 00:17:37 under rock.

00:17:37 --> 00:17:39 Uh, we're really in a, in a region

00:17:40 --> 00:17:42 of um, very big unansw

00:17:43 --> 00:17:46 and um, I don't think we've Talked about

00:17:46 --> 00:17:49 this, uh, Andrew, but um, Chang'

00:17:49 --> 00:17:51 E7 which is a Chinese ah, mission

00:17:51 --> 00:17:54 to land, uh, very near Shackleton Crater,

00:17:54 --> 00:17:56 actually the one I've just mentioned, uh,

00:17:57 --> 00:17:58 which was supposed to launch,

00:17:59 --> 00:18:02 actually I think the day before my knee

00:18:02 --> 00:18:03 operation it was supposed to launch but it

00:18:03 --> 00:18:06 was cancelled at very short notice

00:18:06 --> 00:18:09 with a fairly brief note from the China

00:18:09 --> 00:18:12 uh, space Agency, uh,

00:18:12 --> 00:18:15 and uh, that now looks as though it won't

00:18:15 --> 00:18:18 happen till 2027. But that spacecraft

00:18:18 --> 00:18:21 carried uh, not just a rover, there's an

00:18:21 --> 00:18:24 orbiter, a rover and a lander of course, but

00:18:24 --> 00:18:26 also a hopper, a little

00:18:26 --> 00:18:29 vehicle that will hop into

00:18:29 --> 00:18:32 craters rather than try and go down

00:18:32 --> 00:18:34 into craters on wheels. And

00:18:35 --> 00:18:37 that's um, the idea is to use that hopper,

00:18:38 --> 00:18:40 uh, to try and find the water chang' uh e7

00:18:41 --> 00:18:43 when it is launched, might be the first we

00:18:43 --> 00:18:46 know of, uh, you know, first, first hand,

00:18:46 --> 00:18:49 um, experience, if I can put it that way, of

00:18:49 --> 00:18:51 what the water is like in these craters.

00:18:51 --> 00:18:53 Sadly uh, we're going to have to wait a bit

00:18:53 --> 00:18:56 longer than we thought we did. But uh, that's

00:18:56 --> 00:18:57 one step forward.

00:18:57 --> 00:19:00 And the hopper by the way is unlike anything

00:19:00 --> 00:19:02 that NASA is planning for the Artemis

00:19:02 --> 00:19:05 mission. So really interesting area.

00:19:05 --> 00:19:08 Uh, we, I think we're still groping in the

00:19:08 --> 00:19:10 dark a bit, if I can put it that way, given

00:19:10 --> 00:19:12 that these craters are definitely in the dark

00:19:13 --> 00:19:15 about just how much water there is. But it's

00:19:15 --> 00:19:16 possible that there might not be enough to

00:19:16 --> 00:19:18 make it that uh, well worthwhile.

00:19:19 --> 00:19:21 Andrew Dunkley: Yeah, I suppose you've got to consider the

00:19:21 --> 00:19:24 limitations in our capacity to look for it.

00:19:24 --> 00:19:26 At the moment they've only got the

00:19:26 --> 00:19:29 ability to look to shallow depths.

00:19:29 --> 00:19:32 So there could be water uh, deeper in

00:19:32 --> 00:19:35 the Moon's, um. Yes,

00:19:35 --> 00:19:38 yes, that, that we haven't found. So

00:19:38 --> 00:19:39 there may be more.

00:19:41 --> 00:19:43 But based on what we know now,

00:19:43 --> 00:19:46 putting a um, a city on the

00:19:46 --> 00:19:49 moon for you know, hundreds of

00:19:49 --> 00:19:51 thousands of people, it's just not feasible.

00:19:51 --> 00:19:53 It wouldn't uh, it wouldn't last. I think

00:19:53 --> 00:19:54 they said it wouldn't last a year.

00:19:55 --> 00:19:55 Professor Fred Watson: Yeah.

00:19:55 --> 00:19:58 Andrew Dunkley: Based on the resources that exist on current

00:19:58 --> 00:20:01 estimates, I couldn't

00:20:01 --> 00:20:04 imagine that many people living on the Moon,

00:20:04 --> 00:20:04 can you?

00:20:05 --> 00:20:07 Professor Fred Watson: No, not really. Uh, I think um,

00:20:08 --> 00:20:11 it's not a place you'd want to.

00:20:11 --> 00:20:14 I can imagine there being things like the

00:20:14 --> 00:20:17 outpost we have in Antarctica. I think that's

00:20:17 --> 00:20:20 a sort of reasonably sustainable model for

00:20:20 --> 00:20:23 exploring the Moon. But yeah, cities of

00:20:24 --> 00:20:26 tens of thousands of people I think is a non

00:20:26 --> 00:20:29 starter and this perhaps

00:20:29 --> 00:20:30 underlines that. That's, I guess the point

00:20:31 --> 00:20:31 uh, of

00:20:31 --> 00:20:34 Andrew Dunkley: the article, uh, they do

00:20:34 --> 00:20:37 go on to say that, um, a village of a

00:20:37 --> 00:20:39 thousand, maybe ten thousand people would

00:20:39 --> 00:20:42 last centuries though, if they kept

00:20:42 --> 00:20:44 the numbers down. So, um,

00:20:45 --> 00:20:47 the resources that exist at the moment are

00:20:47 --> 00:20:49 feasible to an extent.

00:20:49 --> 00:20:50 Professor Fred Watson: Yes.

00:20:51 --> 00:20:54 Andrew Dunkley: Um, and you

00:20:54 --> 00:20:56 also have to bring into play things

00:20:57 --> 00:20:59 like recycling, uh, of water. Uh, they

00:20:59 --> 00:21:02 use recycled water on the International Space

00:21:02 --> 00:21:04 Station and I think it's got over 98

00:21:04 --> 00:21:07 efficiency. You'd have to do that on the

00:21:07 --> 00:21:09 moon, otherwise you're going to go through it

00:21:09 --> 00:21:12 like a packet of salt and

00:21:12 --> 00:21:13 quite.

00:21:14 --> 00:21:15 Professor Fred Watson: And.

00:21:15 --> 00:21:17 Andrew Dunkley: And then you've got a real problem. The only

00:21:17 --> 00:21:20 other way of dealing with it, well, two ways

00:21:20 --> 00:21:22 would be to transport water from Earth. But

00:21:22 --> 00:21:25 do we really want to do that? Uh, or harvest

00:21:25 --> 00:21:28 it. Harvest it from somewhere else.

00:21:28 --> 00:21:31 Professor Fred Watson: That's the whole point of going to the moon.

00:21:31 --> 00:21:33 Uh, and of course, this water is not just for

00:21:33 --> 00:21:36 keeping a city running, it's to act as rocket

00:21:36 --> 00:21:39 fuel for future, uh, exploration beyond the

00:21:39 --> 00:21:42 moon. So that's one of the appealing features

00:21:42 --> 00:21:44 about it. Yeah, very interesting. Um,

00:21:44 --> 00:21:47 and, uh, it does

00:21:48 --> 00:21:51 beg the question as to whether strategies

00:21:51 --> 00:21:54 will change dramatically, uh, once

00:21:54 --> 00:21:56 we've had a chance to see it firsthand just

00:21:56 --> 00:21:59 how much water there is there. Because

00:21:59 --> 00:22:00 that's still.

00:22:00 --> 00:22:03 Andrew Dunkley: Yeah, it might force Elon to, uh, he's

00:22:03 --> 00:22:05 abandoned Mars already. Too hard.

00:22:06 --> 00:22:08 Um, now that the moon's lacking water, he

00:22:08 --> 00:22:11 might go, well, we won't go there either.

00:22:11 --> 00:22:13 What's Enceladus doing at the moment?

00:22:15 --> 00:22:16 Professor Fred Watson: Yes, that's right.

00:22:16 --> 00:22:17 Andrew Dunkley: Yeah.

00:22:17 --> 00:22:18 Professor Fred Watson: Could be squirting water out.

00:22:18 --> 00:22:21 Andrew Dunkley: Yeah, well, that'd make it easy to

00:22:21 --> 00:22:23 collect. Uh, if you want to read about that,

00:22:23 --> 00:22:26 it's on the Phys P h y s fizz.org website.

00:22:26 --> 00:22:28 Or you can read the study that was published

00:22:28 --> 00:22:31 in Frontiers in Space Technologies.

00:22:32 --> 00:22:33 You're, uh, listening to Space Nuts with

00:22:33 --> 00:22:35 Andrew Dunkley and Professor Fred Watson

00:22:35 --> 00:22:36 Watson.

00:22:38 --> 00:22:40 Generic: I think we need to do a little more all

00:22:40 --> 00:22:41 weather testing.

00:22:42 --> 00:22:43 Professor Fred Watson: Amen, Space Nuts.

00:22:44 --> 00:22:46 Andrew Dunkley: Our final storey. Fred Watson, uh, continues

00:22:46 --> 00:22:49 to look for water, but on a

00:22:49 --> 00:22:52 much larger scale. Uh, we've been looking

00:22:52 --> 00:22:55 for exoplanets for yonks now

00:22:55 --> 00:22:58 and we've found five and a half thousand

00:22:58 --> 00:23:01 plus. But we haven't found a water world,

00:23:01 --> 00:23:04 an ocean world. And they think they

00:23:04 --> 00:23:07 now know how to look for them, I

00:23:07 --> 00:23:08 think is the gist of this storey.

00:23:08 --> 00:23:10 Professor Fred Watson: That's correct. That's right.

00:23:11 --> 00:23:14 Um, yeah. So, yeah, this

00:23:14 --> 00:23:16 is actually a storey I like a lot because I,

00:23:16 --> 00:23:18 um, remember being very excited,

00:23:19 --> 00:23:22 uh, back in the early 2000s,

00:23:22 --> 00:23:24 I guess, uh, when this.

00:23:24 --> 00:23:27 Exactly this same technique, uh, that is

00:23:27 --> 00:23:30 being discussed here was used

00:23:30 --> 00:23:32 to demonstrate that

00:23:33 --> 00:23:36 uh, Saturn's moon Titan has

00:23:36 --> 00:23:39 liquid ocean, not liquid oceans, I beg your

00:23:39 --> 00:23:41 pardon, liquid seas and lakes near its north

00:23:41 --> 00:23:44 pole. Uh, and it was uh,

00:23:44 --> 00:23:47 images made by the Cassini spacecraft

00:23:47 --> 00:23:50 in its early period of uh, orbiting

00:23:50 --> 00:23:53 around Saturn. The problem with Titan

00:23:53 --> 00:23:56 is it's got a thick atmosphere, uh,

00:23:56 --> 00:23:59 that is almost completely opaque. And

00:23:59 --> 00:24:02 so uh, you can use infrared to penetrate

00:24:02 --> 00:24:04 through it for a while, but uh,

00:24:06 --> 00:24:08 to some depth of clarity.

00:24:08 --> 00:24:10 But um,

00:24:12 --> 00:24:15 the real way of exploring uh, Titan, which

00:24:15 --> 00:24:18 is what Cassini did, is by radar,

00:24:18 --> 00:24:21 uh, you do it by radar. And that's

00:24:21 --> 00:24:23 uh, one of the reasons that we've been able

00:24:23 --> 00:24:26 to map uh, these seas and lakes.

00:24:26 --> 00:24:29 But the way they were first detected was

00:24:29 --> 00:24:32 when Cassini, uh, when its

00:24:32 --> 00:24:35 cameras were aimed at Titan,

00:24:35 --> 00:24:38 Uh, uh, at a time when

00:24:39 --> 00:24:41 the angle between the

00:24:41 --> 00:24:44 spacecraft, the moon,

00:24:44 --> 00:24:46 Titan itself and the sun

00:24:47 --> 00:24:49 was such that you would get a direct

00:24:49 --> 00:24:52 reflection off the liquid

00:24:52 --> 00:24:54 surface that was thought to be near the north

00:24:54 --> 00:24:57 pole of Titan. And sure enough,

00:24:57 --> 00:25:00 uh, there was uh, what we call a glint,

00:25:00 --> 00:25:03 uh, which is a sun glint comes from a

00:25:03 --> 00:25:05 liquid water surface that was detected.

00:25:06 --> 00:25:08 That's how Cassini, Cassini first established

00:25:08 --> 00:25:11 that there are lakes and seas, uh,

00:25:11 --> 00:25:14 uh, on Titan. And it was then they were

00:25:14 --> 00:25:17 subsequently mapped uh, very accurately

00:25:17 --> 00:25:20 by uh, Cassini's radar. I've still

00:25:20 --> 00:25:22 got some extraordinary maps that came from

00:25:22 --> 00:25:25 that era showing uh, these seas and

00:25:25 --> 00:25:27 lakes um, near Titan's north pole. So

00:25:28 --> 00:25:30 the question that is being asked in this

00:25:30 --> 00:25:32 piece of research that we're talking about

00:25:32 --> 00:25:33 once again this comes to us courtesy of

00:25:33 --> 00:25:35 Universe today, uh, is

00:25:36 --> 00:25:39 can you do the same thing with

00:25:39 --> 00:25:41 exoplanets? Supposing you

00:25:42 --> 00:25:45 have uh, a suspicion that uh,

00:25:45 --> 00:25:48 One of the 5

00:25:48 --> 00:25:51 now known exoplanets, planets orbiting

00:25:51 --> 00:25:54 uh, other stars, if you have a suspicion that

00:25:54 --> 00:25:56 one of them might have conditions where

00:25:56 --> 00:25:59 liquid water could exist, or in the case

00:25:59 --> 00:26:01 of, as in the case of Titan, liquid

00:26:01 --> 00:26:04 hydrocarbons, liquid natural gas.

00:26:04 --> 00:26:07 Um, could you use this glint technique

00:26:07 --> 00:26:10 uh, to try and establish if you

00:26:10 --> 00:26:13 did have a ah, water world, in other words

00:26:14 --> 00:26:16 a world covered completely by oceans.

00:26:17 --> 00:26:20 Uh, and those things have been hypothesised,

00:26:20 --> 00:26:21 actually we've talked about them before,

00:26:21 --> 00:26:24 these so called Hycean worlds. Uh,

00:26:24 --> 00:26:27 Hycean is basically a

00:26:27 --> 00:26:29 term that's been uh, concocted to represent

00:26:29 --> 00:26:31 a world with an atmosphere of hydrogen.

00:26:31 --> 00:26:34 That's where the high comes from. Uh, but a

00:26:34 --> 00:26:37 liquid ocean surface, uh, hence the shen.

00:26:37 --> 00:26:40 So it's a Haitian world. How could you use

00:26:40 --> 00:26:43 this glint technique to demonstrate

00:26:43 --> 00:26:46 that a suspected Haitian world really

00:26:46 --> 00:26:48 was a Haitian world? So two

00:26:48 --> 00:26:51 scientists at the University of

00:26:51 --> 00:26:54 Arizona, uh, which is in Tucson, Uh, I've got

00:26:54 --> 00:26:56 some good friends there, but they don't

00:26:56 --> 00:26:58 include these people. I don't know them well

00:26:58 --> 00:27:01 or all I know is their names. Uh, what

00:27:01 --> 00:27:03 they've done is they've, they've

00:27:03 --> 00:27:06 done what you might call the physics of how

00:27:06 --> 00:27:08 glints might work. Uh, and

00:27:12 --> 00:27:15 the bottom line is that

00:27:15 --> 00:27:18 it's potentially a good

00:27:18 --> 00:27:21 way of doing this. But there are certain

00:27:21 --> 00:27:23 conditions that have to be

00:27:23 --> 00:27:25 fulfilled, um, because

00:27:26 --> 00:27:29 you've got to get the angles right first of

00:27:29 --> 00:27:31 all. Um, and, and that

00:27:31 --> 00:27:33 angle is all about

00:27:35 --> 00:27:38 the object being relatively near to

00:27:38 --> 00:27:41 its parent star. So you get this

00:27:41 --> 00:27:44 um, sort of grazing angle almost

00:27:44 --> 00:27:46 of the water, sorry, the light hitting the

00:27:46 --> 00:27:49 water and then being reflected back. Now that

00:27:49 --> 00:27:51 itself presents a problem because,

00:27:51 --> 00:27:54 um, at the moment most

00:27:54 --> 00:27:56 of the exoplanets that have been discovered

00:27:57 --> 00:27:59 uh, are ah, only known because they

00:28:00 --> 00:28:02 uh, have an effect on their parent star.

00:28:02 --> 00:28:04 Whether it's blocking the light of the parent

00:28:04 --> 00:28:06 star as they pass in front of it or whether

00:28:06 --> 00:28:09 it's pulling it slightly out of position by

00:28:09 --> 00:28:11 what we call the Doppler wobble, um,

00:28:11 --> 00:28:14 technique. Uh, these mean that you

00:28:14 --> 00:28:15 never see the planet that you're trying to

00:28:15 --> 00:28:17 observe. You just see its effect on the star.

00:28:18 --> 00:28:20 So really what we're talking about here could

00:28:20 --> 00:28:22 only apply if you've got direct

00:28:22 --> 00:28:25 observations of the planet. And if you

00:28:25 --> 00:28:27 need the planet to be close to the star to

00:28:27 --> 00:28:29 get the angle right, then that's a chance

00:28:30 --> 00:28:33 because the star is um, sometimes billions of

00:28:33 --> 00:28:34 times brighter than the planet that you're

00:28:34 --> 00:28:37 looking for. However, it's not impossible.

00:28:37 --> 00:28:39 And there are things called coronagraphs,

00:28:39 --> 00:28:42 which are essentially uh, devices that

00:28:42 --> 00:28:44 suppress the light of a star so that you can

00:28:44 --> 00:28:47 look for planets uh, nearby. And

00:28:47 --> 00:28:49 so, uh, what um, these

00:28:49 --> 00:28:52 scientists are doing is feeding this

00:28:52 --> 00:28:55 information into people who are working

00:28:56 --> 00:28:58 on uh, something that I think is still a, ah,

00:28:58 --> 00:29:01 hypothetical spacecraft, uh, something

00:29:01 --> 00:29:04 called the Habitable Worlds Observatory,

00:29:04 --> 00:29:07 uh, which will look at the possibility of

00:29:07 --> 00:29:09 there being habitable worlds among some of

00:29:09 --> 00:29:11 these, uh, five and a half thousand

00:29:12 --> 00:29:14 known exoplanets. Uh, what they've done is

00:29:14 --> 00:29:17 they've fed uh, these conditions,

00:29:17 --> 00:29:20 this information into the designers to

00:29:20 --> 00:29:22 say, yeah, you can probably do this, but you

00:29:22 --> 00:29:24 need to do this, this, this and this when you

00:29:24 --> 00:29:27 build your spacecraft in order for uh,

00:29:27 --> 00:29:29 potential water worlds to be discovered. So

00:29:29 --> 00:29:30 quite a nice piece of research.

00:29:31 --> 00:29:33 Andrew Dunkley: Yes, indeed. I hope they do find something

00:29:33 --> 00:29:36 like that eventually. I think it'd be really

00:29:36 --> 00:29:38 exciting to find a water world,

00:29:38 --> 00:29:40 ah, ice moons, I suppose count

00:29:41 --> 00:29:44 because, um, they have

00:29:45 --> 00:29:48 oceans inside them, but, um.

00:29:48 --> 00:29:48 Professor Fred Watson: Correct.

00:29:49 --> 00:29:52 Andrew Dunkley: An actual planet that is

00:29:52 --> 00:29:55 covered in water. Um, we know of

00:29:55 --> 00:29:56 only one. But

00:29:58 --> 00:30:01 there's got to be more, surely. There's got

00:30:01 --> 00:30:03 to be more. Statistically,

00:30:04 --> 00:30:05 there's got to be more.

00:30:06 --> 00:30:08 Professor Fred Watson: Yeah, one would think that's right. Whether

00:30:08 --> 00:30:10 they are findable by our current technology

00:30:11 --> 00:30:12 is of course, another question.

00:30:13 --> 00:30:15 Andrew Dunkley: Yeah, well, um, in time, maybe.

00:30:16 --> 00:30:18 But then the Vera Rubin Observatory,

00:30:19 --> 00:30:22 who knows, um, that

00:30:22 --> 00:30:23 we'd never even thought of.

00:30:24 --> 00:30:26 Professor Fred Watson: That's correct. And of course an anti Grace

00:30:26 --> 00:30:29 Roman, uh, spacecraft recently launched,

00:30:29 --> 00:30:30 which we hope we'll see results from early

00:30:30 --> 00:30:33 next year, that does have a coronagraph. Uh,

00:30:33 --> 00:30:36 so it does have a device to look at some of

00:30:36 --> 00:30:38 these planets directly.

00:30:38 --> 00:30:41 Andrew Dunkley: Yes, indeed. Uh, very exciting times ahead

00:30:42 --> 00:30:44 and, um, won't be long before we start

00:30:44 --> 00:30:47 getting, um, some information back from,

00:30:47 --> 00:30:50 uh, that telescope either. Uh, it's on its

00:30:50 --> 00:30:52 way. Uh, yes. Uh, so if you'd like to read

00:30:52 --> 00:30:54 about that particular storey in the search

00:30:54 --> 00:30:57 for water Worlds UniverseToday, uh, dot com

00:30:57 --> 00:31:00 again is, uh, is a source that's, uh, very

00:31:00 --> 00:31:02 well worth visiting.

00:31:02 --> 00:31:05 And that brings us to the end of the show.

00:31:05 --> 00:31:06 Fred Watson, thank you so much.

00:31:07 --> 00:31:10 Professor Fred Watson: You're welcome, Andrew. Um, it's been a

00:31:10 --> 00:31:11 pleasure and a privilege to talk to you and

00:31:11 --> 00:31:13 I. I do hope we can do it again sometime.

00:31:13 --> 00:31:16 Andrew Dunkley: I, I hope we can do it really, really,

00:31:16 --> 00:31:17 really, really soon.

00:31:19 --> 00:31:20 Professor Fred Watson: Maybe so.

00:31:20 --> 00:31:22 Andrew Dunkley: Catch you soon, professor, uh, Fred Watson

00:31:22 --> 00:31:24 Watson, astronomer at large. And while you're

00:31:24 --> 00:31:27 waiting for a new episode, um, please visit

00:31:27 --> 00:31:29 our website. Uh, you can send us a message as

00:31:29 --> 00:31:32 you, um, as you like. Uh, we've had a couple

00:31:32 --> 00:31:34 of messages um, from our live audience this

00:31:34 --> 00:31:37 morning. Hello to Al in Old South

00:31:37 --> 00:31:39 Wales. He said, uh, he's just about to go to

00:31:39 --> 00:31:41 bed. And, uh, one from

00:31:41 --> 00:31:44 Halil. I hope I got that right. Who's been,

00:31:44 --> 00:31:47 uh, inspired to, um,

00:31:47 --> 00:31:50 venture, uh, out with his studies in computer

00:31:50 --> 00:31:52 engineering, uh, because he listens to Space

00:31:52 --> 00:31:54 nuts. So thanks for that message, that's

00:31:54 --> 00:31:56 lovely. Uh, but, yeah, our website,

00:31:56 --> 00:31:59 spacenutspodcast.com or spacenuts

00:31:59 --> 00:32:02 IO where you can send us messages. You can,

00:32:02 --> 00:32:04 um, do, uh, that through the AMA link and,

00:32:04 --> 00:32:06 and all sorts of other things. Uh, visit the

00:32:06 --> 00:32:07 shop while you're there. Some new books in

00:32:07 --> 00:32:08 the shop.

00:32:09 --> 00:32:12 Yeah. Uh, and plenty of other things

00:32:12 --> 00:32:14 to do. And thanks to Huw in the studio.

00:32:15 --> 00:32:18 Couldn't, um, be with us today. Uh, we were

00:32:18 --> 00:32:20 talking about sun glints. Well, uh, Huw did a

00:32:20 --> 00:32:22 bit of a flashing of his own, so I've got to

00:32:22 --> 00:32:24 go down and bail him out after this. And from

00:32:24 --> 00:32:26 me, Andrew Dunkley thanks for your company.

00:32:26 --> 00:32:28 We'll catch you on the next episode of Space

00:32:28 --> 00:32:31 Nuts. Bye bye, Space Nuts. You've been

00:32:31 --> 00:32:33 listening to the Space Podcast,

00:32:35 --> 00:32:37 available at Apple Podcasts, Spotify,

00:32:38 --> 00:32:40 iHeartRadio or your favourite podcast

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00:32:41 --> 00:32:43 You can also stream on demand at bytes.

00:32:43 --> 00:32:46 Professor Fred Watson: Com. This has been another quality podcast

00:32:46 --> 00:32:48 production from Bytes.

00:32:48 --> 00:32:48 Generic: Com. Um.