Cosmic Queries: Understanding Black Holes, Galactic Centres, and Mars Days
Space Nuts: Astronomy Insights & Cosmic DiscoveriesAugust 10, 2026
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Cosmic Queries: Understanding Black Holes, Galactic Centres, and Mars Days

In this engaging Q&A episode of Space Nuts, join host Andrew Dunkley and astronomer Fred Watson Watson as they tackle a variety of fascinating questions from listeners. From the peculiarities of Martian days to the mysteries of black holes and the galactic centre, this episode is filled with enlightening discussions that are sure to spark curiosity about the cosmos.
In this episode:
- John asks about the implications of Mars' longer day length on human biology and potential adaptations for future colonists.
- Dan inquires about the growth of black holes, exploring how quickly they can develop into supermassive entities and what happens when there’s nothing left to consume.
- Young Thomas, just 11 years old, poses several intriguing questions about the galactic centre, including whether it can swallow all stars and planets in the galaxy, and the limits of a black hole's gravitational reach.
- Paul reflects on historical discoveries in astronomy, specifically how Harlow Shapley determined our Sun's position within the Milky Way, challenging the long-held belief that it was at the centre.
Join Andrew and Fred Watson as they explore these thought-provoking questions and more, encouraging listeners to continue their journey of exploration and discovery in the universe.
Become a supporter of this podcast: https://www.spreaker.com/podcast/space-nuts-astronomy-insights-cosmic-discoveries--2631155/support.

(00:00) This is a Q and A edition where we take audience questions
(02:16) When and if Mars is populated with humans, how would we work with longer day
(08:50) Andrew: How astronauts deal with gravity when they land on Earth
(11:47) Dan from the Gold coast has some questions about black holes
(12:51) Fred: How fast do black holes grow? Dan asks fundamental astrophysics question
(18:17) Fred asks five questions about black holes from Thomas Reid, 11
(22:03) Thomas asks if black holes can swallow up all stars and planets
(24:31) Final question comes from Paul from Las Vegas
(26:42) It was actually 1919 when that discovery was made
(34:24) We continue to receive great questions from great listeners and long may it continue


00:00:00 --> 00:00:02 Andrew Dunkley: Hello again and thank you for joining us on

00:00:02 --> 00:00:04 another episode of Space Nuts. This is a Q

00:00:04 --> 00:00:06 and A edition where we take audience

00:00:06 --> 00:00:09 questions. We put them on paper and then we

00:00:09 --> 00:00:11 put them on a roll that goes on a little

00:00:11 --> 00:00:14 thing in a bathroom. Or we could

00:00:14 --> 00:00:16 answer them. We can do that. Uh, coming up

00:00:16 --> 00:00:19 today we have questions, uh, uh,

00:00:19 --> 00:00:22 from John about Martian days. The length

00:00:22 --> 00:00:25 of a Martian day. It's close, but is it

00:00:25 --> 00:00:28 close enough to Earth standard? We'll discuss

00:00:28 --> 00:00:31 that. Uh, the growth of a black

00:00:31 --> 00:00:33 hole has been, uh, brought up again.

00:00:34 --> 00:00:36 Uh, we've got a, um, a question, uh,

00:00:36 --> 00:00:39 from an 11 year old named Thomas. Hi, Thomas.

00:00:39 --> 00:00:41 He wants to talk about the galactic centre.

00:00:42 --> 00:00:44 And Paul is asking our, uh, about

00:00:44 --> 00:00:47 our galactic location. So we'll deal with

00:00:47 --> 00:00:50 all of that today on this episode of Space

00:00:50 --> 00:00:51 Nuts.

00:00:51 --> 00:00:53 Professor Fred Watson: 15 seconds. Guidance is internal.

00:00:54 --> 00:00:56 10, 9. Ignition

00:00:56 --> 00:00:57 sequence start.

00:00:58 --> 00:00:59 Professor Fred Watson: Space Nuts.

00:00:59 --> 00:01:01 Professor Fred Watson: 5, 4, 3. 2. 1. 2, 3, 4,

00:01:02 --> 00:01:04 5, 5, 4, 3. Space

00:01:04 --> 00:01:07 Nuts astronauts report it feels good.

00:01:08 --> 00:01:11 Andrew Dunkley: Joining us again to sort all that out is

00:01:11 --> 00:01:13 Professor Fred Watson Watson, astronomer at

00:01:13 --> 00:01:14 large. Hello, Fred Watson.

00:01:14 --> 00:01:16 Professor Fred Watson: Hello, Andrew. Good to see you again.

00:01:16 --> 00:01:17 Andrew Dunkley: Uh, good to see you too.

00:01:18 --> 00:01:20 Professor Fred Watson: Yes. Despite the hole in my head.

00:01:20 --> 00:01:23 Andrew Dunkley: Yeah, yeah. It doesn't look any better than

00:01:23 --> 00:01:23 last time.

00:01:24 --> 00:01:25 Professor Fred Watson: It doesn't, does it?

00:01:26 --> 00:01:28 Andrew Dunkley: No, I mean, you know, it's only been

00:01:28 --> 00:01:30 minutes. You'd think it would have improved

00:01:30 --> 00:01:31 by now.

00:01:32 --> 00:01:34 Professor Fred Watson: That's what happens when you walk into a,

00:01:34 --> 00:01:36 when you walk into a closed screen door.

00:01:36 --> 00:01:37 Andrew Dunkley: Yeah.

00:01:37 --> 00:01:39 Professor Fred Watson: In the dark it hurts.

00:01:40 --> 00:01:43 Andrew Dunkley: Now that's why they have stuff, um, on,

00:01:43 --> 00:01:46 on glass sliding doors, you know,

00:01:46 --> 00:01:48 uh, that, that's a standard safety standard

00:01:48 --> 00:01:50 required these days so that, you know, the

00:01:50 --> 00:01:51 door is there.

00:01:51 --> 00:01:52 Professor Fred Watson: Yeah.

00:01:52 --> 00:01:54 Andrew Dunkley: But when it's nighttime and it's a screen

00:01:54 --> 00:01:56 door. Not, not many excuses left there,

00:01:56 --> 00:01:57 Fred Watson.

00:01:57 --> 00:02:00 Professor Fred Watson: Really only stupidity, I think is the,

00:02:00 --> 00:02:02 is the last one. But that's, that's

00:02:02 --> 00:02:04 my excuse many, many times.

00:02:05 --> 00:02:08 Andrew Dunkley: Yeah, well, we've all done it.

00:02:09 --> 00:02:11 Shall we try and answer these questions?

00:02:11 --> 00:02:12 Professor Fred Watson: We should.

00:02:12 --> 00:02:14 Andrew Dunkley: Okay, let's go to question one. This one

00:02:14 --> 00:02:16 comes from John.

00:02:16 --> 00:02:19 Uh, we know that the Martian Day is 39

00:02:19 --> 00:02:22 minutes longer than an Earth Day. That's

00:02:22 --> 00:02:25 about four and a half hours a week. Uh, when

00:02:25 --> 00:02:27 and if Mars is populated with humans,

00:02:28 --> 00:02:31 how would we work with the longer

00:02:31 --> 00:02:33 day, week? Would human

00:02:33 --> 00:02:36 biology tend to keep to the 24 hour

00:02:36 --> 00:02:38 day or would we adapt to a longer day,

00:02:38 --> 00:02:41 Night. Cycle. Cycle. Thanks. Love the show

00:02:41 --> 00:02:43 and have been a listener since you started.

00:02:43 --> 00:02:46 Wow, you've got a lot of spare time, John.

00:02:47 --> 00:02:49 Thank you so much, uh, for sending your

00:02:49 --> 00:02:52 question in and hope all is well. Uh,

00:02:52 --> 00:02:54 I love this question because

00:02:55 --> 00:02:58 you've got a planet that is close enough for

00:02:58 --> 00:03:00 us to get to in the not too distant future.

00:03:00 --> 00:03:03 Probably not a

00:03:03 --> 00:03:04 permanent settlement, but a rotating

00:03:04 --> 00:03:07 settlement of some kind will be the initial

00:03:07 --> 00:03:10 stages of humans being on Mars.

00:03:11 --> 00:03:14 And yet you've got an extra 39

00:03:14 --> 00:03:17 minutes a day to deal with what

00:03:17 --> 00:03:19 is going to be the impact.

00:03:20 --> 00:03:22 Professor Fred Watson: Um, I think we've already, we have

00:03:23 --> 00:03:25 um, a lot of data on this

00:03:25 --> 00:03:28 Andrew Dunkley: because the, we've already talked about this

00:03:28 --> 00:03:30 once before in the deep dark past. Quite a

00:03:30 --> 00:03:31 lot came up again.

00:03:31 --> 00:03:33 Professor Fred Watson: Yeah, yeah, because of the, the um,

00:03:34 --> 00:03:36 rover, um, drivers, they,

00:03:38 --> 00:03:41 the people who are uh, in command of,

00:03:41 --> 00:03:42 if I can put it that way, because they don't

00:03:42 --> 00:03:45 actually drive them directly but in command

00:03:45 --> 00:03:48 of the rovers on Mars and the two active

00:03:48 --> 00:03:50 NASA ones at the moment are Curiosity. Uh,

00:03:50 --> 00:03:53 and perseverance. Uh, they

00:03:53 --> 00:03:54 Adapt to uh,

00:03:56 --> 00:03:58 24 hours, 39 minutes day,

00:03:59 --> 00:04:02 and do it quite successfully

00:04:02 --> 00:04:05 as far as I've been able to work out.

00:04:06 --> 00:04:09 Andrew Dunkley: Well I hope so, yeah.

00:04:09 --> 00:04:11 Professor Fred Watson: Otherwise there might be a pile up on Mars.

00:04:11 --> 00:04:14 Um, and in fact the reason why I said they

00:04:14 --> 00:04:16 don't actually drive them is because the

00:04:16 --> 00:04:19 rovers themselves have got to be to some

00:04:19 --> 00:04:22 extent autonomous because of the delay

00:04:22 --> 00:04:25 in signal time to get between Mars and

00:04:26 --> 00:04:28 the Earth. You can't have video coming back

00:04:28 --> 00:04:30 from your rover and a steering wheel so that

00:04:30 --> 00:04:32 you respond to that because you'd have a sort

00:04:32 --> 00:04:35 of 20 or 30 minute delay probably before

00:04:36 --> 00:04:38 uh, before um, you turn, before

00:04:38 --> 00:04:41 the wheels turned on the rover.

00:04:41 --> 00:04:44 Andrew Dunkley: I would imagine that the manual

00:04:44 --> 00:04:47 driving of a rover from Earth

00:04:47 --> 00:04:50 on Mars would be damn near impossible because

00:04:51 --> 00:04:53 even your images would be out of sync with.

00:04:53 --> 00:04:54 Professor Fred Watson: Everything's out of sync. That's right.

00:04:54 --> 00:04:56 Andrew Dunkley: So you say, oh, there's a rock coming up.

00:04:56 --> 00:04:59 That was 40 minutes ago, I'll turn

00:04:59 --> 00:05:00 left now.

00:05:01 --> 00:05:02 Martin Berman Gorvine: Oops.

00:05:03 --> 00:05:03 Andrew Dunkley: Yeah.

00:05:03 --> 00:05:05 Professor Fred Watson: Ah, um,

00:05:06 --> 00:05:09 so the rovers drive themselves basically,

00:05:09 --> 00:05:12 uh, with a lot of assistance, um,

00:05:12 --> 00:05:15 and monitoring from Earth, uh, in order

00:05:15 --> 00:05:18 to see what's coming up and see what

00:05:19 --> 00:05:21 the onboard computers are doing in terms of

00:05:21 --> 00:05:23 what route they're taking through the rocks

00:05:23 --> 00:05:26 and debris on Mars. Ah, uh,

00:05:27 --> 00:05:29 um, but those people, as I understand

00:05:29 --> 00:05:32 it, do go on to uh, this 24

00:05:32 --> 00:05:35 hours and 39 minutes day length.

00:05:35 --> 00:05:37 Uh, I think it's nearing enough to our 24

00:05:37 --> 00:05:39 hours that I think they adapt quite quickly.

00:05:39 --> 00:05:41 From my recollection of our previous

00:05:41 --> 00:05:43 conversation about this Andrew.

00:05:44 --> 00:05:47 Andrew Dunkley: Yeah, if I remember rightly, we were talking

00:05:47 --> 00:05:49 about the fact that if you're going to stay

00:05:49 --> 00:05:51 on Mars long term you would

00:05:51 --> 00:05:53 have to adapt.

00:05:54 --> 00:05:57 Um, you wouldn't adapt naturally

00:05:58 --> 00:06:01 at all you'd have to take catnaps

00:06:01 --> 00:06:04 or something like that to catch up. Um,

00:06:05 --> 00:06:07 or something to that effect.

00:06:08 --> 00:06:11 Professor Fred Watson: Well, yes. So your circadian rhythms

00:06:11 --> 00:06:13 would, they'd be under stress, they'd change

00:06:15 --> 00:06:18 and I suppose you'd have a permanent feeling

00:06:18 --> 00:06:20 of jet lag. Probably what it feels like.

00:06:20 --> 00:06:23 Andrew Dunkley: It would be tough. I read an article, uh,

00:06:23 --> 00:06:26 last weekend which I found fascinating

00:06:26 --> 00:06:29 and it was, um, detailing how

00:06:29 --> 00:06:32 the eight hour night cycle

00:06:32 --> 00:06:34 that humans have, like going to bed for eight

00:06:34 --> 00:06:36 hours, is a myth.

00:06:36 --> 00:06:37 Professor Fred Watson: Yes.

00:06:37 --> 00:06:40 Andrew Dunkley: And that, um, it was actually

00:06:40 --> 00:06:42 something invented by a mattress company back

00:06:42 --> 00:06:45 in 1938. Have you heard this?

00:06:45 --> 00:06:48 Professor Fred Watson: No. Yes, I do know that

00:06:48 --> 00:06:50 we used to sleep twice in the night.

00:06:50 --> 00:06:53 Andrew Dunkley: That's right. So you go to bed at like 9 o'

00:06:53 --> 00:06:55 clock and you'd sleep for four hours

00:06:56 --> 00:06:58 and then you'd get up for two hours and you'd

00:06:58 --> 00:07:00 do stuff like, stuff we can't talk about on

00:07:00 --> 00:07:03 this podcast, but other stuff like,

00:07:03 --> 00:07:05 um, they cited a couple of,

00:07:07 --> 00:07:10 um, famous people, um, whose names have

00:07:10 --> 00:07:12 dropped straight out of my head. Um,

00:07:13 --> 00:07:15 William Shakespeare apparently wrote

00:07:16 --> 00:07:18 a lot of his famous works between

00:07:18 --> 00:07:21 1 and 3 in the morning when he got up and

00:07:21 --> 00:07:24 then he'd go back to bed for four hours. And,

00:07:24 --> 00:07:26 uh, Beethoven did the same thing with some of

00:07:26 --> 00:07:28 his symphonies. He wrote some of the

00:07:29 --> 00:07:31 best works that he ever created

00:07:32 --> 00:07:35 at 3 o' clock in the morning, um,

00:07:35 --> 00:07:37 during his wake time between his two sleeps.

00:07:38 --> 00:07:40 So the eight hour sleep

00:07:41 --> 00:07:44 that we have at night was an invention

00:07:44 --> 00:07:47 apparently, to sell mattresses. That's

00:07:47 --> 00:07:49 what I'm told. Look, I haven't confirmed or

00:07:49 --> 00:07:52 denied that, but it seems

00:07:52 --> 00:07:53 possible, I suppose.

00:07:54 --> 00:07:56 Professor Fred Watson: Well, yes, I think we have,

00:07:58 --> 00:08:00 uh, I think, um, there's been evidence

00:08:00 --> 00:08:02 from the earliest times,

00:08:04 --> 00:08:06 uh, the times when people truly were ancient

00:08:06 --> 00:08:08 peoples back thousands of years ago,

00:08:09 --> 00:08:10 uh, that that's how they lived their lives.

00:08:10 --> 00:08:13 Exactly as you've said. And maybe the last

00:08:13 --> 00:08:16 vestiges of that were keeping

00:08:16 --> 00:08:17 going in Shakespeare's time and then in

00:08:17 --> 00:08:20 Beethoven's time. Um, there

00:08:20 --> 00:08:22 weren't that many clocks around then. There

00:08:22 --> 00:08:24 were some, but not that many. It wasn't like

00:08:24 --> 00:08:27 you had a smart watch by your bedside or

00:08:27 --> 00:08:30 anything like that. So, uh, it would be a

00:08:30 --> 00:08:33 natural rhythm that they would use, uh,

00:08:34 --> 00:08:35 to sleep and wake up.

00:08:36 --> 00:08:38 Andrew Dunkley: Yes. Modernization certainly

00:08:38 --> 00:08:40 messed us up, hasn't it?

00:08:40 --> 00:08:41 Professor Fred Watson: Yeah, yeah, that's right. I think in that

00:08:41 --> 00:08:42 case it has.

00:08:42 --> 00:08:44 Andrew Dunkley: And I think, uh, on Mars, um,

00:08:45 --> 00:08:47 it will be a pretty difficult thing,

00:08:47 --> 00:08:49 Professor Fred Watson: I imagine it may be.

00:08:50 --> 00:08:53 So maybe I can just sidestep here slightly,

00:08:53 --> 00:08:56 Andrew, um, because I would very much like to

00:08:56 --> 00:08:58 know uh, what

00:08:58 --> 00:09:01 answer one of our listeners would give to

00:09:01 --> 00:09:03 that, and that's Dr. Heidi DeBlock who's

00:09:03 --> 00:09:06 I think based in Houston, if I remember

00:09:06 --> 00:09:09 rightly, who is basically a space medic.

00:09:09 --> 00:09:12 Uh, and um, uh, it will be very interesting

00:09:12 --> 00:09:15 to hear her take on how humans will adapt

00:09:15 --> 00:09:18 to that. And if I may, she was in touch with

00:09:18 --> 00:09:20 us recently to comment on one of our earlier

00:09:20 --> 00:09:23 questions. Would it be all right if I. Yeah.

00:09:23 --> 00:09:26 Andrew Dunkley: And that was when we were talking about how

00:09:26 --> 00:09:28 people deal with um, gravity when they

00:09:28 --> 00:09:30 get back on Earth after being out in space

00:09:30 --> 00:09:32 for a while, correct?

00:09:32 --> 00:09:35 Professor Fred Watson: Yes, that's right. Uh, she

00:09:35 --> 00:09:38 says, um, I just finished the July

00:09:38 --> 00:09:40 5th space nuts and wanted to help answer the

00:09:40 --> 00:09:42 question about how the astronauts feel when

00:09:42 --> 00:09:44 they land back on Earth. Of course I haven't

00:09:44 --> 00:09:47 experienced it in person, but have worked

00:09:47 --> 00:09:49 with plenty of astronauts at landing. In

00:09:49 --> 00:09:51 particular, all of our, uh, physiology

00:09:51 --> 00:09:54 changes in space as we are designed for

00:09:54 --> 00:09:57 1G. Some astronauts are pretty good when

00:09:57 --> 00:09:58 they land, especially those who are on the

00:09:58 --> 00:10:00 shuttle and in space. For short time.

00:10:01 --> 00:10:04 Sorry, for a short time. Some had significant

00:10:04 --> 00:10:07 problems. They stemmed from the orthostatic

00:10:07 --> 00:10:10 hypotension as a result from the

00:10:10 --> 00:10:13 cardiovascular changes, some of the changes

00:10:13 --> 00:10:15 in the inner ear with balance and knowing

00:10:15 --> 00:10:17 where you physically are, some mild

00:10:17 --> 00:10:20 weaknesses, et cetera. These changes are more

00:10:20 --> 00:10:23 exaggerated with long duration flight in the

00:10:23 --> 00:10:25 International Space Station. The vision

00:10:25 --> 00:10:28 problems are called SANS S A N S

00:10:28 --> 00:10:30 which is an acronym for Spaceflight

00:10:30 --> 00:10:32 Associated Neuro Ocular

00:10:33 --> 00:10:36 Syndrome. Our lab is studying that

00:10:36 --> 00:10:38 as well. That's a whole other fascinating

00:10:38 --> 00:10:41 issue. I could tell you some

00:10:41 --> 00:10:43 fun storeys about astronauts and how weird

00:10:43 --> 00:10:46 some of them feel when they get back. Maybe

00:10:46 --> 00:10:48 we need to get Heidi on the show. Maybe we

00:10:48 --> 00:10:50 do. Yeah, no, that's um,

00:10:51 --> 00:10:53 uh, she has another interesting comment

00:10:53 --> 00:10:56 actually about the, about the uh,

00:10:56 --> 00:10:58 Voyager Golden Record. But we might talk

00:10:58 --> 00:11:00 about that another time. Fair enough.

00:11:00 --> 00:11:02 Andrew Dunkley: Yeah. All right. Thank you, Heidi. That was

00:11:02 --> 00:11:02 fascinating.

00:11:02 --> 00:11:03 Professor Fred Watson: Yeah.

00:11:03 --> 00:11:06 Andrew Dunkley: Um, what an amazing job working with all

00:11:06 --> 00:11:09 those incredible people trying to

00:11:09 --> 00:11:11 figure out how to deal with the zero G

00:11:11 --> 00:11:13 problem. But uh, on Mars the gravity will

00:11:13 --> 00:11:16 also be an issue. So, um, there's

00:11:16 --> 00:11:19 a heck of a lot that needs to be sorted out

00:11:19 --> 00:11:22 before we um, put people down

00:11:22 --> 00:11:25 there. Because it's such a long trip to

00:11:25 --> 00:11:26 get there. It's not like you can go, uh, ah,

00:11:26 --> 00:11:28 no, this is no good and come straight back.

00:11:28 --> 00:11:30 Professor Fred Watson: It's not going to be that simple. That's

00:11:30 --> 00:11:32 right. Once you're on your way. On your way.

00:11:32 --> 00:11:34 And the only way back is to keep going.

00:11:34 --> 00:11:37 Andrew Dunkley: Yeah, exactly. Thanks for the question, John.

00:11:37 --> 00:11:40 Uh, well asked. And yeah, it's not

00:11:40 --> 00:11:43 going to be a snack, that's for sure. Let's,

00:11:43 --> 00:11:45 uh, move on to our, uh, next question from

00:11:45 --> 00:11:46 Dan.

00:11:47 --> 00:11:49 Martin Berman Gorvine: Hello gentlemen. Dan from the Gold coast

00:11:49 --> 00:11:51 here. Uh, now I know you've been

00:11:52 --> 00:11:55 asked a million questions about black holes,

00:11:55 --> 00:11:57 uh, but I do have a quick two parter and I'm

00:11:57 --> 00:11:59 hoping that's something you've never had to

00:11:59 --> 00:12:02 answer before. Really quickly, from the

00:12:02 --> 00:12:05 point when a black hole is born,

00:12:05 --> 00:12:07 birth, created, whatever you want to call it,

00:12:07 --> 00:12:10 uh, how quickly is that growing to become a,

00:12:10 --> 00:12:12 let's say, supermassive black hole or just

00:12:12 --> 00:12:13 something a lot bigger? Um,

00:12:14 --> 00:12:17 or is that not how black holes work and I'm

00:12:17 --> 00:12:19 not understanding it properly? Two,

00:12:21 --> 00:12:23 Hypothetically, uh, if there's no matter or

00:12:23 --> 00:12:25 energy or anything surrounding

00:12:26 --> 00:12:29 the black hole to take in and let's say

00:12:29 --> 00:12:32 eat, uh, is the black hole still going to

00:12:32 --> 00:12:34 grow? Is there more to the black hole growing

00:12:34 --> 00:12:36 than I understand?

00:12:37 --> 00:12:39 Um, yeah. Hopefully that made sense and

00:12:39 --> 00:12:41 hopefully it's worth answering. Love the

00:12:41 --> 00:12:44 show. Love you guys. Work. Cheers,

00:12:44 --> 00:12:45 bye.

00:12:45 --> 00:12:47 Andrew Dunkley: Thank you, Dan. Uh, nice to hear from you.

00:12:48 --> 00:12:50 Uh, yeah, a couple of questions in that one.

00:12:51 --> 00:12:53 Um, we never talk about black holes, but we

00:12:53 --> 00:12:56 will today. Ah, speed of growth.

00:12:56 --> 00:12:58 Um, that's an interesting one. Um,

00:12:59 --> 00:13:02 given that we're starting to think that there

00:13:02 --> 00:13:04 were some absolutely

00:13:04 --> 00:13:07 enormous, um, black holes in the

00:13:07 --> 00:13:09 early universe. Um,

00:13:10 --> 00:13:13 and, and they're looking

00:13:13 --> 00:13:14 for more and more evidence to see what was

00:13:14 --> 00:13:17 going on early on. Um, but we've got some

00:13:17 --> 00:13:19 gargantuan ones still around. Uh,

00:13:20 --> 00:13:22 so how fast did they get that big? And

00:13:22 --> 00:13:25 I, um, I'm starting to think, Fred Watson,

00:13:25 --> 00:13:27 it wouldn't be a stock standard approach.

00:13:28 --> 00:13:31 Professor Fred Watson: Maybe not, maybe not. Uh, but I mean,

00:13:31 --> 00:13:33 Dan's asking, uh, one of the

00:13:33 --> 00:13:35 fundamental questions of astrophysics at the

00:13:35 --> 00:13:38 moment. This is a very hot topic. Uh, and

00:13:38 --> 00:13:40 what set the cat among the pigeons and made

00:13:40 --> 00:13:42 it a hot topic is the James Webb Space

00:13:42 --> 00:13:45 Telescope. Because, um, until

00:13:45 --> 00:13:48 that came along, the idea was

00:13:48 --> 00:13:51 that as basically as Daniel suggests,

00:13:51 --> 00:13:54 black holes were formed in

00:13:54 --> 00:13:56 the early universe by exploding stars that,

00:13:56 --> 00:13:59 um, collapsed at the end of their lives

00:13:59 --> 00:14:02 to form a black hole. The core would collapse

00:14:02 --> 00:14:04 to a black hole and that then

00:14:05 --> 00:14:07 over billions of years that black hole would

00:14:07 --> 00:14:10 grow. And eventually in our own epoch

00:14:10 --> 00:14:13 today, 13.8 billion years after the

00:14:13 --> 00:14:16 Big Bang, uh, you have supermassive black

00:14:16 --> 00:14:19 holes at the centre of every galaxy. That

00:14:19 --> 00:14:21 was the old wisdom. But the James Webb

00:14:21 --> 00:14:23 telescope has turned that completely on its

00:14:23 --> 00:14:25 head because we have serious

00:14:25 --> 00:14:28 evidence of supermassive black holes

00:14:29 --> 00:14:31 within the first 500 million years

00:14:32 --> 00:14:34 of the universe's existence. And that's

00:14:34 --> 00:14:37 too quick for, or too

00:14:37 --> 00:14:40 short a time for this, um, you

00:14:40 --> 00:14:42 know, this slow accretion of

00:14:43 --> 00:14:46 stuff, uh, as being the, um,

00:14:46 --> 00:14:49 the growth mechanism for black holes. Uh,

00:14:49 --> 00:14:51 it's too short a time for that to be the

00:14:51 --> 00:14:53 case. Uh, so

00:14:53 --> 00:14:56 either our ideas of how fast they gobble

00:14:56 --> 00:14:59 up matter is wrong. And they

00:14:59 --> 00:15:01 gobble up matter a lot faster than we

00:15:01 --> 00:15:03 thought. And we actually covered a storey on

00:15:03 --> 00:15:06 this, I think, about four or five episodes

00:15:06 --> 00:15:08 ago, because there are some scientists who

00:15:09 --> 00:15:11 came to conclusion that one of the things

00:15:11 --> 00:15:14 that we thought limited how fast a

00:15:14 --> 00:15:17 black hole can gobble stuff up, uh, was

00:15:17 --> 00:15:19 actually invalid under certain circumstances.

00:15:20 --> 00:15:23 So that's that one avenue of

00:15:23 --> 00:15:25 research that's come from the James Webb

00:15:25 --> 00:15:27 Telescope showing us that, ah, we've got

00:15:27 --> 00:15:29 these supermassive black holes in the early

00:15:29 --> 00:15:31 universe. But the other one is the idea of

00:15:31 --> 00:15:34 the little pink dots or the little red dots

00:15:34 --> 00:15:37 as they're called. And these are thought to

00:15:37 --> 00:15:39 be, uh, basically just

00:15:39 --> 00:15:42 clouds of gas, hydrogen gas,

00:15:42 --> 00:15:45 which are directly feeding a black hole

00:15:45 --> 00:15:48 that may have been formed in the Big Bang. In

00:15:48 --> 00:15:50 other words, you didn't have to have star

00:15:50 --> 00:15:53 formation and then stars blowing up to

00:15:53 --> 00:15:55 create black holes in order to kick this

00:15:55 --> 00:15:58 process off. The Big Bang itself might have

00:15:58 --> 00:15:59 kicked off the process of black hole

00:15:59 --> 00:16:02 formation by producing these things that we

00:16:02 --> 00:16:05 call primordial black holes. Um, and

00:16:05 --> 00:16:08 they may have turned out to be able

00:16:08 --> 00:16:10 to grow very quickly, um, by

00:16:10 --> 00:16:13 immersing themselves simply in big

00:16:13 --> 00:16:16 clouds of hydrogen and gobbling it all up.

00:16:16 --> 00:16:19 Andrew Dunkley: Yeah, of course, um,

00:16:19 --> 00:16:22 when they run out of stuff, they can't grow.

00:16:22 --> 00:16:22 Is that right?

00:16:23 --> 00:16:25 Professor Fred Watson: That's right. So that's part two of, uh,

00:16:25 --> 00:16:28 Dan's question. Uh, what happens when

00:16:28 --> 00:16:29 there's nothing there for them to eat and

00:16:29 --> 00:16:31 they become what we call quiescent black

00:16:31 --> 00:16:34 holes? They don't do anything. They're

00:16:34 --> 00:16:36 there, uh, and they're still, uh,

00:16:37 --> 00:16:39 things that, um, if a cloud of hydrogen

00:16:39 --> 00:16:42 strayed by, they might seize it

00:16:42 --> 00:16:45 by their own gravity and pull it in. But,

00:16:45 --> 00:16:47 um, they're not going to go out,

00:16:49 --> 00:16:51 um, roaming through the universe looking for

00:16:51 --> 00:16:53 stuff to accrete. In other words, looking for

00:16:53 --> 00:16:53 a snack.

00:16:54 --> 00:16:54 Professor Fred Watson: Yeah.

00:16:54 --> 00:16:57 Andrew Dunkley: Ah, I used to work with a guy whose nickname

00:16:57 --> 00:16:58 was quiescent black hole. He was there, but

00:16:58 --> 00:16:59 he didn't do anything.

00:17:03 --> 00:17:04 Professor Fred Watson: Yes, I think I know who you mean.

00:17:08 --> 00:17:10 Yeah. Anyway, quiescent black holes, uh, are,

00:17:10 --> 00:17:13 uh, basically what, uh, Dan has

00:17:13 --> 00:17:14 described. But the first part of his question

00:17:14 --> 00:17:17 is absolutely asking the same questions

00:17:17 --> 00:17:20 that today's astrophysicists are. Uh, it's

00:17:20 --> 00:17:22 one whose answer we don't know. But the

00:17:22 --> 00:17:24 consensus will emerge over the next. Probably

00:17:24 --> 00:17:26 not very long because we're getting so much

00:17:26 --> 00:17:29 data from the James Webb telescope that I

00:17:29 --> 00:17:31 think it'll be quite soon before this whole

00:17:31 --> 00:17:34 issue is resolved, I would think. Sorry,

00:17:34 --> 00:17:36 I was just going to say when, when there is

00:17:36 --> 00:17:38 hard evidence of a primordial black hole

00:17:38 --> 00:17:41 being discovered, one that was created in the

00:17:41 --> 00:17:43 Big Bang, then that'll be Nobel

00:17:43 --> 00:17:45 Prize winning science when we get to that

00:17:45 --> 00:17:48 stage. But it won't be us.

00:17:48 --> 00:17:50 Andrew Dunkley: Indeed, I was going to suggest that black um,

00:17:50 --> 00:17:53 holes are probably like humans. Consumption

00:17:53 --> 00:17:54 will decide how big they get.

00:17:55 --> 00:17:58 Professor Fred Watson: Maybe that's right, yeah, yeah, we'll have

00:17:58 --> 00:18:01 Andrew Dunkley: to wait and see. All right Dan. Hopefully uh,

00:18:02 --> 00:18:04 we covered that for you adequately. Thanks

00:18:04 --> 00:18:06 for sending in the question. This is Space

00:18:06 --> 00:18:08 Nuts with Andrew Dunkley and Professor

00:18:08 --> 00:18:09 Fred Watson Watson.

00:18:12 --> 00:18:14 Professor Fred Watson: Three, two, one.

00:18:15 --> 00:18:16 Andrew Dunkley: Space Nuts.

00:18:17 --> 00:18:19 Our next question, Fred Watson, comes from

00:18:19 --> 00:18:22 Thomas Reid. Thomas is 11 years old.

00:18:22 --> 00:18:24 He says something has been troubling me. In

00:18:24 --> 00:18:27 books I've read they say that the centres of

00:18:27 --> 00:18:30 galaxies are very big black holes and I

00:18:30 --> 00:18:32 have a few questions about them but uh, I'm

00:18:32 --> 00:18:34 only an 11 year old kid so the questions

00:18:34 --> 00:18:36 might sound silly but here they are. Now

00:18:36 --> 00:18:38 we've got five questions Fred Watson, so we

00:18:38 --> 00:18:41 can be brief on on them. Unless you wanted to

00:18:41 --> 00:18:43 sit here for another couple of hours. Um, if

00:18:43 --> 00:18:45 Jonty was here we would be a couple of hours.

00:18:46 --> 00:18:49 Um, can the galactic centre swallow all the

00:18:49 --> 00:18:52 stars and planets in the galaxy? How big are

00:18:52 --> 00:18:54 the galactic centres or do we not know,

00:18:55 --> 00:18:57 uh, if they can swallow up all the stars and

00:18:57 --> 00:19:00 planets. Is there a limit? If there is a

00:19:00 --> 00:19:02 limit, what is it? And if there is a

00:19:02 --> 00:19:05 limit happens when the limit is reached.

00:19:05 --> 00:19:07 Thank you for taking the time to read this

00:19:07 --> 00:19:09 and I would love it if you could reply. Well

00:19:09 --> 00:19:12 we are going to reply right now Thomas. Um,

00:19:13 --> 00:19:16 yeah, it's great that somebody, uh, so

00:19:16 --> 00:19:19 young is taking a keen interest in something

00:19:19 --> 00:19:22 so mysterious as a black hole. Uh,

00:19:22 --> 00:19:24 we want to start at the top. Can the galactic

00:19:24 --> 00:19:26 centre swallow all the stars and planets in

00:19:26 --> 00:19:26 the galaxy?

00:19:27 --> 00:19:30 Professor Fred Watson: Well so the answer is no. Um, so the

00:19:30 --> 00:19:33 galaxies are very big. Ours is about 100

00:19:33 --> 00:19:35 light years across. Uh, black holes

00:19:35 --> 00:19:38 have ah, a kind of sphere of

00:19:38 --> 00:19:41 influence um, which gravitationally

00:19:41 --> 00:19:43 stretches to the edge of the galaxy. But by

00:19:43 --> 00:19:45 the time you get there the gravity of the

00:19:45 --> 00:19:48 black hole is very, very weak indeed. And

00:19:48 --> 00:19:51 so it's only in the central region of a

00:19:51 --> 00:19:54 galaxy where you could get material

00:19:54 --> 00:19:57 being swallowed up uh, to create this

00:19:57 --> 00:19:58 activity that we talk about when we Talk

00:19:58 --> 00:20:01 about active black holes, uh, where

00:20:01 --> 00:20:03 there's, uh, an accretion disc, a disc of

00:20:03 --> 00:20:06 material swirling around it. And these jets,

00:20:07 --> 00:20:09 uh, point basically at right angles to the

00:20:09 --> 00:20:10 accretion disc, jets of material travelling

00:20:10 --> 00:20:12 at nearly the speed of light. Quite

00:20:12 --> 00:20:15 extraordinary. So, um, that's all

00:20:15 --> 00:20:17 great and black holes, like a factory or a

00:20:17 --> 00:20:20 furnace doing that, but its stretch is not

00:20:20 --> 00:20:23 very far. Uh, it's measured

00:20:23 --> 00:20:25 in light years, but not in hundreds of

00:20:25 --> 00:20:27 thousands of light years, which would have to

00:20:27 --> 00:20:29 be to grab everything in the galaxy. So the

00:20:29 --> 00:20:32 answer is no. The, uh, galactic centre, uh,

00:20:32 --> 00:20:34 black hole cannot swallow all the stars and

00:20:34 --> 00:20:35 planets in the galaxy.

00:20:36 --> 00:20:39 Andrew Dunkley: Uh, so Thomas can sleep well tonight. Um, how

00:20:39 --> 00:20:42 big are the galactic centres? Do we know how

00:20:42 --> 00:20:42 big?

00:20:42 --> 00:20:45 Professor Fred Watson: M. We do. Yes, we do, because

00:20:47 --> 00:20:50 we can measure the speed

00:20:50 --> 00:20:52 of rotation of stuff

00:20:52 --> 00:20:55 swirling around a black hole, if it's an

00:20:55 --> 00:20:58 active one. And that directly tells you

00:20:58 --> 00:21:01 the mass of the black hole. Um, because

00:21:01 --> 00:21:03 the bigger the black hole, the faster the

00:21:03 --> 00:21:06 stuff is going. And so, um, in terms

00:21:06 --> 00:21:09 of if, the if by

00:21:09 --> 00:21:12 big, Thomas means what's their mass?

00:21:12 --> 00:21:15 Uh, we can measure them quite accurately

00:21:15 --> 00:21:18 now because we can measure their mass. We can

00:21:18 --> 00:21:20 also work out their event horizon

00:21:20 --> 00:21:23 diameter or radius. The event horizon

00:21:23 --> 00:21:26 is that sort of imaginary sphere around a

00:21:26 --> 00:21:29 black hole beyond which light cannot

00:21:29 --> 00:21:32 escape. And so it would appear as a dark

00:21:32 --> 00:21:34 sphere. So the event horizon is the

00:21:34 --> 00:21:37 point of no return for anything going into a

00:21:37 --> 00:21:40 black hole. And it's also the point of no

00:21:40 --> 00:21:42 escape for light waves. Uh,

00:21:42 --> 00:21:45 so we can, knowing the mass of a black hole,

00:21:45 --> 00:21:48 we can calculate how big that event

00:21:48 --> 00:21:50 horizon would be. And some of the

00:21:50 --> 00:21:52 supermassive ones, ah, are really very big.

00:21:52 --> 00:21:55 They're measured in light years, tens of

00:21:55 --> 00:21:56 light years, perhaps for the supermassive

00:21:56 --> 00:21:57 black holes.

00:21:57 --> 00:22:00 Andrew Dunkley: Yeah. It's a level of enormity

00:22:00 --> 00:22:01 that you just struggle to get your head

00:22:01 --> 00:22:02 around.

00:22:02 --> 00:22:03 Professor Fred Watson: Yeah, yeah, I suppose.

00:22:03 --> 00:22:05 Andrew Dunkley: In terms of the rest of Thomas's questions,

00:22:05 --> 00:22:07 you've basically answered it with the answer

00:22:07 --> 00:22:10 to first question, because he's asking if

00:22:10 --> 00:22:11 they can swallow up all the stars and

00:22:11 --> 00:22:13 planets. Is there a limit? If there is a

00:22:13 --> 00:22:16 limit, what is it? Uh, and if there is a

00:22:16 --> 00:22:18 limit, what happens when the limit is

00:22:18 --> 00:22:20 reached? Well, the limit is probably

00:22:21 --> 00:22:24 the local area of the centre of the galaxy

00:22:24 --> 00:22:26 and what's available to eat.

00:22:26 --> 00:22:29 Professor Fred Watson: Yes, that's right. So the limiting factor,

00:22:29 --> 00:22:31 uh, is, um,

00:22:32 --> 00:22:34 basically what you might call the grasp of

00:22:34 --> 00:22:37 the black hole, how far it can reach to

00:22:37 --> 00:22:40 pull something in. And that is

00:22:40 --> 00:22:43 dependent on how fast the objects are moving.

00:22:43 --> 00:22:45 So you can have some stars and there are

00:22:45 --> 00:22:47 some. We've observed them, uh, with infrared

00:22:47 --> 00:22:50 radiation that are comfortably in

00:22:50 --> 00:22:52 orbit, uh, around

00:22:53 --> 00:22:55 the black hole at the centre of our own

00:22:55 --> 00:22:57 galaxy, which are not being pulled in,

00:22:57 --> 00:22:59 they're orbiting. And that's because their

00:22:59 --> 00:23:02 speed is enough to keep them out of the grasp

00:23:02 --> 00:23:05 of the black hole. Um, their distances from

00:23:05 --> 00:23:08 the black hole are measured in not two

00:23:08 --> 00:23:11 dissimilar units from the solar system. Sort

00:23:11 --> 00:23:13 of half a light day or something like that,

00:23:13 --> 00:23:16 you know, light day, that's

00:23:16 --> 00:23:18 the sort of measures that we're talking

00:23:18 --> 00:23:21 about. Um, which probably

00:23:21 --> 00:23:23 denies what I just said a few minutes ago

00:23:23 --> 00:23:26 about, um, some black hole event horizons

00:23:26 --> 00:23:28 being tens of light years. I don't think they

00:23:28 --> 00:23:30 are. I think they're smaller than that.

00:23:30 --> 00:23:30 Joe: Okay.

00:23:30 --> 00:23:33 Andrew Dunkley: I thought of a way to explain it to Thomas.

00:23:33 --> 00:23:35 So, uh, Thomas, you've won a competition

00:23:35 --> 00:23:37 kitchen and you can go to

00:23:37 --> 00:23:39 McDonald's and eat everything you want.

00:23:40 --> 00:23:43 Absolutely. Just keep eating until, you know,

00:23:43 --> 00:23:46 the cows come home. However, you aren't

00:23:46 --> 00:23:48 allowed to move from wherever you're standing

00:23:48 --> 00:23:50 and you can only eat what's within reach.

00:23:52 --> 00:23:54 Once you run out of food, you stop

00:23:54 --> 00:23:57 growing. And you're the black hole, by the

00:23:57 --> 00:23:59 way. How's that for an analogy?

00:23:59 --> 00:24:01 Professor Fred Watson: It's a nice one. I like it. Yes. Yeah,

00:24:01 --> 00:24:03 because your reach is the sort of

00:24:03 --> 00:24:06 gravitational force that you can exert. It's

00:24:06 --> 00:24:06 a good way of putting it.

00:24:07 --> 00:24:07 Professor Fred Watson: It.

00:24:07 --> 00:24:08 Andrew Dunkley: Andrew, well done.

00:24:08 --> 00:24:09 Professor Fred Watson: You should be on the I try

00:24:09 --> 00:24:11 Andrew Dunkley: to think on 11 year old level, but I'm

00:24:11 --> 00:24:13 thinking Thomas was probably much brighter at

00:24:13 --> 00:24:15 11 than I was struggle

00:24:15 --> 00:24:17 Professor Fred Watson: to get to 11. So do I.

00:24:17 --> 00:24:20 Andrew Dunkley: Yes, thanks Thomas. That was really terrific.

00:24:20 --> 00:24:22 Thanks for sending it in and uh, keep on

00:24:22 --> 00:24:22 listening.

00:24:26 --> 00:24:29 Professor Fred Watson: Tranquilly Base here. The eagle has landed.

00:24:29 --> 00:24:30 Professor Fred Watson: Space nets.

00:24:31 --> 00:24:34 Andrew Dunkley: Final question, Fred Watson, comes from Paul.

00:24:35 --> 00:24:36 Joe: Hello, Space Nights. Paul here from

00:24:36 --> 00:24:38 Sunnybris, Vegas, where it's currently

00:24:38 --> 00:24:41 bucketing down in what is being described

00:24:41 --> 00:24:44 as a rare rain occurrence.

00:24:45 --> 00:24:47 Anyway, I

00:24:48 --> 00:24:51 am currently looking through a very old book

00:24:51 --> 00:24:54 of mine. Guess it's old compared to

00:24:54 --> 00:24:56 these students I teach. It was published back

00:24:56 --> 00:24:59 in 1978. I think I got it in 1980 from

00:25:00 --> 00:25:02 uh, an uncle of mine, Uncle Jim. Thank you

00:25:02 --> 00:25:04 very much. It's called Stars and Planets and

00:25:04 --> 00:25:06 it's probably what got me into

00:25:07 --> 00:25:10 the whole field of astronomy in the first

00:25:10 --> 00:25:12 place. At least my interest in astronomy.

00:25:12 --> 00:25:13 Obviously

00:25:15 --> 00:25:17 Andrew Dunkley: very, uh, very grateful.

00:25:17 --> 00:25:20 Joe: I'm on the page where it's talking about

00:25:20 --> 00:25:22 how the American astronomer Carlo

00:25:22 --> 00:25:25 Shapley used

00:25:25 --> 00:25:28 the 1.5 metre reflector on

00:25:28 --> 00:25:30 top of Matt Wilson in California

00:25:31 --> 00:25:34 to work out that our sun is

00:25:34 --> 00:25:36 not at the centre of our galaxy. As was

00:25:36 --> 00:25:39 previously thought, but is about two thirds

00:25:39 --> 00:25:42 of the way to the edge. Could you

00:25:42 --> 00:25:45 please give us some idea how

00:25:45 --> 00:25:47 he actually managed to do that?

00:25:48 --> 00:25:50 Was it something about the

00:25:50 --> 00:25:53 density of stars? I mean, how many

00:25:53 --> 00:25:55 stars in the field of view?

00:25:56 --> 00:25:57 Andrew Dunkley: Uh, when you point it one way

00:25:57 --> 00:25:59 Joe: compared to the other other. How did you do

00:25:59 --> 00:26:01 it? I'm really curious and I know I could

00:26:01 --> 00:26:04 Google it, but I'd rather hear it from you

00:26:04 --> 00:26:07 guys. So thanks in advance. Love

00:26:07 --> 00:26:10 the show and dare I

00:26:10 --> 00:26:12 say, keep up the good work. Cheers.

00:26:13 --> 00:26:13 Professor Fred Watson: Cheers.

00:26:13 --> 00:26:15 Andrew Dunkley: Paul, thanks for sending that in. Uh,

00:26:16 --> 00:26:18 sending the question in and uh, we don't know

00:26:18 --> 00:26:21 the answer, so. But

00:26:21 --> 00:26:24 we're going to Google it. No, um, uh,

00:26:24 --> 00:26:26 1978, stars and planets. Uh,

00:26:27 --> 00:26:29 I tried to look it up. There are umpteen

00:26:29 --> 00:26:31 books named Stars and Planets.

00:26:31 --> 00:26:32 Professor Fred Watson: Yeah.

00:26:32 --> 00:26:34 Andrew Dunkley: So I haven't been able to, you know,

00:26:34 --> 00:26:36 distinguish one from the other as yet. So,

00:26:36 --> 00:26:39 um. Uh, yeah, you'll have to do some

00:26:39 --> 00:26:41 fishing to find the book that, uh, Paul was

00:26:41 --> 00:26:42 talking about.

00:26:42 --> 00:26:44 But he wanted to know about

00:26:45 --> 00:26:47 the man who decided or

00:26:47 --> 00:26:50 discovered that the sun was not the centre of

00:26:50 --> 00:26:53 everything. Uh, which was a common

00:26:53 --> 00:26:54 belief back in the day.

00:26:55 --> 00:26:58 Professor Fred Watson: It was, um, it was actually 1919 when that

00:26:58 --> 00:26:59 discovery was made.

00:27:00 --> 00:27:00 Andrew Dunkley: Was it that recent?

00:27:01 --> 00:27:04 Professor Fred Watson: Yeah. Wow. Uh, it's one of my favourite

00:27:04 --> 00:27:06 astronomical discoveries, which is why I

00:27:06 --> 00:27:08 didn't need to go to Google to look it up.

00:27:08 --> 00:27:11 Um, so it goes back to the time

00:27:11 --> 00:27:14 of William Herschel, uh, who was

00:27:14 --> 00:27:17 a German turned British

00:27:17 --> 00:27:20 astronomer, worked late in

00:27:20 --> 00:27:23 the 18th century and early in the 19th

00:27:23 --> 00:27:25 century, discovered the planet Uranus in

00:27:25 --> 00:27:27 1780. But what he was doing when

00:27:27 --> 00:27:30 he discovered Uranus was actually mapping the

00:27:30 --> 00:27:33 Milky Way. He was observing, um,

00:27:33 --> 00:27:36 the Milky Way in a very systematic way with a

00:27:36 --> 00:27:39 relatively small telescope. So sort of

00:27:39 --> 00:27:42 counting stars in the

00:27:42 --> 00:27:44 field of view of his telescope and then

00:27:44 --> 00:27:46 moving the telescope a bit further along the

00:27:46 --> 00:27:48 Milky Way, counting stars again, how many he

00:27:48 --> 00:27:51 could see in the field of view and doing that

00:27:51 --> 00:27:53 and doing it. He couldn't do it all the way

00:27:53 --> 00:27:54 around the Milky Way. Cause there's parts of

00:27:54 --> 00:27:56 it that he could never see because they're in

00:27:56 --> 00:27:58 the southern hemisphere. But he'd got round

00:27:58 --> 00:28:01 most of it. And what he discovered was that

00:28:02 --> 00:28:05 the star counts are pretty even all the way

00:28:05 --> 00:28:07 around. And so that led

00:28:08 --> 00:28:11 him to build the hypothesis that

00:28:11 --> 00:28:13 the stars are in a sort of flattened disc,

00:28:13 --> 00:28:16 which is correct. Uh, but that we're very

00:28:16 --> 00:28:18 near the middle, which is not correct.

00:28:18 --> 00:28:21 And the reason why he got that

00:28:21 --> 00:28:23 erroneous answer was that, uh, when you look

00:28:23 --> 00:28:26 through, I think it was a 7 inch telescope,

00:28:26 --> 00:28:28 if I remember right, a telescope of that

00:28:28 --> 00:28:31 size at, uh, the Milky Way, the stars that

00:28:31 --> 00:28:34 you see are all relatively

00:28:34 --> 00:28:36 nearby. They're perhaps 1000

00:28:36 --> 00:28:38 light years away or something like that,

00:28:38 --> 00:28:41 maybe a bit more, maybe a couple of thousand

00:28:41 --> 00:28:43 light years away in the plane of the Milky

00:28:43 --> 00:28:45 Way. And, uh, that's partly because the Milky

00:28:45 --> 00:28:48 Way is very dusty. Uh, there's a lot of dust

00:28:48 --> 00:28:50 everywhere. It's probably better described as

00:28:50 --> 00:28:53 smoke, but we call it dust in the world of

00:28:53 --> 00:28:55 astronomy. And so that dust limits how far

00:28:55 --> 00:28:58 you can see. And so when you look at the

00:28:58 --> 00:29:01 Milky Way, it does look generally relatively

00:29:01 --> 00:29:03 even. There's one bit in the constellation of

00:29:03 --> 00:29:06 Sagittarius where it's brighter and that's

00:29:06 --> 00:29:07 because you are looking towards, as we now

00:29:07 --> 00:29:10 know, the galactic centre. But, um, Herschel,

00:29:11 --> 00:29:13 um, he couldn't see that very well from the

00:29:13 --> 00:29:15 Northern hemisphere anyway. But he did sort

00:29:15 --> 00:29:18 of discount that. Uh, he said, by and large,

00:29:18 --> 00:29:21 it's the same count all the way around, so we

00:29:21 --> 00:29:24 must be in the middle, uh, roll

00:29:24 --> 00:29:27 on the years. And in 1919, Harlow

00:29:27 --> 00:29:29 Shapley, a very gifted American astronomer,

00:29:29 --> 00:29:31 although he did get one thing, one big thing

00:29:31 --> 00:29:34 wrong, uh, but what he did was

00:29:35 --> 00:29:37 he was interested in objects that we call

00:29:37 --> 00:29:39 globular clusters. And so these are, uh, in

00:29:39 --> 00:29:41 fact they were named by William Herschel. He

00:29:41 --> 00:29:43 gave them that name. Uh, clusters of stars

00:29:43 --> 00:29:46 that appear like a globe. Uh, and

00:29:47 --> 00:29:50 Harlow Shapley was, uh,

00:29:51 --> 00:29:53 he was interested in globular clusters. He

00:29:53 --> 00:29:56 noticed there were a lot of them in our, uh,

00:29:56 --> 00:29:59 skies. Uh, they tended

00:29:59 --> 00:30:02 to be different sizes. Uh,

00:30:02 --> 00:30:04 and he didn't know whether that was because

00:30:04 --> 00:30:06 they were all the same size and some were

00:30:06 --> 00:30:08 nearer than others or whether they were

00:30:08 --> 00:30:10 intrinsically different sizes. But what he

00:30:10 --> 00:30:13 did notice was that there's a concentration

00:30:13 --> 00:30:15 of them in the southern

00:30:15 --> 00:30:18 hemisphere sky. Uh, he was

00:30:18 --> 00:30:20 observing from California, so he could see,

00:30:20 --> 00:30:22 see a fair swath of the southern hemisphere

00:30:22 --> 00:30:25 sky. But he noticed that they were

00:30:25 --> 00:30:28 concentrated in that direction and that made

00:30:28 --> 00:30:30 him wonder if that

00:30:31 --> 00:30:33 was where the centre of the galaxy lay,

00:30:33 --> 00:30:36 rather than us being near the centre. Uh,

00:30:36 --> 00:30:38 but then his other step was that he

00:30:38 --> 00:30:41 recognised that within these globular

00:30:41 --> 00:30:44 clusters was something called, they

00:30:44 --> 00:30:47 called them cluster variables, stars that

00:30:47 --> 00:30:49 varied in a certain way with a

00:30:49 --> 00:30:52 periodicity of about a day. Uh, today

00:30:52 --> 00:30:55 we call them RR liry variables. And I

00:30:55 --> 00:30:56 actually started my astronomical research

00:30:56 --> 00:30:59 back in the 70s studying these things,

00:30:59 --> 00:31:02 uh, RR variables. Uh, and

00:31:03 --> 00:31:06 they are good because they've

00:31:06 --> 00:31:09 got basically a known distance.

00:31:09 --> 00:31:12 Uh, if you can see an RR

00:31:12 --> 00:31:15 variable and identify it as one, you know how

00:31:15 --> 00:31:18 intrinsically bright it is, uh, and then from

00:31:18 --> 00:31:20 that you can work out how far away it is.

00:31:21 --> 00:31:24 And so he found these variable stars in the

00:31:24 --> 00:31:27 globular clusters and recognised that he

00:31:27 --> 00:31:29 could draw a chart with the globular

00:31:29 --> 00:31:32 clusters all at their correct distance on it,

00:31:32 --> 00:31:35 make a kind of three dimensional map of the

00:31:35 --> 00:31:37 sky and sure enough, um, they

00:31:37 --> 00:31:40 concentrated around the galactic

00:31:40 --> 00:31:42 centre around a point. Uh, he actually got

00:31:42 --> 00:31:45 the answer wrong because his magnitude, his

00:31:45 --> 00:31:47 brightness that he had for the, uh, cluster

00:31:47 --> 00:31:50 variables was incorrect. And I can't remember

00:31:50 --> 00:31:53 what answer he got, but in my modern PARLANCE

00:31:54 --> 00:31:56 it's about 25 light years.

00:31:57 --> 00:32:00 The globular clusters themselves cluster

00:32:00 --> 00:32:03 around a point about 25 light years

00:32:03 --> 00:32:05 away, which is deeply hidden by the dust

00:32:05 --> 00:32:08 clouds in Sagittarius. So he

00:32:08 --> 00:32:10 figured out that that's where the centre of

00:32:10 --> 00:32:12 the galaxy was. A brilliant piece of

00:32:12 --> 00:32:15 detective work. We know he was right. Uh,

00:32:15 --> 00:32:18 what he was wrong about was, uh, he had a big

00:32:18 --> 00:32:21 discussion, I think in 1923,

00:32:21 --> 00:32:24 just before Hubble recogn that

00:32:24 --> 00:32:27 galaxies were big things a long way away. Uh,

00:32:27 --> 00:32:29 Shapley was arguing that galaxies lie within

00:32:29 --> 00:32:32 our own Milky Way, that they're small objects

00:32:32 --> 00:32:34 in our own Milky Way. And he was, um,

00:32:35 --> 00:32:37 arguing. It was a public debate actually,

00:32:37 --> 00:32:39 between Shapley and a guy called Heber

00:32:39 --> 00:32:42 Curtis. Uh, Curtis had the answer right. He

00:32:42 --> 00:32:44 said they're big and a long way off. Uh,

00:32:44 --> 00:32:46 Shapley said, no, they're small and nearby.

00:32:47 --> 00:32:49 And it was very soon after that that Hubble

00:32:49 --> 00:32:51 produced that they're big and a long way. Uh,

00:32:51 --> 00:32:53 uh, proved that they're big and a long way

00:32:53 --> 00:32:55 off. So Shapley was wrong in that, but he was

00:32:55 --> 00:32:57 right about galactic centre.

00:32:57 --> 00:33:00 Andrew Dunkley: Fantastic. Gee whiz. Um, great

00:33:00 --> 00:33:03 question, Paul. And, um, yeah, uh,

00:33:03 --> 00:33:05 if people are looking for that, uh, book

00:33:06 --> 00:33:08 Stars and Planets, uh, it is out there. Uh,

00:33:08 --> 00:33:11 look, I've found a couple that were actually

00:33:11 --> 00:33:13 published around that time that Paul

00:33:13 --> 00:33:15 mentioned, but not, um, sure if they're the

00:33:15 --> 00:33:18 ones. I can't remember the author now, um,

00:33:18 --> 00:33:19 that he said, but I don't think

00:33:19 --> 00:33:21 Professor Fred Watson: anyway, mentioned an author.

00:33:21 --> 00:33:22 Andrew Dunkley: I thought he did, but, uh, he might have

00:33:22 --> 00:33:23 mentioned it.

00:33:23 --> 00:33:23 Joe: Uncle.

00:33:24 --> 00:33:25 Professor Fred Watson: It was his uncle he mentioned.

00:33:25 --> 00:33:25 Andrew Dunkley: Uncle.

00:33:25 --> 00:33:26 Professor Fred Watson: Uncle Jim.

00:33:27 --> 00:33:28 Andrew Dunkley: Right. But, um,

00:33:30 --> 00:33:32 um, so, yeah, thanks, Paul. Thanks for the

00:33:32 --> 00:33:35 question. And, um, yeah, it's a fascinating,

00:33:35 --> 00:33:38 um, history in astronomy as we discover these

00:33:38 --> 00:33:40 things. I think one of my favourite

00:33:40 --> 00:33:43 moments, I suppose, in astronomical history

00:33:43 --> 00:33:46 was when they discovered that our sun was a

00:33:46 --> 00:33:46 star.

00:33:48 --> 00:33:50 Professor Fred Watson: M. That was a long time ago. Yeah,

00:33:51 --> 00:33:51 yeah.

00:33:51 --> 00:33:54 Andrew Dunkley: But for a while there we didn't think of It.

00:33:54 --> 00:33:55 Professor Fred Watson: I thought it was something else. That's

00:33:55 --> 00:33:58 right. Something a bit special. Yeah.

00:33:58 --> 00:34:01 Andrew Dunkley: Um, and I saw that on a BBC documentary

00:34:01 --> 00:34:03 many years ago and I sat there and went,

00:34:04 --> 00:34:06 wow. I never thought about that because I've

00:34:06 --> 00:34:09 always known it to be a star, but for

00:34:09 --> 00:34:10 generations they didn't.

00:34:12 --> 00:34:15 Quite intriguing. And why would you. It

00:34:15 --> 00:34:16 doesn't look like a star.

00:34:17 --> 00:34:20 Professor Fred Watson: That's right. Uh, uh, it's

00:34:20 --> 00:34:22 clearly quite different from a star. Uh,

00:34:23 --> 00:34:24 Andrew Dunkley: incredible.

00:34:24 --> 00:34:26 Thanks, Paul. Thanks for sending that in. And

00:34:26 --> 00:34:29 if you have a question for. Thanks to all our

00:34:29 --> 00:34:31 sender innerers, I've always wanted to say

00:34:31 --> 00:34:33 that, uh, for their questions. And if you

00:34:33 --> 00:34:34 would like to send a question, go to our

00:34:34 --> 00:34:37 website, spacenutspodcast.com or

00:34:37 --> 00:34:40 spacenuts IO and there's a little

00:34:40 --> 00:34:43 AMA M tab at the top, which stands for Ask

00:34:43 --> 00:34:45 me anything. Not me personally, it's the

00:34:45 --> 00:34:48 rookie royal me. And, um,

00:34:48 --> 00:34:50 just put your, uh, question in there. It can

00:34:50 --> 00:34:53 be text or audio. Don't forget to tell us who

00:34:53 --> 00:34:54 you are and where you're from and have a look

00:34:54 --> 00:34:56 around. While you're there, don't forget to

00:34:56 --> 00:34:59 leave a review at your favourite podcasting

00:34:59 --> 00:35:01 platform. We're all done. Thanks,

00:35:01 --> 00:35:01 Fred Watson.

00:35:02 --> 00:35:04 Professor Fred Watson: A great pleasure, Andrew. Um, we, uh,

00:35:04 --> 00:35:07 continue to get great questions from great

00:35:07 --> 00:35:09 listeners and long may it continue. Thank

00:35:09 --> 00:35:09 you.

00:35:09 --> 00:35:12 Andrew Dunkley: Yes, indeed, we continue to solve and evolve.

00:35:13 --> 00:35:14 Um, maybe not.

00:35:15 --> 00:35:16 Professor Fred Watson: I'm not evolving.

00:35:18 --> 00:35:21 Andrew Dunkley: Once you reach a certain age, evolving

00:35:21 --> 00:35:23 just is not part of the programme. That's

00:35:23 --> 00:35:23 right.

00:35:23 --> 00:35:24 Professor Fred Watson: Yeah.

00:35:24 --> 00:35:26 Andrew Dunkley: Ask my mum on the Internet. Uh, thanks,

00:35:26 --> 00:35:27 Fred Watson. We'll see you soon.

00:35:28 --> 00:35:29 Professor Fred Watson: Sounds great. Thanks, Andrea.

00:35:29 --> 00:35:31 Andrew Dunkley: Professor Fred Watson Watson, astronomer at

00:35:31 --> 00:35:33 large. And thanks to Huw in the studio. He's

00:35:33 --> 00:35:35 just turned up. Um, we started 39

00:35:35 --> 00:35:38 minutes ago and, um, Huw set his

00:35:38 --> 00:35:41 clock to a Martian day, so that's why he's

00:35:41 --> 00:35:42 39 minutes late.

00:35:42 --> 00:35:43 Professor Fred Watson: Boom, boom.

00:35:43 --> 00:35:45 Andrew Dunkley: And from me, Andrew Dunkley, thanks for your

00:35:45 --> 00:35:47 company. We'll see you on the next episode of

00:35:47 --> 00:35:48 Space Nuts.

00:35:48 --> 00:35:48 Professor Fred Watson: Bye. Bye.

00:35:49 --> 00:35:52 Joe: You've been listening to the Space Nuts

00:35:52 --> 00:35:55 Andrew Dunkley: podcast, available at

00:35:55 --> 00:35:56 Apple Podcasts, Spotify,

00:35:57 --> 00:35:59 iHeartRadio or your favourite podcast

00:35:59 --> 00:36:01 player. You can also stream on

00:36:01 --> 00:36:04 demand@bytes.com. this has been another

00:36:04 --> 00:36:06 quality podcast production from

00:36:06 --> 00:36:07 bytes.com.