Telephoto Camera Lens Assists Dark Matter Find
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Telephoto Camera Lens Assists Dark Matter Find
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Re: Telephoto Camera Lens Assists Dark Matter Find
#2http://www.dunlap.utoronto.ca/instrumentation/dragonfly/
An example with the details as it used only 8 lenses:
http://inspirehep.net/record/1278457
Previously on HN with some good comments:
Re: Telephoto Camera Lens Assists Dark Matter Find
#3Re: Telephoto Camera Lens Assists Dark Matter Find
#4The basic reason for this is that as you increase the size of your telescope, not only does the collecting area increase, but the area of the image increases as well. So if you're looking at a diffuse source like a galaxy, the increased number of photons gets spread out over a larger area and the total number of photons per pixel remains the same. This isn't a problem for point sources (like stars) because even as the image size increases, all the photons from a point source still fall in the same pixel so the source appears brighter to the detector.
As peter303 also mentioned, refracting telescopes don't suffer from the same artifacts that reflecting telescopes do, which is why these surveys use small telephoto lenses rather than small reflectors.
Re: Telephoto Camera Lens Assists Dark Matter Find
#5Small telescopes are very useful for searches for extremely faint, diffuse galaxies because it turns out that these searches are surface brightness limited rather than being magnitude limited like most surveys. Surface brightness is a little counterintuitive because the minimum surface brightness a survey can find is actually independent of telescope size. Using a 8-m telescope is no better for finding a diffuse gala…
Re: Telephoto Camera Lens Assists Dark Matter Find
#6Small telescopes are very useful for searches for extremely faint, diffuse galaxies because it turns out that these searches are surface brightness limited rather than being magnitude limited like most surveys. Surface brightness is a little counterintuitive because the minimum surface brightness a survey can find is actually independent of telescope size. Using a 8-m telescope is no better for finding a diffuse gala…
So would you get similar surface brightness performance out of a larger telescope by decreasing the size of the detector, by adding a couple lenses to focus the light onto a smaller area? It's been a while since I took astronomy courses and I try to keep up with the basic physics.
Incidentally, this is related to a puzzle: can you burn a paper with moonlight if you have a sufficiently big magnifying glass? It turns out that you cannot (at least as long as you're using a normal magnifying glass that brings light to a focus), because the highest temperature you can produce is the temperature at the surface of the moon. In the limit of having an infinitely big magnifying glass, the view from the sheet of paper would be the same as the view from the moon, and so the temperatures would be the same as well [1].
[1]: Making various assumptions about radiative thermal equilibrium, etc.
Re: Telephoto Camera Lens Assists Dark Matter Find
#7Earlier quoted context omitted.
So would you get similar surface brightness performance out of a larger telescope by decreasing the size of the detector, by adding a couple lenses to focus the light onto a smaller area? It's been a while since I took astronomy courses and I try to keep up with the basic physics.
Yes and no. In principle it would be possible to do something like that, but you could only do it for a part of the image and you would lose the focus. You'd basically be trying to transform an extended source into a point source. In practice it's easier just to use a smaller telescope for a longer period of time. Incidentally, this is related to a puzzle: can you burn a paper with moonlight if you have a sufficientl…
Edit: this xkcd does a wonderful elaboration on the fire - by - moonlight topic https://what-if.xkcd.com/145/
Re: Telephoto Camera Lens Assists Dark Matter Find
#8Small telescopes are very useful for searches for extremely faint, diffuse galaxies because it turns out that these searches are surface brightness limited rather than being magnitude limited like most surveys. Surface brightness is a little counterintuitive because the minimum surface brightness a survey can find is actually independent of telescope size. Using a 8-m telescope is no better for finding a diffuse gala…
Well, small telephoto lenses relative to most telescopes, pretty darn big relative to most camera lenses ;)
Re: Telephoto Camera Lens Assists Dark Matter Find
#9Small telescopes are very useful for searches for extremely faint, diffuse galaxies because it turns out that these searches are surface brightness limited rather than being magnitude limited like most surveys. Surface brightness is a little counterintuitive because the minimum surface brightness a survey can find is actually independent of telescope size. Using a 8-m telescope is no better for finding a diffuse gala…
[T]hese surveys use small telephoto lenses rather than small reflectors. Well, small telephoto lenses relative to most telescopes, pretty darn big relative to most camera lenses ;)
Re: Telephoto Camera Lens Assists Dark Matter Find
#10Earlier quoted context omitted.
Yes and no. In principle it would be possible to do something like that, but you could only do it for a part of the image and you would lose the focus. You'd basically be trying to transform an extended source into a point source. In practice it's easier just to use a smaller telescope for a longer period of time. Incidentally, this is related to a puzzle: can you burn a paper with moonlight if you have a sufficientl…
Very cool. I don't have any questions to ask you but I want you to keep talking since this is all very interesting. Edit: this xkcd does a wonderful elaboration on the fire - by - moonlight topic https://what-if.xkcd.com/145/
The only other interesting surface-brightness-related fact I can think of at the moment is that surface brightness fluctuations can be used to measure the distance to galaxies. This is one of the cases where it helps to have a really big telescope.
The basic idea is that although galaxies are extended sources, they're really just a collection of point sources --- they're just a bunch of stars grouped together in an area of the sky. Now suppose you have two similar galaxies (at least they have similar stellar densities) and one of them is close by and the other is far away. The nearby galaxy will have relatively few stars per pixel and the distant galaxy will have many more stars per pixel. Since the stars are randomly distributed, the number of stars in any given pixel will be given by a Poisson distribution. A consequence of this is that in the nearby galaxy there will be a lot of variation in the flux from one pixel to the next, whereas in the distant galaxy the image will be much more smooth. So even though the average flux per pixel from both galaxies is the same, you can still tell which one is close and which one is distant based on the surface brightness fluctuations.