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MuonNeutrino
Commander
Posts: 167
Joined: Tue Aug 06, 2013 12:40 pm
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Kzt's link is about detectability to infrared sensors, which is a reasonable enough way to go about it (while I do have the occasional quibble with their calculations, that site is usually on the right track). However, it sounds like you're asking about optical visibility, which is a somewhat different kettle of fish. A precise answer would require lots of annoying details, but we can make some estimates reasonably easily.
In this case you're observing reflected light from the sun rather than blackbody radiation emitted by the object. Both L1 and L4/5 are roughly 1 AU from the sun (L1 is only 0.01 AU from earth, so still about the same distance), and at this distance the illumination from the sun is about 1360 W/m^2. Of that, something like 45% is visible light, so roughly 610 W/m^2. If we assume that the ship has a cross-sectional area of A and reflects all the light that hits it evenly into a half-sphere (crude assumptions but close enough for estimation), then the effective 'luminosity' of the ship in terms of the reflected visible light is very roughly L = 1220 W * A/m^2.
We're interested in the flux that we observe, so we need to factor in the distance from earth to the lagrange points. This gives F = (1220 W * A/m^2)/(4*pi*r^2) = 97.1 W/m^2 * (A/r^2). I'm going to convert this to apparent visual magnitude, because that'll make it easier to compare to the detection limits of various astronomical instruments later on. Skipping all the gory details, this ends up giving m = -2.5*log(32.4 * A/r^2) - 21.1. (Note that the magnitude system is backwards, smaller numbers = brighter.) For L1 the distance is about r = 1.5e9 m, and for L4/5 the distance is 1 AU, r = 1.5e11 m. Plugging those in and rearranging a bit, we end up with the following:
m(L1) = 21.0 - 2.5 log(A/m^2)
m(L4/5) = 31.0 - 2.5 log(A/m^2)
The limiting magnitude of the human eye is about 6. If you substitute that into the above and solve for A, you get that you'd need a surface area of about 1e6 m^2 to be visible at L1 and about 1e10 m^2 to be visible at L4/5. Assuming the usual honorverse proportions, that'd be a ship about 2650x375 m in size for L1 and 265x37.5 km in size for L4/5, assuming we're seeing it broadside on.
Now, we made a lot of assumptions to get here, so these numbers aren't necessarily exact, but they're probably good to less than an order of magnitude, so we're still talking sizes of a couple km for L1 and a couple hundred km for L4/5. Those are pretty big - the former is twice the dimensions (and thus 8 times the mass) of an invictus, while the latter is even bigger than Hephaestus - but that's what you get if you want something to be visible to the human eye over astronomically significant distances. Of course in reality you can't see something at L1 via reflected light at all because it's inbetween you and the sun, but the numbers would work about the same for something at the exterior L2 point.
The limiting magnitude of telescopic observations varies based on a very large number of factors relating to the properties of the telescope, camera, and observing parameters, so it's not really practical to try to give a definitive answer here. As an example, though, the limiting magnitude of the Sloan Digital Sky Survey for point sources in the g band is 22.2. If you put that into the above, you find that you'd need a surface area of only 0.33 m^2 at L1 and 3300 m^2 at L4/5. The former figure is obviously tiny, while the latter figure happens to be a bit more than the surface area of a Chanson class DD viewed broadside-on.
The SDSS is an important astronomical survey (which is why I used it as an example), but it only used a 2.5 meter telescope and its sensitivity is good but not particularly outstanding compared to observations using the really big instruments. Given that SDSS can see destroyers at L4/5, it's pretty safe to say that any larger instruments could easily detect all honorverse ships, probably even a LAC, at the 1 AU distance of that point. And given that you only need 0.33 m of surface area to be visible to SDSS at the distance of L1, honorverse ships at those ranges could likely be seen even in relatively small scopes.
Last edited by MuonNeutrino on Thu Mar 23, 2017 6:58 pm, edited 1 time in total.
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MuonNeutrino
Astronomer, teacher, gamer, and procrastinator extraordinaire
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