Mostly off-topic here, but it seems like the best place to get an answer: several years ago in my lab at Georgia Tech, a technician I worked with said he had a friend who invented a device for doing celestial navigation, but that it 1) worked in the daytime somehow and 2) used digital technology so that it was more precise than a sextant / traditional celestial navigation. The technician was prone to a bit of exagger…
This is the best reference I've found so far on the SR-71 system (the NAS-14V2): https://airandspace.si.edu/webimages/collections/full/NAS-14... That's some kind of flight/operational manual for the astroinertial navigation system (ANS), pretty detailed. Quite amazing that it's been declassified - you can see the link is from the Smithsonian Air and Space Museum. It also discusses details of how missions are loaded a…
We built a new GPS receiver engine
81–90 of 122 posts
Re: We built a new GPS receiver engine
#82Earlier quoted context omitted.
The speed limit in the US is 1000mph, else it’s a munition. Please note: my apologies in advance for a comment that may be perceived as pedantic, but I just wanted to further illuminate this statement. The U.S. regulation, which technically falls under the Export Administration Regulations (Navigation and Avionics), does not exclusively regulate GPS navigation in munitions applications; rather, it serves to regulate…
According to Google, the F22 can do 1500 mph. Looks like civillian GPS is still good as long as you keep it under Mach 1.8 at sea level ;) ICBMs on the other hand, reportedly go ten times the speed of an F22.
Re: We built a new GPS receiver engine
#83Mostly off-topic here, but it seems like the best place to get an answer: several years ago in my lab at Georgia Tech, a technician I worked with said he had a friend who invented a device for doing celestial navigation, but that it 1) worked in the daytime somehow and 2) used digital technology so that it was more precise than a sextant / traditional celestial navigation. The technician was prone to a bit of exagger…
This is probably the best one: https://patents.google.com/patent/US3165632?oq=%22star+track...
The core technologies are IR filter (to increase contrast) + an optical modulator + a synchronous detector (lock-in amplifier).
There are a bunch of variations (mostly, I think, to avoid patent infringement). The basic idea is to have a sensor offset from the optical axis of a telescope (and revolving around the OA--or, more commonly, to rotate the OA about the sensor). The telescope is focused at infinity.
Then modulate the entire field in various clever ways (to avoid the gradient of the sky brightness from affecting the measurement), and detect the total field brightness with a PMT (nowdays you'd use a CMOS sensor or photodiode).
They typically include a servo to point the telescope OA at the star (conveniently, this also tells you how the star is oriented relative to the body axis of whatever the tracker is mounted on).
Re: We built a new GPS receiver engine
#84Earlier quoted context omitted.
RTK gps is better and quite affordable now. Look it up, you can use two receivers costing maybe $15 each for it.
Do you happen to know a good introduction to how one would use it? I've looked at tools around it a few times, but always didn't find the point where it made "click" on how to actually do anything with them.
Re: We built a new GPS receiver engine
#85Mostly off-topic here, but it seems like the best place to get an answer: several years ago in my lab at Georgia Tech, a technician I worked with said he had a friend who invented a device for doing celestial navigation, but that it 1) worked in the daytime somehow and 2) used digital technology so that it was more precise than a sextant / traditional celestial navigation. The technician was prone to a bit of exagger…
He might have been exaggerating the performance of his friend's "invention", but you can track the sun during the day, stars at night, and possibly other celestial bodies during the day with sensitive enough instruments. If you can calculate the angles between local gravity, the height of the sun, and you know what time it is, there is a lot of location information there, especially if you track changes over time and…
Also the moon is sometimes visible during the day, and since the topography of the moon stays constant over time that trick will work with the moon (with craters etc) even without a recent picture.
Re: We built a new GPS receiver engine
#86Earlier quoted context omitted.
There are two limits: 60000ft and 1000 knots. Some manufacturers use "AND" between them, others use "OR"[1]. So you can have faster drones if you manage to stay below 60000 ft. [1] https://ukhas.org.uk/guides:gps_modules
Some manufacturers have imposed lower limits eg some older Garmin handhelds won’t display info at speeds over 90 mph, though they still maintained a fix. I believe it was to stop people using them in light aircraft.
Re: We built a new GPS receiver engine
#87Re: We built a new GPS receiver engine
#88Earlier quoted context omitted.
This is the best reference I've found so far on the SR-71 system (the NAS-14V2): https://airandspace.si.edu/webimages/collections/full/NAS-14... That's some kind of flight/operational manual for the astroinertial navigation system (ANS), pretty detailed. Quite amazing that it's been declassified - you can see the link is from the Smithsonian Air and Space Museum. It also discusses details of how missions are loaded a…
Very cool! Can you expand on the idea that it's just a single IR photodiode? This would get rid of visible atmospheric light, but wouldn't there still be residual IR light from the sun (whatever isn't absorbed by the atmosphere) interfering with collecting the light from stars?
Referencing the link from my other comment, the nutator and optical modulator referenced in the patent combine to remove the residual sky background and apply FM modulation to the star aligned with the telescope OA.
By measuring the phase and depth of the FM modulation, you get the angle and distance of offset between the star and OA.
Re: We built a new GPS receiver engine
#89Mostly off-topic here, but it seems like the best place to get an answer: several years ago in my lab at Georgia Tech, a technician I worked with said he had a friend who invented a device for doing celestial navigation, but that it 1) worked in the daytime somehow and 2) used digital technology so that it was more precise than a sextant / traditional celestial navigation. The technician was prone to a bit of exagger…
They used astro-navigation as far back as the SR71, the "guidance group" system nicknamed R2D2. Cool video of a pilot talking about it here: https://youtu.be/CeBu6mRDaro?t=3180
The main difference being that star sights were taken manually, with an instrument and an eyeball, instead of automatically like the SR71.
Of course satellites did and still do use star trackers. The Apollo astronauts took star sights too, presumably for orientation rather than position.