Will be interesting to see what they use for a receiving antenna. 90 dBi gain is about the limit for single aperture reflector antennas at RF, as you contended with structure deformation at low frequencies, then surface roughness at high frequencies, not to mention tracking a fast moving object with that precision to keep it in the beam width. At X-rays, I don’t know how you would focus it as the roughness is in on a…
Nasa Set to Demonstrate X-Ray Communications in Space
11–20 of 27 posts
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#12Will be interesting to see what they use for a receiving antenna. 90 dBi gain is about the limit for single aperture reflector antennas at RF, as you contended with structure deformation at low frequencies, then surface roughness at high frequencies, not to mention tracking a fast moving object with that precision to keep it in the beam width. At X-rays, I don’t know how you would focus it as the roughness is in on a…
Even to x-rays, smooth surfaces become reflective at grazing incidence, so you can make mirrors that are constructed on that principle. Not simple to do, but not impossible either.
https://arxiv.org/pdf/1007.4600.pdf
So it would be interesting to see how that effects it. I suppose a crystal fractured along the lattice for an atomically smooth surface.
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#13A wild idea I had never even thought of, X-rays are of high enough frequncy that they can penetrate the plasmasheath of high velocity vehicles. Seemingly this is for hypersonic transport, and rentry vehicles, my mind is quite boggled.
What is the mechanism by which a plasmasheath blocks radiowaves, and why would x-rays be an exception?
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#14Re: Nasa Set to Demonstrate X-Ray Communications in Space
#15Earlier quoted context omitted.
What is the mechanism by which a plasmasheath blocks radiowaves, and why would x-rays be an exception?
https://www.researchgate.net/post/How_does_the_plasma_sheath... > an electromagnetic wave can penetrate the plasma if the wave frequency f is higher than the electron plasma frequency. X-rays have a much higher frequency (i.e. much higher energy) than the radio waves we normally use for communications, so it can punch through the noise of charged particles that makes up plasma.
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#16NASA not Nasa. It’s an acronym not a word.
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#17NASA not Nasa. It’s an acronym not a word.
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#18> XCOM I love it (For those not aware, https://en.wikipedia.org/wiki/XCOM:_Enemy_Unknown )
Also https://www.xcom-labs.com/ And of course Https://www.x.com
(just put a trailing / at the end)
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#19Are there any health concerns about using X-ray constantly for communications? For example, should astronauts performing EVAs take care to avoid the area around the antenna? Or is there enough ionizing radiation in space already that adding some X-ray in the mix won't make any difference?
Now, the x-ray transmitter wouldn't be focused the right way to send maximum radiation into an astronaut and it would have a reduced duty cycle because it's not just a simple x-ray flashlight, but giving it an hour-long bear hug while it's in use would be a very bad idea.
Of course the most relevant point is that the vast majority of spaceships don't have humans on them.
Re: Nasa Set to Demonstrate X-Ray Communications in Space
#20Will be interesting to see what they use for a receiving antenna. 90 dBi gain is about the limit for single aperture reflector antennas at RF, as you contended with structure deformation at low frequencies, then surface roughness at high frequencies, not to mention tracking a fast moving object with that precision to keep it in the beam width. At X-rays, I don’t know how you would focus it as the roughness is in on a…