Bill_K said:
No. This is really grasping at straws.
Hmmm. I was trying to make it clear that I'm open to any comments on how the universe works. I wasn't trying to take one position or another.
I'm not aware of any fundamental limit on the compression that can result from a GW. Nor am I aware of any restrictions on creating a "beamed" GW. So does known physics permit a series of beamed parallel GWs, each timed and phased so that a particle traveling transverse to the beams can pass from the Milky Way to Andromeda in 2 weeks? Yes, it's extreme, and yes, it's sort of a warp drive, but the question is what fundamental limits apply. If physics allows high amplitude GWs and allows them to be shaped such that a sublight traveling particle (or a light beam) can pass from one compressed transverse region of spacetime to another adjacent compressed region, just as the second GW beam causes compression of that second region, what are the implications for causality, if any? Presumably, they would be the same as the implications for a wormhole, which as far as I know, is a permitted spacetime configuration, even if one that is not known to exist.
It appears in my simple mental model of GWs that one could step from one compressed region to another adjacent compressed region and repeat the process to achieve a slightly FTL travel time as compared to travel without passing transversely through the perfectly timed/phased adjacent GWs It appears one could slowly outrace a nearby light beam that was outside the GW beams and moving in flatter spacetime.
I don't expect anyone here to work this out for me, and I'm not here to try to convince anyone I've found some wonderful FTL hole in GR theory. I'm just wondering about how it works. I imagine a series of such beams being implemented in advance and running constantly, setting up a path that allows what has the practical effect of FTL communication when messages are sent transversely through the adjacent parallel beams.
I find it very difficult to believe that such a thing is possible, but I want to know. Whenever such a "workaround" for light speed limits is proposed, there is usually a "gotcha". Several are known for the Alcubierre drive and they mostly related to boundary conditions and requirements for exotic materials. I didn't think I was "grasping at straws" when I mentioned that there might be similar boundary condition "gotchas" limiting what appeared on its face to be a way to communicate between two points at speeds slightly faster than light could travel between those points in flat spacetime.
If the spacetime between Andromeda and the Milky Way can be compressed, then presumably a light beam from here to there can travel in less time than the 2 million years that light takes to make the trip in the absence of such compression. Does our current knowledge of physics rule this out? It seems not, but I find that hard to accept, but not impossible. Certainly no one discusses it (that I've heard) outside of discussions of the Alcubierre drive. But if physics rules it out, then how/why?
It seems that the light travel time in one leg of the LIGO experiment is indeed reduced as compared to the travel time in flat spacetime, so perhaps I should just accept that it's possible, but hard to do in practice? But that seems to open the possibility that physics let's us set up communication channels between distant points that operate faster than light channels between those points would operate in flat ST. Is that a problem? I don't know, but it makes me uneasy.