edit: More questions, since photons are massless they should be unaffected by gravity except in the sense of following the curvature of spacetime. Could the non-zero mass of the neutrino mean that if you changed the experiment so it fired away from the earth mean that the neutrinos would travel "slower" than photons?
Speed-of-light experiments yield baffling result at LHC
21–30 of 255 posts
Re: Speed-of-light experiments yield baffling result at LHC
#22Couldn't it be that the lack of interaction with the electro-weak force allows neutrinos to exceed the speed of a photon in a non-vacuum environment? Or is the article saying that the neutrinos exceed c ? edit: More questions, since photons are massless they should be unaffected by gravity except in the sense of following the curvature of spacetime. Could the non-zero mass of the neutrino mean that if you changed the…
Re: Speed-of-light experiments yield baffling result at LHC
#23It wouldn't break current theory, it would just mean that photons travel slower than "speed of light" and have non-zero rest mass. Constant c in relativity instead of speed of photons would just mean fastest speed possible.
Non-zero rest mass photons will break a lot of theories.
Plus, the "speed of light" is not merely an experimental result coming out of an interferometer. It's also a theoretical result, e.g. from Maxwell's equations - that's the one referred to by special relativity.
Re: Speed-of-light experiments yield baffling result at LHC
#24It wouldn't break current theory, it would just mean that photons travel slower than "speed of light" and have non-zero rest mass. Constant c in relativity instead of speed of photons would just mean fastest speed possible.
Re: Speed-of-light experiments yield baffling result at LHC
#25Earlier quoted context omitted.
Isn't the speed at which photons travel, by definition, the speed of light? And as for the "c" in e=mc^2, doesn't this suddenly make "c" an unknown constant? Doesn't the fact that "c" changes suddenly change the values of the other variables in that equation as well? That seems pretty fundamental to me...
Isn't the speed at which photons travel, by definition, the speed of light? Photons speed up and slow down routinely, depending on what medium they're traveling through. c , as it is used in the equations of relativity, is currently believed to be equal to the speed of light in a vacuum. But, with my limited knowledge of GR, my understanding is that gaika is correct and that the rest of the theory can still stand if…
A photon's instantaneous speed is always the speed of light.
Re: Speed-of-light experiments yield baffling result at LHC
#26It wouldn't break current theory, it would just mean that photons travel slower than "speed of light" and have non-zero rest mass. Constant c in relativity instead of speed of photons would just mean fastest speed possible.
Re: Speed-of-light experiments yield baffling result at LHC
#27Earlier quoted context omitted.
Isn't the speed at which photons travel, by definition, the speed of light? And as for the "c" in e=mc^2, doesn't this suddenly make "c" an unknown constant? Doesn't the fact that "c" changes suddenly change the values of the other variables in that equation as well? That seems pretty fundamental to me...
Isn't the speed at which photons travel, by definition, the speed of light? Photons speed up and slow down routinely, depending on what medium they're traveling through. c , as it is used in the equations of relativity, is currently believed to be equal to the speed of light in a vacuum. But, with my limited knowledge of GR, my understanding is that gaika is correct and that the rest of the theory can still stand if…
Do they really? As far as I know their speed is always constant in any medium. They just seem to slow down because they get absorbed and re-transmited. That is where the lost of velocity comes from. When traveling between one atom and another, which is a vacuum, they are always traveling at the speed of light.
Re: Speed-of-light experiments yield baffling result at LHC
#28If I calculated correctly, that's only about .0025% faster than c. Practical implications?
Re: Speed-of-light experiments yield baffling result at LHC
#29It wouldn't break current theory, it would just mean that photons travel slower than "speed of light" and have non-zero rest mass. Constant c in relativity instead of speed of photons would just mean fastest speed possible.
Don't forget... c is the speed of light 'in a vacuum'. Light travels slower through gas, water or glass. Light has even been slowed down to walking speed in a laboratory. The speed of light is not constant. The speed of light in a vacuum is. We assume.
I think this is wrong. Regardless of the medium the speed of light is always constant. It seems to slow down because the photons are getting absorbed and re-transmited by atoms. But the speed of light is always the same regardless.
Re: Speed-of-light experiments yield baffling result at LHC
#30If I calculated correctly, that's only about .0025% faster than c. Practical implications?