james blunt
Well-Known Member
So you don't like deepities within you ?
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Seeing things in their past? You are full of beans!
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TrueBeliever37
Well-Known Member
Polymath, I saw the strangeness right away, that was why I didn't believe it.
Would a ship moving at 0.5C take twice as long to go 30 million ly, as it would to go 15 million ly?
Would a ship moving at 0.75C take twice as long to go 30 million ly as it would to go 15 million ly?
Would a ship moving at 0.9C take twice as long to go 30 million ly as it would to go 15 million ly?
Would a ship moving at 0.99C take twice as long to go 30 million ly as it would to go 15 million ly?
Yes, in all cases. ALL of these questions happen in a reference frame from which those distances and speeds are measured. But your basic question (concerning 0 distance and time) happens in a different frame than the one where the distance is 30 million ly. You have to be *very* careful when switching reference frames. Here's a point to ponder: what's twice 0?
Each of those ships would see light going past them at 100% of c *in their reference frame*. So, the ship going at 99% of C past the earth turns on a light and measures the light going away from it at 100% of c. The earthbound observer *also* measures that light as going away from earth at 100% of c.
Thermos aquaticus
Well-Known Member
Assuming they don't change velocity, yes. However, what you measure as 30 million ly from Earth would be 26 light years for the ship. 15 light years from Earth would be 13 ly for the ship. I found a handy online calculator that does the math for you, if you are interested:
Length Contraction Calculator - Omni
It has the speed of light in km/s which through me off at first, so make sure that the speed of light is a percentage of 298,000 km/s.
Yes. However, the distances as measured on the ship would be 20 million ly and 10 million ly.
Yes. However, the distances as measured on the ship would be 6.7 and 3.4 million ly.
Yes. However, the distances as measured on the ship would be 5.3 and 2.7 million ly.
Each of those should be in millions of light years.
Thermos aquaticus
Well-Known Member
Your numbers below for the higher speeds are off. I suspect the calculator works with 298,792 km/s. That makes a difference in the percentage and calculation for speeds close to 298,000.
/E: Nope....seems to be using 300,000 km/s....bad.
I got 4.23 million ly and 2.12 million ly, resp.
TrueBeliever37
Well-Known Member
That was why I avoided that reference frame, as it doesn't really exist anyway. All I was really trying to show was that time was involved in all those cases. Every valid reference frame took twice as long to go twice the distance.
So when a photon has traveled 1/2 the distance to the earth from the sun. You really don't think it has experienced 1/2 the 8m and 20s time it takes to get from the sun to earth?
TrueBeliever37
Well-Known Member
Hi Thermos,
So does that mean when you get to C, that suddenly you have instant arrival no matter what the distance(since it is always 0)?
In a word, no. A ship going past at 99% of c watching that same photon sees that same journey of the photon to the sun (or vice versa) as taking 35 seconds. So half is 17.5 seconds.
Does the photon 'experience' 17.5 seconds? Or 250 seconds? Both are valid measurements of time from different real frames.
The 'proper time' for the photon's path is zero.
Thermos aquaticus
Well-Known Member
Hopefully it is close enough so that @TrueBeliever37 can stick some numbers in and experiment a bit.
TrueBeliever37
Well-Known Member
Hi Thermos,
Doesn't it look to you like no matter what valid reference frame is used, the photons involved, experienced twice the time for twice the distance?
Thermos aquaticus
Well-Known Member
I would say that time to arrival is a meaningless question for the photon since time and distance don't exist like we experience it.
When you ask what the photons 'experienced', you get into trouble. The relativistic 'proper time' for the path the light takes is 0. The time in various reference frames is different, but those are not the proper time for the path.
TrueBeliever37
Well-Known Member
But my point is the photon would always experience/take twice the time for twice the distance, no matter what valid reference frame you are using.
Thermos aquaticus
Well-Known Member
In all of those frames of reference we can describe what an observer will observe in those frames of reference. We are not describing what the photon experiences.
It *can* be meaningful. The spacetime 'separation' is an analog for arc length for relativistic paths that gives the time as experienced by the observer going over that path. For photons, that separation is always 0.
The proper time between events at (x,t) and (x',t') is given by sqrt( (t-t')^2 - (x-x')^2 /c^2 ). This is 0 for photons.
/E: try seeing what you get when you put x=vt and x'=t'=0. You might be amused.
And twice zero is zero.
That is NOT what the photon 'experiences'. It is what the earth, or ship, or whatever *watching* the photon experiences.