Gravitational redshift and black holes

niin
Messages
15
Reaction score
0
Questions: Gravitational redshift and black holes

I have some questions:

1. What does gravitational redshift do to light trying to escape a black hole? Is the light destroyed?

2. And what is the physical cause of this redshift? (I’m not interested in equations and math, only the physical cause).

I hope someone can help me. Thanks.
 
Last edited:
Physics news on Phys.org
The beginning to understand gravitational redshift is the Equivalence Principle.

"In a local inertial frame the laws of physics are given by the laws of special relativity"

Now we have to reference frames S1 and S2, S1 situated at some distance above S2.
They are in a gravitational field.
S1 will always remain still and S2 will start free falling at t=0.

At t=0 we emit a photon from the origin to S2 towards S1.

... this continues but some math are required.

you can work out the frequency that S1 will receive if you use the weak field approximation.
 
Kuon,
I don't see why the "equivalence principle" should solve it. If you think of the first reference frame as being accelerated, then there is no redshift, because both reference frame must be accelerated or the distance would change between them. And it's not the distance that changes in this case. Right?
 
OK, so this has bugged me for a while about the equivalence principle and the black hole information paradox. If black holes "evaporate" via Hawking radiation, then they cannot exist forever. So, from my external perspective, watching the person fall in, they slow down, freeze, and redshift to "nothing," but never cross the event horizon. Does the equivalence principle say my perspective is valid? If it does, is it possible that that person really never crossed the event horizon? The...
In this video I can see a person walking around lines of curvature on a sphere with an arrow strapped to his waist. His task is to keep the arrow pointed in the same direction How does he do this ? Does he use a reference point like the stars? (that only move very slowly) If that is how he keeps the arrow pointing in the same direction, is that equivalent to saying that he orients the arrow wrt the 3d space that the sphere is embedded in? So ,although one refers to intrinsic curvature...
ASSUMPTIONS 1. Two identical clocks A and B in the same inertial frame are stationary relative to each other a fixed distance L apart. Time passes at the same rate for both. 2. Both clocks are able to send/receive light signals and to write/read the send/receive times into signals. 3. The speed of light is anisotropic. METHOD 1. At time t[A1] and time t[B1], clock A sends a light signal to clock B. The clock B time is unknown to A. 2. Clock B receives the signal from A at time t[B2] and...

Similar threads

Back
Top