Photon passing through a black hole?

In summary, a black hole may have a radially symmetric E-field due to accumulated charge and virtual particles can escape the event horizon. However, real photons cannot escape and objects approaching the horizon appear to "freeze in". Furthermore, the electric field of a charged black hole looks like it is centered on the black hole rather than the charge itself, except in a small boundary layer. Spinning black holes have a ring singularity that allows objects to fall through the middle of the ring.
  • #1
Graviman
19
0
This is something that has bothered me for a while, so i thought to share it with other relativity enthusiasts.

A black hole may accumulate charge, which along with the rest of the matter will work its way to the centre of the black hole. This means that the blach hole will be surrounded by a radially symetrical E-field. Since all EM fields may be seen as a wave traveling out, even if they are effectively 0 Hz, then this means that an EM wave is leaving from the centre of a black hole. Does this mean that a photon can leave from the very centre of the black hole, as long as it is only traveling radially? The charge being form invariant means that to get this to work you could alternately pour in +ve then -ve charges, to make a detectable RF frequency emission.

Put another way if a photon is aimed at the exact centre of a black hole, so that it's velocity always remains a radial vector, does the photon pass straight through?

Mart
 
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  • #3
"... along with the rest of the matter will work its way to the centre of the black hole..."

I don't know a lot abuut BHs, but my understanding was such that all information about anythnig falling into a black hole is permanently erased from the universe. Thus, no "matter at the centre", no "charge at the centre", etc. thus your premises are in error.

But I can't claim authority on the subject.
 
  • #4
DaveC426913 said:
I don't know a lot abuut BHs, but my understanding was such that all information about anythnig falling into a black hole is permanently erased from the universe. Thus, no "matter at the centre", no "charge at the centre", etc. thus your premises are in error.

But I can't claim authority on the subject.
If white holes existed then that wouldn't permanently erase infromation form it.
http://en.wikipedia.org/wiki/White_hole
 
  • #5
DaveC426913 said:
"... along with the rest of the matter will work its way to the centre of the black hole..."

I don't know a lot abuut BHs, but my understanding was such that all information about anythnig falling into a black hole is permanently erased from the universe. Thus, no "matter at the centre", no "charge at the centre", etc. thus your premises are in error.

But I can't claim authority on the subject.

There IS such a thing as a charged black hole. Don't ask me how the electric field is supposed to come out of the black hole. Classically I suppose its because the electric field is massless, so the field lines can "escape" the hole. But that doesn't hold up on the Quantum level.

-Dan
 
  • #6
topsquark said:
There IS such a thing as a charged black hole. Don't ask me how the electric field is supposed to come out of the black hole. Classically I suppose its because the electric field is massless, so the field lines can "escape" the hole. But that doesn't hold up on the Quantum level.

-Dan

One way of looking at it is that the virtual particles are not bound by the speed of light limitation. However, they don't cary any actual information.

See for instance

black holes:
http://math.ucr.edu/home/baez/physics/Relativity/BlackHoles/black_gravity.html

Nevertheless, the question in this form is still worth asking, because black holes can have static electric fields, and we know that these may be described in terms of virtual photons. So how do the virtual photons get out of the event horizon? Well, for one thing, they can come from the charged matter prior to collapse, just like classical effects. In addition, however, virtual particles aren't confined to the interiors of light cones: they can go faster than light! Consequently the event horizon, which is really just a surface that moves at the speed of light, presents no barrier.

I couldn't use these virtual photons after falling into the hole to communicate with you outside the hole; nor could I escape from the hole by somehow turning myself into virtual partices. The reason is that virtual particles don't carry any information outside the light cone. See the physics FAQ on virtual particles for details.

virtual particles:
http://math.ucr.edu/home/baez/physics/Quantum/virtual_particles.html

Real photons cannot escape a black hole, however. Any electromagnetic waves generated by accelerating particles inside the event horizon would be pulled into the singularity, they would not escape the event horizon.

The above is not intended to address the question of what happens when the black hole evaporates, that's a more complex problem.
 
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  • #7
For an external observer, objects never really look like they fall into (Schwarzschild) black holes. Instead, they "freeze in" as they approach the horizon. So a realistic "charged black holes" might look like Schwarzschild with a bunch of charges just above the horizon.

So what does the electric field of this kind of system look like? Think of just one charge right outside the horizon. You'd think that the field would look as though it were offset from the center of the black hole, but it actually isn't. Except in a very small "boundary layer" over the horizon, the electric field looks like it is radially centered on the (uncharged) black hole rather than the charge! The horizon acts like an electrical conductor.
 
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  • #8
Graviman said:
Put another way if a photon is aimed at the exact centre of a black hole, so that it's velocity always remains a radial vector, does the photon pass straight through?
Spinning black holes have a ring singularity, not a point singularity, and if you fall inwards off the equatorial plane (defined by the spin in the black hole) you'll be able to fall through the middle of the ring, which leads to another region of space-time.
 
  • #9
AlphaNumeric said:
Spinning black holes have a ring singularity, not a point singularity, and if you fall inwards off the equatorial plane (defined by the spin in the black hole) you'll be able to fall through the middle of the ring, which leads to another region of space-time.

Some caution is advisable here. The interior structure of rotating black holes is still being debated, though the consesus in the literature as far as I have been able to determine is that the classical Kerr version of the ring singularity is not stable.

See for instance:

http://arxiv.org/abs/gr-qc/9902008

We study the gravitational collapse of a self-gravitating charged scalar-field. Starting with a regular spacetime, we follow the evolution through the formation of an apparent horizon, a Cauchy horizon and a final central singularity. We find a null, weak, mass-inflation singularity along the Cauchy horizon, which is a precursor of a strong, spacelike singularity along the $r=0$ hypersurface. The inner black hole region is bounded (in the future) by singularities. This resembles the classical inner structure of a Schwarzschild black hole and it is remarkably different from the inner structure of a charged static Reissner-Nordstr\"om or a stationary rotating Kerr black holes.

The motivation for studying charged collapse is explained further within this paper:

However, spherical collapse is not generic. We expect some angular momentum and this
might change this picture drastically. The inner structure of a stationary rotating, Kerr,
black hole contains a strong inner timelike singularity, which is separated from external
observes by both an apparent horizon and a Cauchy horizon (CH). A free-falling test particle
cannot reach this singularity. Instead it will cross a second Cauchy horizon and emerge form
a white hole into another asymptotically flat region. A remarkably similar structure exists
in a charged Reissner-Nordstr¨om black hole (see Fig. 1) . We do not expect to find charged
collapse in nature. However, this similarity motivates us to study spherically symmetric
charged gravitational collapse as a simple toy model for a realistic generic rotating collapse
(which is at best axisymmetric).
Does the inner structure of a Reissner-Nordstr¨om black hole describe the generic outcome?

...

The resulting infinite energy leads to a curvature singularity. Matzner et. al [7] have shown
that the CH is indeed unstable to linear perturbations. This indicates that the CH might be
singular - “Stargate” might be closed.
A detailed modeling of this phenomena suggests that
the CH inside charged or spinning black-holes is transformed into a null, weak singularity
[8–10]. The CH singularity is weak in the sense that an infalling observer which hits this null
singularity experiences only a finite tidal deformation [10]. Nevertheless, curvature scalars
(namely, the Newman-Penrose Weyl scalar 2) diverge along the CH, a phenomena known
as mass-inflation [9].


also

http://arxiv.org/abs/gr-qc/0103012

which makes similar arguments.

The remark that the ring singularity leads to another region of space-time is correct for the classical Kerr geometry, but the actual geometry in the interior of a black hole is probably not given by the Kerr geometry.

If I'm interpreting the remarks in the first paper correctly, it is currently felt that "the stargate is closed".
 
  • #10
Hmmm, some good answers. To keep the problem simple i am only considering a static black hole here. Spinning black holes introduce all sorts of interesting possibilities, but also make my original question more complicated than i had intended.

Perhaps throwing charges in was a bad anaolgy, since they will never actually get to the singilarity. Interesting about the charge ending up evenly distributed around the event horizon, Stingray. Yes this does make sense of why the black hole would "appear" to have a charged singularity. I'd like to understand more about how the event horizon acts as a conductor though.

What i was really driving at is that a beam of light is always seen to travel at C by all observers. It may become masively red or blue shifted, but always travels at C. The photon sphere [corrected from "event horizon"] is where a beam of light aimed at missing the black hole gets caught in orbit. What happens if you don't intend to miss the black hole. Instead you aim the beam at its very centre, so that there is never an orbit component to the velocity. Does an outside obsever find that this beam always travels at the speed of light? The beam would become extreme blue shifted, but does it survive then undergo red shifting on its way back out?

My question is aimed more at plugging gaps in my own knowledge than finding any flaws...

Mart
 
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  • #11
Graviman said:
What i was really driving at is that a beam of light is always seen to travel at C by all observers.

This is true locally, i.e., if light goes whizzing by any observer, then the observer will measure (with respect to his local orthonormal frame) its speed to be [itex]c[/itex].

The event horizon is where a beam of light aimed at missing the black hole gets caught in orbit.

Light doesn't go into orbit at the event horizon. For a mass [itex]M[/itex] (uncharged) black hole, the (Schwarzscild) coordinate of the event horizon is [itex]r = 2M[/itex] ([itex]G = c = 1[/itex]), while light orbits happen at [itex]r = 3M[/itex], which is called the photon sphere.

What happens if you don't intend to miss the black hole. Instead you aim the beam at its very centre, so that there is never an orbit component to the velocity. Does an outside obsever find that this beam always travels at the speed of light?

The coordinate speed of the light is

[tex]v = 1 - \frac{2M}{r},[/tex]

so, at the event horizon, the coordinate speed of the light is zero.

Just as for material objects, for a distant observer, the light takes an infinite amount of time to cross the event horizon.

However, things are different for other observers that the light passes on the way.

Consider a series observers, each using rockets to hover at a constant [itex]r[/itex] above the event horizon. A hovering observer is possible, in principle, at any [itex]r[/itex] larger than [itex]2M[/itex]. As the light passes, each of these observers measures the light's speed. Each result is [itex]c[/itex], even when the observer is hovering infinitesimally close to the event horizon.

Conisder another series of observers, each of whom falls freely along the same radial path taken by the light. Each observer stars falling before the light starts - just how much before depends on the observer. As the light proceeds, it will pass each observer in succession. Again, each observer measures the speed of the light, and, again, each result is [itex]c[/itex]. This is true for observers outside, at, and inside the event horizon.

Note that in this scenerio, if the observer starts out early enough, the light will pass the observer after both have crossed the event horizon. This, in spite of the fact that a distant observer "sees" neither the light, nor any of the freely falling observers, cross the event hroizon.

Regards,
George
 
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  • #12
Thanks George, i suspected it was an error in my understanding. Event horizon has been corrected to photon sphere, my memory is acting up again.

So an observer trying to see if the light came out would have an infinately long wait...

Mart
 
  • #13
One way of understanding what happens inside a Schwarzschild black hole is this:

The Schwarzschild 'r' coordinate, inside the event horizon changes its sign in the metric.

This means that the 'r' coordinate essentially becomes a time coordinate inside the event horizon. So for a particle inside the event horizon, the "future" of the particle always points towards the central singularity.

Imagine 4 one-way streets, all meeting together at a point, with the direction of traffic being towards that point. This is the situation particles face inside a black hole. In the analogy above, the cars cannot stop moving down the street, because the street represents the flow of time, and all the particles must go from their past into their future.

What happens when the particles reach the singularity? Where do they go? Classical GR does not have a definte answer to this question, especially in the case of realistic physical collapse. (The pure mathematical solution can be "extended" to allow the particles to enter another universe at the singularity, but this mathematical solution is not felt to be particularly likely solution for a realistic physical collapse.) The safest answer is to say that the theory itself breaks down at the singularity, that the infinites in the theory are a sign that a better theory like quantum gravity is needed to answer the question.

As far as the observable universe, goes, it does not particularly matter what happens "afterwards", because it will not affect the observable universe, i.e. what we can see outside the black hole.

Note that the analogy above describes the interior geometry of a static Schwarzschild black hole. There is still considerable debate as to what the geometry of a 'real' imploding black hole will be, especially if it has non-zero angular momentum, as per the previous comments.
 
  • #14
Good answer Pervect.

In order for my simple mind to comprehend what is happening, i have always visualised gen rel as a theory describing the rate of travel through cT of a point in space against a reference far from any matter. Time dilated near an object means it's rate goes up. The spatial contraction being just a natural side effect of time slowing down in a region.

From what has been said in this thread, perhaps this is a bad analogy inside a black hole itself since time has already stopped at the horizon (or rate of flow of time is infinite compared to far away reference). This probably is the source of my confusion about what happens inside the event horizon. From what i now understand most matter ends up at the event horizon for the duration of our universe. The singularity is more of a mathematical concept.

What maths would you recommend i study to gain a fuller understanding? Tensors clearly, but anything else? I would not describe myself as a natural mathematician, although engineering mathematics was easy since i could visualise what was happening. Is there any way i will ever be able to just "see" what is happening?

Mart
 
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  • #15
Graviman said:
Good answer Pervect. In order for my simple mind to comprehend what is happening, i have always visualised gen rel as a theory describing the rate of flow of time at a point in space against a reference far from any matter. The spatial contraction being just a natural side effect of time slowing down in a region, since an object traveling through this region would slow down from the perspective of an observer far away (without realising itself) - ie take longer to traverse the distance.

Actually, this is incorrect.

A time-dilated frame S' will measure a shorter time to traverse the same distance as viewed by another inertial frame S. In S, it will take a time T to move through a distance L, whereas according to S, S' will only take T'<T to move the same distance.

On the other hand, according to S', the length L is actually L' in this frame, a contracted length (remember, L was measured in S). So while S' it sees its time as the proper time in S' frame, it only sees a shorter distance to move, i.e. L'. Again, this means that it takes less time to move that "distance".

One needs to make sure one understands the basics of SR before jumping into GR.

Zz.
 
  • #16
Graviman said:
From what i now understand most matter ends up at the event horizon for the duration of our universe.

This is true from the perspective of a distant observer, but it is not true from the perspect of somebody/something that falls into the black hole!

Very counterintuitive from an everyday perspective!

What maths would you recommend i study to gain a fuller understanding? Tensors clearly, but anything else? I would not describe myself as a natural mathematician, although engineering mathematics was easy since i could visualise what was happening. Is there any way i will ever be able to just "see" what is happening?

I recommend putting off the study of tensors for quite some time. Much about black holes can be studied and calculated using nothing more than first-year calculus.

"Relativistic" intuition is needed to "see" what is happening, and intuition is based on experience. As ZapperZ has said, developing this intuition requires getting a good grounding in special relativity. I think a good way to get this grounding is by working your way through https://www.amazon.com/gp/product/0070430276/?tag=pfamazon01-20 by Thomas Moore. This book is a short, readable, interesting, and pedagically sound introduction to special relativity.

After Moore, I recommend studying https://www.amazon.com/gp/product/020138423X/?tag=pfamazon01-20 by James Hartle.

The book by Taylor and Wheeler requires only first-year calculus, and, as indicated by the title, is largely restricted to black holes. Many interesting calculations and examples are provided, and the exercises are useful and doable. In a forthcoming post in this thread, I hope to give an example of what can be achieved form an understanding of the material in Taylor and Wheeler.

Hartle's book is pitched at a slightly higher level, is more general, and requires slightly more mathematics. Late in the day, Hartle introduces tensors. Before doing this, Hartle concentrates on deveoping a feel for relativistic geometry, and on physical applications of relativity, including black holes.

I would say that:

Moore is at the level of first-year/second year students;

Taylor and Wheeler is at the level of second-year/third year students;

Hartle is at the level of third-year/fourth-year students.

Each of these books is a pedagogical masterpiece, and none of them have mathematical prerequisites beyond the second-year level.

Finally, http://www.arxiv.org/PS_cache/gr-qc/pdf/0506/0506075.pdf" each have articles available on-line expressing their views about the teaching of relativity.

There are many knowledgeable people who participate in this forum, and who would be glad to help you with your self-study.

Regards,
George
 
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  • #17
ZapperZ said:
Actually, this is incorrect...

I could have been clearer in what i meant here - see corrections. Please let me know if this is still wrong!

George Jones said:
I recommend putting off the study of tensors for quite some time. Much about black holes can be studied and calculated using nothing more than first-year calculus.

I'll have a look at the books you recommend. It's been a while since i studied SR, as my daft mistakes show. I'd like to eventually gain a good understanding, but only really wish to study the maths required without drowning the original intention...

Mart
 
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  • #18
My experience is that relying on time dilation and Lorentz contraction too early to solve problems is unsound pedagogically and easily leads to misconceptions This is precisely what Moore does not do. Much better to use invariance of the interval, as this leads to better intuition that more easily transfers to general relativity.

For more on my views on this matter, see my post in https://www.physicsforums.com/showthread.php?t=106450&highlight=contraction".

Regards,
George
 
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  • #19
Consider an observer that hovers at coodinate [itex]r=R[/itex] from a black hole, and a series of mirrors that hover between the observer and the black hole. The observer sends light towards the black hole, the light is reflected by one of the mirrors, and the light returns to sender. The amount of time taken, as recorded by the observer's wristwatch, for this roundtrip depends on the location of the mirror off which the light reflected.

The geometry of spacetime is given by the metric, and, in spherical coodinates, the metric for a spherically symmetric black hole is given by

[tex]
ds^{2}=\left( 1-\frac{2M}{r}\right) dt^{2}-\left[ \left( 1-\frac{2M}
{r}\right) ^{-1}dr^{2}+r^{2}\left( d\theta^{2}+\sin^{2}\theta d\phi
^{2}\right) \right] .
[/tex]

Compare the stuff in the square brackets with the metric (in spherical coordinates)

[tex]
ds^{2}=dr^{2}+r^{2}\left( d\theta^{2}+\sin^{2}\theta d\phi^{2}\right)
[/tex]

for Euclidean 3-dimensional space. The notation [itex]dr^{2}[/itex], e.g., is short form for [itex]\left( dr\right) ^{2}[/itex], the square of a(n infinitesimally) small change in the [itex]r[/itex] coordinate.

The [itex]\left(t,r\right)[/itex] coordinate labels of the key events are: [itex]\left( 0,R\right)[/itex] for emission by the observer; [itex]\left( t_{m},r_{m}\right)[/itex] for reflection by the mirror; and [itex]\left( t_{r},R\right)[/itex] for reception by the observer. Since all motion is radial, [itex]d\theta=d\phi=0[/itex], and the Schwarzschild metric is

[tex]
ds^{2}=\left( 1-\frac{2M}{r}\right) dt^{2}-\left( 1-\frac{2M}{r}\right)
^{-1}dr^{2}.
[/tex]

For a lightlike worldline, $ds=0$, which, when used in the metric, gives

[tex]
\frac{dr}{dt}=\pm\left( 1-\frac{2M}{r}\right) .
[/tex]

The [itex]-[/itex] sign gives radially inward travel, and the [itex]+[/itex] sign gives radially outward travel. So, during the inward trip by the light,

[tex]
\begin{align*}
dt & =-\frac{dr}{1-\frac{2M}{r}}\\
\int_{0}^{t_{m}}dt & =-\int_{R}^{r_{m}}\frac{dr}{1-\frac{2M}{r}}\\
t_{m} & =2M\ln\left( \frac{R-2M}{r_{m}-2M}\right) +R-r_{m}
\end{align*}
[/tex]

During the outward trip by the light,

[tex]
\begin{align*}
dt & =\frac{dr}{1-\frac{2M}{r}}\\
\int_{t_{m}}^{t_{r}}dt & =\int_{r_{m}}^{R}\frac{dr}{1-\frac{2M}{r}}\\
t_{r}-t_{m} & =2M\ln\left( \frac{R-2M}{r_{m}-2M}\right) +R-r_{m}
\end{align*}
[/tex]

Combining these results gives

[tex]
t_{r}=4M\ln\left( \frac{R-2M}{r_{m}-2M}\right) +2\left( R-r_{m}\right)
[/tex]

Now, [itex]t_{r}[/itex] is a coordinate, which is just a label, and which is not the time measured by the observer's wristwatch. All events on the observer's worldline occur at [itex]r=R[/itex], so for the observer, [itex]dr=d\theta=d\phi=0[/itex], and the metric becomes

[tex]
d\tau=\sqrt{1-\frac{2M}{R}}dt,
[/tex]

where [itex]s=\tau[/itex] is wristwatch time and [itex]\sqrt{1-2M/R}.[/itex] Hence, the time measured by the observer's wristwatch is

[tex]
\tau=\sqrt{1-\frac{2M}{R}}t_{r}.
[/tex]

This gives radar coordinates for the the reflection events.

Clearly, [itex]\tau\rightarrow\infty[/itex] as [itex]r_{m}\rightarrow2M[/itex], i.e., the time elapsed on the observer's wristwatch between emission and reception of the light goes to infinity as the reflection event approaches the event horizon.

Regards,
George
 
  • #20
Graviman said:
Good answer Pervect.

In order for my simple mind to comprehend what is happening, i have always visualised gen rel as a theory describing the rate of travel through cT of a point in space against a reference far from any matter. Time dilated near an object means it's rate goes up. The spatial contraction being just a natural side effect of time slowing down in a region.

From what has been said in this thread, perhaps this is a bad analogy inside a black hole itself since time has already stopped at the horizon (or rate of flow of time is infinite compared to far away reference). This probably is the source of my confusion about what happens inside the event horizon. From what i now understand most matter ends up at the event horizon for the duration of our universe. The singularity is more of a mathematical concept.

What maths would you recommend i study to gain a fuller understanding? Tensors clearly, but anything else? I would not describe myself as a natural mathematician, although engineering mathematics was easy since i could visualise what was happening. Is there any way i will ever be able to just "see" what is happening?

Mart

While it won't answer your questions about what happens inside a black hole, there is a good website that talks about how to compute orbits around black holes.

http://www.fourmilab.ch/gravitation/orbits/

Thorne's book "Black holes and time warps: Einstein's outrageous legacy" is an excellent popular book.

https://www.amazon.com/gp/product/0393312763/?tag=pfamazon01-20

I've heard good things about

"Exploring black holes"
https://www.amazon.com/gp/product/020138423X/?tag=pfamazon01-20

and

"General relativity from A to B"
https://www.amazon.com/gp/product/0226288641/?tag=pfamazon01-20

though I haven't read either of them myself.

Now for some comments:

What happens at the event horizon is different from what happens at the singularity itself.

As George mentioned earlier, time slows down for someone hovering outside the event horizon, and the rate of slow-down approaches infinity.
This is true from both perspectives - the hovering observer will see the universe age very quickly, and the outside observer will see the hovering observer age very slowly.

This is not, however, true for an obserer who falls into a black hole. The outide obsever will see much the same thing, but the experience of the falling observer will be quite different. He will not see the universe aging more quickly, and he will not notice anything in particular "odd" when he falls through the event horizon - with the exception of the tidal forces one usually expects from a massive body. For a small black hole these tidal forces may be a problem for anything other than a small proble, for a large black hole they will be small enough that a human being could sruvive them.

Most of the weirdess at the event horizon of the black hole is a so-called "coordinate singularity". This is an artifact of the Schwarzschild coordinate system, a lot like the fact that it's only possible to go south at the north pole using lattitude/longitude coordinates on the Earth's surface.

The same is not true of the inner singularity at the center of the black hole. This is a true singularity, not just a coordinate singularity. The observer cannot escape being destroyed by infinite tidal forces. It's a one-way trip.
 
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  • #21
George, thanks for taking the time to put up this derivation. The whole thing does make much more sense to me now, and i can see how a hovering particle experiences its proper time relative to a distant observer. A falling observer agreeing on proper time from point where it fell makes sense from SR of objects in orbit (total E = cp0 = constant). I am admitedly still confused about the r coordinated being replaced by the t coodinate, inside the event horizon, so that the particle always travels to it's future. I'll have to read some of your recommended books.

Pervect, I'm starting to understand your point about the coordinate singularity at the event horizon, and actual singularity at the centre. I can see why black holes are such a favourite topic of debate.


Do you feel that it is possible to gain an intuitive understanding of how general relativity applies to a given situation? As a design engineer i frequently find i can solve seemingly complicated problems just by intuitively seeing the solution. The maths (or computer sim) will just be to back up or refine the intuition. To me it just seems natural.

Mart
 
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  • #22
Graviman said:
I am admitedly still confused about the r coordinated being replaced by the t coodinate, inside the event horizon, so that the particle always travels to it's future.

Note that the coefficient of [itex]dt^2[/itex] is

[tex]\left( 1-\frac{2M}{r}\right),[/tex]

and that the coefficient of [itex]dr^2[/itex] is

[tex]-\left( 1-\frac{2M}{r}\right)^{-1}.[/tex]

Outside the event horizon, [itex]r > 2M[/itex], the coefficient of [itex]dt^2[/itex] is positive, and the coefficient of [itex]dr^2[/itex] is negative.

Inside the event horizon, [itex]r < 2M[/itex], the coefficient of [itex]dt^2[/itex] is negative, and the coefficient of [itex]dr^2[/itex] is positive.

This is reason that, inside the event horizon, [itex]t[/itex] is a space coordinate and [itex]r[/itex] is a time coordinate. Their names are very misleading, but the metric tells all. Since we must alway move forward in time, and [itex]r[/itex] labels time inside the horizon, hitting the [itex]r=0[/itex] singularity is inevitable.

Do you feel that it is possible to gain an intuitive understanding of how general relativity applies to a given situation?

Yes - by spending a lot of time working with relativity. Moore is a good start.

Regards,
George
 
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  • #23
George, thanks for your great wisdom and patience. It is starting to make sense to me now. I will check out amazon tonight.

Mart
 
  • #24
Sorry, the post I made last night was very rsuhed, as I had an appointment to keep. I have have edited the post and corrected some LateX and other mistakes.

Also, I meant to comment more on intuition.

Graviman said:
Do you feel that it is possible to gain an intuitive understanding of how general relativity applies to a given situation? As a design engineer i frequently find i can solve seemingly complicated problems just by intuitively seeing the solution. The maths (or computer sim) will just be to back up or refine the intuition. To me it just seems natural.

You probably built up this inuition over a long period of time starting when you were a kid, continuing through years of informal and formal education, and with everyday experience providing reinforcement as you went along.

Intuition is relativity is usually a little harder to come by, not because of any inate difficultty in the subject material, but because relativity is far removed from everyday life, and many people don't see much of it in their formal education. As such, relativity at first seems counterintuitive and somewhat abstract.

Intuition has to be cultivated, but, as John Wheeler (the guy who named black holes) says, this can be great fun.

After laying out some fundamentals and before the the exercises in the Taylor and Wheeler book Spacetime Physics:

Wheeler said:
Wheeler's First Moral Principle. Never make a caculation until you know the answer. Make an estimate before every calculation, try a simple physical argument (symmetry! invariance! conservation!) before every derivation, guess the answer to every puzzle. Courage: no one else needs to know what the guess is. Therefore, make it quickly, by instinct. A right guess reinforces this instinct. A wrong guess brings the refreshment of surprise. In either case life as a spacetime expert, however long, is more fun!

So, I encourage you to have some fun!

Regards,
George
 
  • #25
George Jones said:
Intuition is relativity is usually a little harder to come by, not because of any inate difficultty in the subject material, but because relativity is far removed from everyday life, and many people don't see much of it in their formal education. As such, relativity at first seems counterintuitive and somewhat abstract.

If there was an equivalent of a Minkowski ST diagram for GR i would find visualisation much easier. As an example for (non rotating) black holes use the radial symmetry, and draw a cT / r diagram.

George Jones said:
So, I encourage you to have some fun!

It is very encouraging that one of the sharpest minds also believes in an economy of solutions!

Mart
 
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FAQ: Photon passing through a black hole?

What happens to a photon when it passes through a black hole?

When a photon passes through a black hole, it will either be absorbed by the black hole or escape from it. The outcome depends on the photon's trajectory and the strength of the gravitational pull from the black hole.

Can a photon escape from a black hole?

Yes, a photon can escape from a black hole if it is traveling at a high enough speed and at the right angle to the black hole's event horizon. This is known as the photon sphere, where the gravitational pull from the black hole is balanced by the photon's momentum.

What is the event horizon of a black hole?

The event horizon is the point of no return for anything, including light, that enters a black hole. It is the boundary surrounding the black hole where the escape velocity exceeds the speed of light, making it impossible for anything to escape.

How does a black hole affect the path of a photon?

A black hole's strong gravitational pull can curve the path of a photon, causing it to follow a curved trajectory around the black hole. This is known as gravitational lensing and is a key tool in studying and detecting black holes.

Can a photon be created by a black hole?

Yes, photons can be created by black holes through a process called Hawking radiation. In this process, pairs of particles and antiparticles are created near the event horizon, with one particle falling into the black hole and the other escaping as a photon.

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