CJames said:
Much of general relativity is expressed in terms of the r-coordinate, or the reduced circumference. That is, since space is warped, the actual radius will be different than the reduced circumference, which is found using C = 2 pi r. Does anybody know how to find the ratio between the reduced circumference and the actual radius?
George Jones has probably already answered the question but here's a few equations that you might find of interest-
In all cases a=J/mc and M=Gm/c
2 Horizon to crunch distance for an object falling radially from rest at infinity (rain frame) for a static black hole-
\tau_{rain}(2M \rightarrow 0)=\frac{4}{3}M
divide by c to get the horizon to crunch time for an object falling radially from rest at infinity.
Horizon to crunch distance for an object falling radially from rest at the event horizon (drip frame) for a static black hole-
\tau_{max}(2M \rightarrow 0)=\pi M
divide by c to get the horizon to crunch time for an object falling radially from rest at the event horizon. On a slightly different note, for an observer hovering at a small Schwarzschild distance \Delta r above the horizon of a black hole, the radial distance \Delta r' to the event horizon with respect to the observer's local coordinates would be-
\Delta r' =\frac{\Delta r}{\sqrt{1-\frac{2M}{2M+\Delta r}}}
This shows that coordinate-wise an observer could 'hover' within 100 mm of the event horizon of a 3.7e+6 sol static black hole but from the observers perspective, the distance would appear to be ~33 km to the EH.
While Dr’ doesn’t give you a specific radial distance from a static observer to the singularity, it does at least give the proper distance from a static observer to the EH. This distance is relative to the velocity of the approaching observer and will reduce exponentially(?) the more the observer picks up speed, eventually reducing to radial distance=coordinate distance (i.e. dr’=dr) when the speed of the infalling observer matches that of the rain frame. This of course changes once the event horizon has been crossed.As stated, the reduced circumference for a static black hole is r=C/2\pi. In the respect of a rotating black hole-
Coordinate radius at event horizon (r)-
r_+=M+\sqrt{M^2-a^2}
But the reduced circumference (R) at a specific coordinate radius (r) is-
R^2=\frac{\Sigma^2}{\rho^2}sin^2\theta
Where
<br />
\] <br />
\Sigma^2=(r^2+a^2)^2-a^2\Delta sin^2\theta\\ <br />
\\ <br />
\Delta= r^{2}+a^{2}-2Mr\\ <br />
\\ <br />
\rho^2=r^2+a^2 cos^2\theta\\ <br />
\[ <br />
Which is related to the frame-dragging effect (you can see the equation for the reduced circumference expressed clearly in some forms of Kerr metric). The reduced circumference (in the azimuth plane at least) at the event horizon of a rotating black hole (R_+) is equal to the event horizon radius for a static black hole (R_s) of the same mass which means the Schwarzschild radius is still related to the event horizon in a rotating black hole even though the EH appears to reduce coordinate wise (r_+). This applies every time regardless of mass and spin.
Incidentally, the same applies to the (inner) Cauchy horizon \left(r_-=M-\sqrt{M^2-a^2}\right)[/tex], regardless of how small the coordinate radius is (i.e. for a spin of a/M=0.1, the inner Cauchy horizon coordinate radius would be fairly insignificant compared to the outer event horizon) the reduced circumference of the Cauchy horizon (R_-) also equals the Schwarzschild radius (in the azimuth plane). This may be just a geometric curiosity.<br />
<br />
When a reduces to zero, the equation for R reduces to r=C/2\pi. <br />
<br />
It’s worth noting that the reduced circumference for a rotating black hole is not the proper distance from the observer to the singularity. In some hypotheses, mass inflation at the Cauchy horizon causes the curvature scalar to diverge at the IH so technically r=0 (in respect of proper distance) might be at the IH.<br />
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In respect of the azimuth plane only, the equation for R can be reduced to-<br />
<br />
R^2=r^2+a^2+\frac{2\ Ma^2}{r}
