Download - Black Hole Astrophysics Chapters 7.5
Black Hole AstrophysicsChapters 7.5
All figures extracted from online sources of from the textbook.
Recap β the Schwarzschild metric(πSH
Sch )Ξ±Ξ²=(βπ2 (1β π π
π ) 0 0 0
01
(1βπ π
π )0 0
0 0 π2 00 0 0 π 2 sin2 π
)βSchβ means that this metric is describing a Schwarzschild Black Hole.
βSHβ means that we are in the Schwarzschild-Hilbert coordinate system.The Schwarzschild radius
Recap β coordinate systems used1. The moving body frame (MOV)
2. Fixed local Lorentz frame (FIX)
3. Schwarzschild-Hilbert frame (SH)
What is a Kerr Black Hole?Solution to the Einstein Equations for Rotating, Uncharged, axially-symmetric black hole in empty spacetime.
Brief Introduction:Like other stars, black holes can rotate. The difference here, is that black hole rotational speeds can be near the speed of light, causing still more changes in the metric and in the way matter moves near a black hole. Space itself around a black hole can rotate, and it is this rotation of space that, very possibly, is the ultimate cause for some of the powerful jets of matter that we see being ejected from quasars and other black hole systems.
The Kerr Metric(πBL
KER)Ξ±Ξ²=(β(1β 2 ππ ππ 2 ) π2 0 0 β
ΟΞ£2 sin2 ππ2
0π2
π₯0 0
0 0 π2 0
βΟΞ£2 sin2 π
π20 0
π΄ 2
π 2sin2 π
)The Gravitational radius
βBLβ means that we are in the Boyer-Lindquist coordinate system (generalization of Schwarzschild-Hilbert coordinate).
βKERβ means that this metric is describing a Kerr Black Hole.
Because the metric is sort of complicated, so the 3 functions are defined for clarity.
The Kerr Metric
is the radial distance like r, but constant are oblate;
π₯β‘π2β2 ππ π+ππ2 π2 ; lim
πβ0π₯=π2β2 ππ π
is the equatorial area and is the cylindrical distance from the rotation axis.
angular frequency of space at different points around the BH.
is the dimensionless angular momentum parameter () that measures how much angular momentum J the BH has relative to its maximum value.
(πBLKER)Ξ±Ξ²=(
β(1β 2 ππ ππ 2 ) π2 0 0 βΟΞ£2 sin2 π
π2
0π2
π₯0 0
0 0 π2 0
βΟΞ£2 sin2 π
π20 0
π΄ 2
π 2sin2 π
)The Gravitational radius
The Horizon and Ergosphere(πSH
Sch )Ξ±Ξ²=(βπ2 (1β π π
π ) 0 0 0
01
(1βπ π
π )0 0
0 0 π2 00 0 0 π 2 sin2 π
)Previously, with the Schwarzschild BH, both and at .
(πBLKER)Ξ±Ξ²=(
β(1β 2 ππ ππ 2 ) π2 0 0 βΟΞ£2 sin2 π
π2
0π2
π₯0 0
0 0 π2 0
βΟΞ£2 sin2 π
π20 0
π΄ 2
π 2sin2 π
)However, for the Kerr metric,
when gives We can see that this is larger than except at the poles
when gives which is, in fact, the horizon.
j=0 j=0.8 j=1
The Horizon and Ergosphere when gives
when gives which is, in fact, the horizon.
So, what happens within but outside ?From the metric,
Both and are positive! How will particles behave in this region?Since particles follow timelike geodesics, , this means that we must have the term to be positive. This forces to be non-zero!
i.e. In this region, called the βErgosphereβ, everything must rotate in the same direction (how to prove?) as the black hole!
(πBLKER)Ξ±Ξ²=(
β(1β 2 ππ ππ 2 ) π2 0 0 βΟΞ£2 sin2 π
π2
0π2
π₯0 0
0 0 π2 0
βΟΞ£2 sin2 π
π20 0
π΄ 2
π 2sin2 π
)
Coordinate systems for Kerr BH1. The moving body frame (MOV)
2. Fixed local Lorentz frame (FIX)
3. Boyer-Lindquist frame (BL)
4. Observer at Infinity/Synchronous frame (OIS)
The moving body frame (MOV)Similar to the Schwarzschild BH case, we can choose to move with the object of interest. Since spacetime is locally flat, we have a Minkowski metric in this case and by definition the 4-velocity
Fixed local Lorentz frame (FIX)Again, we consider some locally flat part of the Kerr spacetime to sit on and watch things fly past. Therefore the metric is still the Minkowski onebut now the 4-velocity of objects become
However, the Kerr spacetime itself is rotating, therefore being fixed in such a frame means that you are actually rotating with the black hole at rate .
Therefore this observer has no angular momentum with respect to the BH.
Boyer-Lindquist frame (BL)This is a global coordinate, just like the SH frame used for Schwarzschild BH. For this coordinate, the metric is the one we presented earlier
Observer at Infinity/Synchronous frame (OIS)This system rotates with the space around the black hole, is local to each radius r, and has a diagonal metric; but that metric is not an orthonormal Lorentz/ Minkowskian system . It relates to the BL coordinates simply by
π¬BLOIS=(
1 0 0 00 1 0 00 0 1 0
βπ 0 0 1)
(πOI SKER)Ξ±Ξ²=(
βπ2π₯π΄ 2 π2 0 0 0
0π2
π₯0 0
0 0 π 2 0
0 0 0π΄2
π 2sin2 π
)Following same procedure as last week (see p12 of last week)
(πOIS )πΌ=π¬FIXOIS (π FIX )πΌ=(
π΄Οc βπ₯
0 0 0
0βπ₯π
0 0
0 01π
0
0 0 0π
π΄ sinΞΈ
) ( Ξ³cΞ³V οΏ½ΜοΏ½
Ξ³V οΏ½ΜοΏ½
Ξ³V οΏ½ΜοΏ½)=(Ξ³Ξ£ /π βπ₯Ξ³V
πβπ₯/π
Ξ³V οΏ½ΜοΏ½/πΞ³V οΏ½ΜοΏ½ π /π΄ sinΞΈ
)
Which give the metric
Back to the Boyer-Lindquist frame
The OIS is not a good system in which to work. It is not global, so derivatives are valid only locally. And the ergosphere is hidden in this frame because Ο is gone from So we quickly leave the OIS system and transform the vectors and 1-forms back to the Kerr system to find
(π BL)πΌ=π¬OISBL (πOIS )πΌ=(
Ξ³Ξ£ /π βπ₯Ξ³V οΏ½ΜοΏ½ βπ₯/πΞ³V οΏ½ΜοΏ½/π
Ξ³V οΏ½ΜοΏ½ πΞ£sinΞΈ
+ Ξ³Ξ£Οπ βπ₯
)
3. Boyer-Lindquist frame (BL)4. Observer at Infinity/ Synchronous frame (OIS)
(π’BL )πΌ=(β[ Ξ³c2 π βπ₯π΄
+ Ξ³V οΏ½ΜοΏ½ Ξ£sinΞΈπ
π] , Ξ³ΟV π
βπ₯, Ξ³ΟV οΏ½ΜοΏ½ ,
Ξ³Ξ£sinΞΈπ
π οΏ½ΜοΏ½)Remember that are all evaluated in the FIX frame.
Conserved QuantitiesAs we have introduced last week, since the metric is independent of t and , Energy and angular momentum are conserved.
dpπdΟ
β‘dLdΟ
=0
πΏ=ππKπππ=Ξ³π0π
οΏ½ΜοΏ½ Ξ£sinΞΈπ
ππSchwarzschild=πΎ π0 π
οΏ½ΜοΏ½ π sinΞΈ
Comparing with the Schwarzschild case, itβs easy to see that is the cylindrical radius as we mentioned before.
The Angular momentum:
Conserved Quantitiesdpπ‘dΟ
β‘βdEdΟ
=0πΈKerr=β pπ‘=Ξ³π0 c
2 π βπ₯π΄
+Ξ³π0VοΏ½ΜοΏ½ Ξ£sinΞΈ
ππ
πΈSchwarzschild=βππ‘=πΎ π0 π2β1β π π
π
Energy:
Energy at infinity Is the new term in Kerr metric due to rotation of space.
If the particle is rotating in the same direction as the BH, and we see that it adds to the energy at infinity. If the particle rotates in the opposite direction as the BH, now, it subtracts from the energy at infinity!However, as long as the particle will always add mass to the BH.
Negative energyπΈKerr=β pπ‘=Ξ³π0 c
2 π βπ₯π΄
+Ξ³π0VοΏ½ΜοΏ½ Ξ£sinΞΈ
ππ
For a Kerr BH, there are two terms as we have discussed, therefore it is now possible to have negative energy!We find that to achieve this, the condition is Energy is now negative and this particle will actually decrease the BH mass as it falls in! This also means that in the process, it releases part of the BH mass as energy to the outside world!However, we find that since always, the only place where this condition can hold is within the ergosphere.This process of extracting rotational mass-energy from the BH is called the Penrose Process.
Reducible and irreducible massThe Gravitational radius If rotational energy were to be extracted from a spinning black hole, it not onlywould spin down, it also would lose the gravitational mass of that lost spin energy.When this process is complete, and the hole is left in a non-spinning state, the massremaining is its βirreducibleβ mass
Not done
Free fallThe free fall case is easy to compute, since it will have always.
πΏ=Ξ³π0ποΏ½ΜοΏ½ Ξ£sinΞΈ
π
This is in fact very interesting because is relative to the rotating space around the Kerr BH! So, the falling body actually picks up angular velocity that is exactly that of the rotating space! is the velocity measured by an
observer using the BL frame.
Free fallNow, letβs discuss the detailed velocity as a function of r as the particle falls from infinity.By setting the energy at infinity to the rest mass-energy as we did last week,
πΈ (π )=π0 (Ξ³c2 π βπ₯π΄
+ Ξ³V οΏ½ΜοΏ½ Ξ£sinΞΈπ
π)=πΈβ=π0 π2
We findπ ff , BL
π (π , π )=βπ β 2 πππ ( π βπ 2+ π2 ππ2
π΄ )π΄β‘β(π2+ π2 ππ
2 )2β π2 ππ2 π₯ sin2 π
π₯β‘π2β2 ππ π+ππ2 π2
For the Kerr case , even a simple free-fall becomes very interesting, it depends on not only the spin but also the angle of entry .Letβs plot some of these on the next page and see what happens.
π πff , Sπ» (π )=βc β 2 π π
π
Schwarzschild case:
πΈβ=π0 π2
πΈβ=2π0 π2
πΈβ=5π0 π2πΈβ=10π0 π
2πΈβ=100π0 π
2
Free fallMathematica file
Orbits in the equatorial planeFollowing a similar procedure as the Schwarzschild case, but much more complicated (I donβt know exactly how complicated it is because I didnβt do itβ¦), we get
π orb, BLοΏ½ΜοΏ½
π= π΄2
βπ₯ (π3β π2 π π3 )(Β±β πππ β π
ππ2
π 2 )β 2 π ππ2π βπ₯π orb, SH
οΏ½ΜοΏ½
π=β ππ
π β2 ππ
Schwarzschild case:
Keplerian rotation in the rotating space of the BH. is prograde (in the global coordinate) is retrograde (in the global coordinate)Β±β π π
π
Comes from the outward contrifugal effect due to rotation of space.β π π π
2
π 2
β2 π π π
2
π βπ₯Because we measure in the rotating frame, so the velocity of the metric must be subtracted off.
A note on prograde and retrograde is the dimensionless angular momentum parameter () that measures how much angular momentum J the BH has relative to its maximum value.
Keplerian rotation in the rotating space of the BH. is prograde (in the global coordinate) is retrograde (in the global coordinate)Β±β π π
π
prograderetrograde
The photon orbitπ ph , BL=2 ππ (1+cos ( 23 cosβ 1 (β π )))
Schwarzschild case
Prograde orbit in j=1 BH gets close to the BH (1 ) because it is going in the same direction as the BH.Retrograde orbit in j=-1 BH gets close to the BH (1 ) because it is also going in the same direction as the BH.
Retrograde orbit in j=1 BH is further from the BH (4 ) because it is going against the BH.
Prograde orbit in j=-1 BH is further from the BH (4 ) because it is going against the BH.
Orbiting in same direction as BH spin.
Orbiting counter to BH spin.Using as last week,
prograderetrograde
The ISCOFollowing similar but more complicated derivation as last week (again, I was lazy),
h=3+β3+ π2+(1β π2 )13 ( (3β π ) (1+ π )
13+ (3+ π ) (1β π )
13 )
π ISCO ,BL=hβ ββh3+9 h2β3 (6β π2) h+7 π2
hβ3
Schwarzschild case
Prograde orbit in j=1 BH gets close to the BH (1 ) because it is going in the same direction as the BH.
Retrograde orbit in j=1 BH is further from the BH (9 ) because it is going against the BH.
What happened here??
Prograde orbits
Horizon Penetrating Coordinates(πBL
KER)Ξ±Ξ²=(β(1β 2 ππ ππ 2 ) π2 0 0 β
ΟΞ£2 sin2 ππ2
0π2
π₯0 0
0 0 π2 0
βΟΞ£2 sin2 π
π20 0
π΄ 2
π 2sin2 π
)As can be seen from the BL coordinates, the singularity in comes with. To avoid this, we can again find a horizon penetrating coordinate similar to what we have done in the Schwarzschild BH case.
This is achieved by redefining both t and dt=dt β² β2 π π πcΞ
dr dΟ=dΟβ² βjrππ₯
dr
Then the new metric reads
(πHPKER)Ξ±Ξ²β‘(
β(1β 2 π π π
π2 ) π2 2 π π π
π2π 0 β
ΟΞ£2 sin2 ππ 2
2 ππ π
π2π 1+
2 π π π
π20 β jrπ sin
2 π (1+ 2 ππ ππ 2 )0 0 π 2 0
βΟΞ£
2sin
2π
π 2β jrπ sin
2 π (1+ 2 ππ ππ2 ) 0π΄2
π2sin2 π
)The coordinate change compresses time near the BH.