The discussion centers on the visualization of a Kerr black hole from a viewpoint above, specifically at coordinates r>0 and ϑ=0. Participants highlight the challenges in rendering accurate representations, noting that the black hole itself does not emit light, making visualizations reliant on surrounding matter such as accretion disks and jets. A raytracer was mentioned, which previously only implemented the Schwarzschild solution but is now being updated to include the Kerr solution, with discussions on how to effectively visualize the effects of angular momentum on the appearance of the black hole.
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Where to substitute?Dale said:What is the metric for a Kerr black hole and what do you get when you substitute 0 in?
Are you asking for a reasonably technically accurate illustration? That’s what I’m inferring from the word “visualization”.Creedence said:How does a Kerr black hole look like from above? Is it the same as a Schwarzschild one?
I could not find any convincing visualization for this question.
By above I mean from a point r>0 and ϑ=0.
You said ϑ=0, so substitute 0 into ϑ. It is your scenario, so I don’t know why you asked me that.Creedence said:Where to substitute?
This is relevant:Creedence said:Summary: How does it look like?
How does a Kerr black hole look like from above? Is it the same as a Schwarzschild one?
I could not find any convincing visualization for this question.
By above I mean from a point r>0 and ϑ=0.
Yes, this is what bugging me. I've created a simple raytracer some years ago and generated some videos, for example: .A.T. said:This is relevant:
https://iopscience.iop.org/article/10.1088/0264-9381/32/6/065001
But I don't know if they ever made any visualization looking perpendicular to the plane of rotation.
What differences did you expect from that view angle?Creedence said:The output totally looks like a nonspinning BH.
I rendered images of the BH using a square grid background. From that viewpoint the grid may get a vortex-like distortion in the case of a>0. Because of gtf ≠ 0.A.T. said:
What differences did you expect from that view angle?
Try a background that is not scrolling and has better contrast (black lines on white). And increase the spin rate and/or the resolution, in case the effect is still too weak to see.Creedence said:I rendered images of the BH using a square grid background.
@Creedence As Ibix suggests: Before rendering full size videos, one should do some quick tests, to find out what parameters would produce a visible effect. And to verify that the code actually produces that effect at all.Ibix said:One could easily cheat on the rendering in this case by only analysing a single radial line and noting the symmetry. Or maybe a couple of radial lines, to check the symmetry.
The effect is indeed really small, but I could catch it:Ibix said:I would think a better background would be the polar coordinate system I suggested above. I would expect that evenly spaced rings would not appear so, and radial lines would spiral somewhat. One could easily cheat on the rendering in this case by only analysing a single radial line and noting the symmetry. Or maybe a couple of radial lines, to check the symmetry.
I think it's anti-aliasing, but I'm not sure. I'll try the polar chart.A.T. said:Interesting. Is the perceived rotation in two opposite directions just a pattern aliasing effect? Maybe a polar coordinate chart as suggested by @Ibix would indeed be better.
You can see some opposite movement in the simulations by Double Negative:Creedence said:I think it's anti-aliasing, but I'm not sure. I'll try the polar chart.
Which video are you talking about?A.T. said:You can see some opposite movement in the simulations by Double Negative:
https://iopscience.iop.org/article/10.1088/0264-9381/32/6/065001/data
Rendered a video using a radial pattern in the background:A.T. said:Interesting. Is the perceived rotation in two opposite directions just a pattern aliasing effect? Maybe a polar coordinate chart as suggested by @Ibix would indeed be better.
You could check the paths taken by the rays that generate those non-black pixels in that ring, and the black pixels that separate it from the rest.Creedence said:It is "little" buggy (the ring inside should not be there I think),