Kruskal Coordinates and Mass of Schwarzschild Black Holes
Abhas Mitra (BARC, Theory)

TL;DR
This paper argues that Schwarzschild black holes with finite mass cannot be described within the event horizon using Kruskal coordinates, implying that such black holes must have zero mass and challenging traditional notions of black hole structure.
Contribution
It demonstrates that Kruskal coordinates lead to a zero metric at the horizon unless the black hole mass is zero, suggesting black holes are essentially massless and questioning their internal structure.
Findings
Kruskal coordinates imply zero mass for Schwarzschild black holes.
Black hole interior may not exist beneath the event horizon.
Finite mass black holes may be eternally collapsing objects with high red-shifts.
Abstract
Schwarzschild coordinates (r,t) fail to describe the region within the event horizon (EH), (r <= 2 M), of a Black Hole (BH) because the metric coefficients exhibit singularity at r=2 M, and the radial geodesic of a particle appears to be null (ds^2 =0) when actually it must be timelike (ds^2 >0), if, indeed, r_g =2 M >0. Thus, both the exterior and the interior regions of BHs are described by singularity free Kruskal-Szekeres coordinates. However, we show that, in this case too, ds^2= 0 for r=2M. And this result can be physically reconciled only if the EH coincides with the central singularity or if the mass of Schwarzschild black holes M= 0. This conclusion agrees with the result of our following paper (astro-ph/9904163) which points out that the Oppenheimer-Snyder paper showing formation of a BH, too, corresponds to a BH of mass M=0. It means that Schwarzschild singularity and the…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Cosmology and Gravitation Theories · Astrophysical Phenomena and Observations
