Surface Tension and Negative Pressure Interior of a Non-Singular `Black Hole'
Pawel O. Mazur, Emil Mottola

TL;DR
This paper proposes a non-singular black hole model called a gravitational condensate star, featuring surface tension and negative interior pressure, which avoids event horizons and aligns with classical and quantum principles.
Contribution
It introduces a classical, non-singular black hole model with negative pressure and surface tension, challenging traditional black hole concepts and suggesting observable differences.
Findings
Interior exhibits negative pressure for R=Rs
Surface tension is finite and related to surface gravity difference
Model predicts distinguishable gravitational wave signatures
Abstract
The constant density interior Schwarzschild solution for a static, spherically symmetric collapsed star has a divergent pressure when its radius . We show that this divergence is integrable, and induces a non-isotropic transverse stress with a finite redshifted surface tension on a spherical surface of radius . For the interior Schwarzschild solution exhibits negative pressure. When , the surface is localized at the Schwarzschild radius itself, , and the solution has constant negative pressure everywhere in the interior , thereby describing a gravitational condensate star, a fully collapsed non-singular state already inherent in and predicted by classical General Relativity. The redshifted surface tension of the condensate star surface is given by…
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