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Universe in a black hole in Einstein$-$Cartan gravity

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arxiv 1410.3881 v2 pith:ZOMQL4PS submitted 2014-10-14 gr-qc astro-ph.COhep-th

classification gr-qcastro-ph.COhep-th
keywords universematterblackbouncecartaneinsteinextremelyfinite
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

The conservation law for the angular momentum in curved spacetime, consistent with relativistic quantum mechanics, requires that the antisymmetric part of the affine connection (torsion tensor) is a variable in the principle of least action. The coupling between the spin of elementary particles and torsion in the Einstein$-$Cartan theory of gravity generates gravitational repulsion at extremely high densities in fermionic matter, approximated as a spin fluid, and thus avoids the formation of singularities in black holes. The collapsing matter in a black hole should therefore bounce at a finite density and then expand into a new region of space on the other side of the event horizon, which may be regarded as a nonsingular, closed universe. We show that quantum particle production caused by an extremely high curvature near a bounce can create enormous amounts of matter, produce entropy, and generate a finite period of exponential expansion (inflation) of this universe. This scenario can thus explain inflation without a scalar field and reheating. We show that, depending on the particle production rate, such a universe may undergo several nonsingular bounces until it has enough matter to reach a size at which the cosmological constant starts cosmic acceleration. The last bounce can be regarded as the big bang of this universe.

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  1. Torsional pseudo-inflation beyond Einstein-Cartan

    gr-qc 2026-08 conditional novelty 5.0 of 10

    Spin-fluid torsion cannot sustain inflation beyond about 0.46 e-folds, but a coupling-fed axial torsion condensate can hold an exact de Sitter background with an algebraic exit.

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