Noncommutative cosmological model in the presence of a phantom fluid
G. Oliveira-Neto, A. R. Vaz

TL;DR
This paper explores noncommutative modifications to classical cosmological models with phantom fluids, demonstrating how noncommutativity can account for the universe's accelerated expansion and estimating the time to a big rip.
Contribution
It introduces a noncommutative framework in cosmology with phantom fluids and analyzes its effects on universe evolution, including acceleration and future singularities.
Findings
Noncommutativity parameter $oldsymbol{\gamma}$ influences cosmic acceleration.
Models predict the universe's time to reach a big rip.
Estimated $oldsymbol{\gamma}$ value consistent with current universe conditions.
Abstract
We study noncommutative classical Friedmann-Robertson-Walker cosmological models. The constant curvature of the spatial sections can be positive (), negative () or zero (). The matter is represented by a perfect fluid with negative pressure, phantom fluid, which satisfies the equation of state , with , where is the pressure and is the energy density. We use Schutz's formalism in order to write the perfect fluid Hamiltonian. The noncommutativity is introduced by nontrivial Poisson brackets between few variables of the models. In order to recover a description in terms of commutative variables, we introduce variables transformations that depend on a noncommutative parameter (). The main motivation for the introduction of the noncommutativity is trying to explain the present accelerated expansion of the universe. We obtain…
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Taxonomy
TopicsNoncommutative and Quantum Gravity Theories · Cosmology and Gravitation Theories · Black Holes and Theoretical Physics
