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Cosmological Study of Autonomous Dynamical Systems in Modified Tele-Parallel Gravity

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arxiv 1805.00332 v1 pith:C32KZLFA submitted 2018-04-25 gr-qc

classification gr-qc
keywords dominatedgravitydynamicalfixedautonomoussitterstablesystems
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abstract

Cosmological approaches of autonomous dynamical system in the framework of $f(T)$ gravity are investigated in this paper. Our methods applied to flat Friedmann-Robertson-Walker equations in $f(T)$ gravity, consist to extract dynamical systems whose time-dependence is contained in a single parameter $m$ depending on the Hubble rate of Universe and its second derivative. In our attempt to investigate the autonomous aspect of the dynamical systems reconstructed in both vacuum and non-vacuum $f(T)$ gravities, two values of the parameter $m$ have been considered for our present analysis. In the so-called quasi-de Sitter inflationary era ($m\simeq0$), the corresponding autonomous dynamical systems provide stable de Sitter attractors and unstable de Sitter fixed points. Especially in the vacuum $f(T)$ gravity, the approximate form of the $f(T)$ gravity near the stable and the unstable de Sitter fixed points has been performed. The matter dominated era case $(m=-\frac{9}{2})$ leads to unstable fixed points confirming matter dominated era or not, and stable attractor fixed point describing dark energy dominated era. Another subtlety around the stable fixed point obtained at matter dominated case in the non-vacuum $f(T)$ gravity is when the dark energy dominated era is reached, at the same time, the radiation perfect fluid dominated succumbs.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 13 citations worldwide. Full citation record

  1. An Interplay Between Fractional Calculus and Holographic Dark Energy

    gr-qc 2026-06 unverdicted novelty 5.0 of 10

    Introduces Fractional Holographic Dark Energy (FHDE) via fractionally corrected entropy from a modified Wheeler-DeWitt equation and studies its late-time cosmology, field reconstructions, and extensions to modified gr...

  2. Autonomous Dynamical System of Einstein-Gauss-Bonnet Cosmologies

    gr-qc 2019-08 conditional novelty 4.0 of 10

    A phase space analysis of Einstein-Gauss-Bonnet cosmology finds a stable equilibrium and a heteroclinic orbit, but the equilibrium requires the Gauss-Bonnet coupling to vanish and the orbit violates the Friedmann constraint.

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