Second-Order Gauge Invariant Cosmological Perturbation Theory --- Einstein Equations in Terms of Gauge Invariant Variables ---
Abstract
Following the general framework of the gauge invariant perturbation theory developed in the papers [K. Nakamura, Prog. Theor. Phys. 110 (2003), 723; ibid. 113 (2005), 481], we formulate second-order gauge invariant cosmological perturbation theory in a four-dimensional homogeneous isotropic universe. We consider perturbations both in the universe dominated by a single perfect fluid and in that dominated by a single scalar field. We derive all the components of the Einstein equations in the case that the first-order vector and tensor modes are negligible. All equations are derived in terms of gauge invariant variables without any gauge fixing. These equations imply that second-order vector and tensor modes may be generated due to the mode-mode coupling of the linear-order scalar perturbations. We also briefly discuss the main progress of this work through comparison with previous works.
- Publication:
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Progress of Theoretical Physics
- Pub Date:
- January 2007
- DOI:
- arXiv:
- arXiv:gr-qc/0605108
- Bibcode:
- 2007PThPh.117...17N
- Keywords:
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- General Relativity and Quantum Cosmology;
- Astrophysics;
- High Energy Physics - Phenomenology;
- High Energy Physics - Theory;
- Mathematical Physics
- E-Print:
- 58 pages, no figure. Complete version of gr-qc/0605107