Properties of white dwarfs in Einstein- gravity
arXiv:1805.00333 · doi:10.1088/1475-7516/2019/02/040
Abstract
In this paper, we explore the properties of white dwarfs with the modified TOV equation in Einstein- gravity, the equilibrium configurations predict a maximum mass limit for white dwarfs same as the Chandrasekhar limit when we consider to be very small( m), by increasing , the maximum mass and radius of white dwarf are reduced. We study effects of the cosmological constant on the physical properties of white dwarf such as relation, relation, Schwarzschild radius, average density, compactness, gravitational redshift and dynamical stability. The gravitational redshift is a decreasing function of cosmological constant, because the gravitational redshift of white dwarf should be positive, we also find an upper limit for , namely, m. Our investigation of dynamical stability shown that the white dwarfs follow the dynamical stability in Einstein- gravity.
11 pages, 6 figures, 1 tables
References in corpus (14)
- Compact stars made of fermionic dark matter
- Anisotropic Compact Stars in Gravity
- Stellar equilibrium configurations of white dwarfs in the gravity
- Structure of neutron stars in R-squared gravity
- White Dwarf Critical Tests for Modified Gravity
- Magnetic Neutron Stars in f(R) gravity
- Gravitational effects of condensate dark matter on compact stellar objects
- Relativistic Stars in dRGT Massive Gravity
- Expansion of magnetic neutron stars in an energy (in)dependent spacetime
- Tolman-Oppenheimer-Volkoff equations in non-local gravity
- Modified Einstein's gravity as a possible missing link between sub- and super-Chandrasekhar type Ia supernovae
- One possible solution of peculiar type Ia supernovae explosions caused by a charged white dwarf
- Newtonian View of General Relativistic Stars
- Neutron Stars : A Comparative Study
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