Generalized nonconservative gravitational field equations from Herglotz action principle
arXiv:2108.02902 · doi:10.1103/PhysRevD.105.124023
Abstract
We present an alternative nonconservative gravitational theory based on the Herglotz variational principle in a fully covariant form. The present model may be seen as an improvement of the theory proposed in Ref. [Lazo et al, Phys. Rev. D 95, 101501 (2017)], whose resulting theory is meaningful just in particular coordinate systems. In the present work, we report a new theory that is free from such a restriction. It is also obtained using the Herglotz variational principle and by taking advantage of the restricted equivalence between Lagrangian functions in the scope of such action principle. The more restricted class of equivalent Lagrangian functions, in comparison with the Hamilton variational principle, is the key point to find a Lagrangian that furnishes a new alternative gravitational theory that is fully covariant. Once the equations that govern the dynamics of the gravitational field are obtained, a few simple cosmological models are investigated. It is found that the Herglotz gravitational field reduces to a single function that, under certain conditions, plays the role of the cosmological constant in general relativity, turning unnecessary the use of dark energy to explain the accelerated expansion of the universe. The linearized version of the theory is also investigated and it is verified that the theory shows a dissipative character in regard to gravitational waves. From observational data, in both scenarios, the Herglotz vector field is estimated.
References in corpus (7)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- To conserve, or not to conserve: A review of nonconservative theories of gravity
- From an Action Principle for Action-dependent Lagrangians toward non-conservative Gravity: accelerating Universe without dark energy
- Noether theorem for action-dependent Lagrangian functions: conservation laws for non-conservative systems
- The action principle for dissipative systems
- On the existence of static spherically-symmetric objects in action-dependent Lagrangian theories
- Wormhole geometries induced by action-dependent Lagrangian theories
Cited by in corpus (7)
- Multicontact formulation for non-conservative field theories
- Contact Lie systems
- The Herglotz variational principle for dissipative field theories
- Application of Herglotz's Variational Principle to Electromagnetic Systems with Dissipation
- A variational derivation of the field equations of an action-dependent Einstein-Hilbert Lagrangian
- Practical Introduction to Action-Dependent Field Theories
- When action is not least for systems with action-dependent Lagrangians