Fluid nature constrains Horndeski gravity
arXiv:2209.02727 · doi:10.1007/s10714-023-03128-1
Abstract
The elusive physical nature of Horndeski gravity is elucidated in a new approach depicting this class of theories as a dissipative effective fluid. Requiring the constitutive equations of the latter to be those of a Newtonian fluid restricts the theory to only two disconnected subclasses of "viable" Horndeski gravity. Therefore, a stress-energy tensor of Horndeski effective fluid, linear in the first derivatives of the fluid's 4-velocity, is a sufficient condition for gravitational waves to propagate at light speed. All other Horndeski theories correspond to exotic non-Newtonian effective fluids.
28 pages, 2 tables. Matches published version in General Relativity and Gravitation
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Cited by in corpus (10)
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- Past-directed scalar field gradients and scalar-tensor thermodynamics
- First-order thermodynamics of Horndeski cosmology
- First-order thermodynamics of scalar-tensor gravity
- Alternative formulations of the thermodynamics of scalar-tensor theories
- Cuscuton Bounce Beyond the Linear Regime: Bispectrum and Strong Coupling Constraints
- General analysis of Noether symmetries in Horndeski gravity
- Eckart heat-flux applicability in theories and the existence of temperature gradients
- Thermal channels of scalar and tensor waves in Jordan-frame scalar--tensor gravity
- Covariant single-field formulation of effective cosmological bounces