Classical and Quantum Gravity · 2014 · 81 citations · 33 references
In Lovelock theories, gravity can travel faster or slower than light. The causal structure is determined by the characteristic hypersurfaces. We generalise a recent result of Izumi to prove that any Killing horizon is a characteristic hypersurface for all gravitational degrees of freedom of a Lovelock theory. Hence gravitational signals cannot escape from the region inside such a horizon. We investigate the hyperbolicity of Lovelock theories by determining the characteristic hypersurfaces for various back-grounds. First we consider Ricci flat type N spacetimes. We show that characteristic hypersurfaces are generically all non-null and that Lovelock theories are hyperbolic in any such spacetime. Next we consider static, maximally symmetric black hole solutions of Lovelock theories. Again, characteristic surfaces are generically non-null. For some small black holes, hyperbolicity is violated near the horizon. This implies that the stability of such black holes is not a well-posed problem. 1
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String-Generated Gravity Models
David G. Boulware, S. Deser · Physical Review Letters · 1985 · 1.5K citations
Viscosity bound violation in higher derivative gravity
Mauro Brigante, Liu Hong, Robert C. Myers et al. · Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D, Particles, fields, gravitation, and cosmology · 2008 · 543 citations · Full text
Viscoplastic Fluid, Viscosity Bound Violation, Engineering +12
Viscosity Bound and Causality Violation
Mauro Brigante, Hong Liu, Robert C. Myers et al. · Physical Review Letters · 2008 · 488 citations · Full text
Rheological Constitutive Equation, Gauss-bonnet Gravity Dual, Viscoplastic Fluid +14