The circular jump as a hydrodynamic white hole
arXiv:1203.6505
Abstract
Surface waves in classical fluids experience a rich array of black/white hole horizon effects. The dispersion relation depends on the characteristics of the fluid as well as on the fluid depth and the wavelength regime. We focus on the shallow-water regime, and discuss the experimental proof that the circular hydraulic jump marks the transition between a supercritical and a subcritical flow regime. This finally confirms a theoretical conjecture formulated by Lord Rayleigh nearly 100 years ago. It also confirms that the circular jump corresponds to the spontaneous formation of a hydrodynamic white hole, with interesting characteristics from the point of view of analogue gravity. We study the dispersive regime, mention some lessons about the trans-Planckian issue and describe possible directions for future work.
16 pages, 7 figures. To appear in: "Analogue Models of Gravity 30 Years Celebration" (Proceedings of the II Amazonian Symposium on Physics)
References in corpus (8)
- Measurement of stimulated Hawking emission in an analogue system
- Observation of negative-frequency waves in a water tank: A classical analogue to the Hawking effect?
- Fate of gravitational collapse in semiclassical gravity
- Resonances of a rotating black hole analogue
- Experimental demonstration of the supersonic-subsonic bifurcation in the circular jump: A hydrodynamic white hole
- Sensitivity of Hawking radiation to superluminal dispersion relations
- Quasi-normal mode analysis in BEC acoustic black holes
- The two faces of quantum sound