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Alessia Biondi

Publications and source records attributed to Alessia Biondi.

4 recordsLinked to original sources

Black hole analogues in two-dimensional flows with constant shear

We investigate the gravitational analogy for shallow water waves propagating on a unidirectional background flow with constant shear. Generalizing the standard irrotational treatment, we demonstrate that a transverse background vorticity is perfectly compatible with the existence of an effective curved spacetime for longitudinal surface waves. We extract the modified acoustic metric and show that the conformal factor, which governs wave scattering, becomes strongly dependent on the vorticity. Consequently, we find that the presence of background shear significantly suppresses the scattering of modes over an inhomogeneous bathymetry, while mildly modifying the analogue surface gravity at the transcritical horizon. These results highlight the nontrivial role of rotational dynamics in analogue gravity experiments.

gr-qc

A diagrammatic approach to correlation functions in superfluids

Renaud Parentani has given a vast contribution to the development of gravitational analogue models as tools to explore various important aspects of general relativity and of quantum field theory in curved space-time. In these systems, two-point correlation functions are of the utmost importance for the characterization of processes taking place close to the acoustic horizon. In the present paper, dedicated to him, we present a study of path integral methods that allow to determine two-point correlation functions by a perturbative expansion, in a way that -- beyond its generality -- is especially suited to analyze these processes. Our results apply to non-relativistic superfluids, realizable in terrestrial experiments, as well as to relativistic superfluids, relevant for compact stellar objects.

cond-mat.quant-gas

Effective-Field Theories of Analogue Gravity

We develop a novel method for building a gravitational analog model for a flowing Bose-Einstein condensate. The analogue metric is obtained using effective field theory methods, integrating out the heavy radial fluctuations. In this way, we also obtain interaction terms up to the quartic order in the fields. The microscopic Lagrangian describes a complex massive scalar field, with a global U(1) symmetry, that is spontaneously broken. From the quadratic effective Lagrangian, we obtain a dispersion law for phonons in presence of an acoustic horizon generated by the background flow. We observe that the phonon dispersion relation may exhibit a non-monotonic behavior determined by the Lagrangian's parameters. In this case, a non-trivial minimum appears associated with a characteristic length scale, indicating the breaking of translation symmetry. Then, we determine the constraints on the Lagrangian's parameters to make this happen. Finally, we design an original procedure to calculate the correlation functions through field theory tools. We apply this method to the density-density correlation function, reproducing known results. Moreover, we study the case of a non-monotonic phonon dispersion law, finding the existence of long range order.

gr-qc

Vortical scattering channel in an aquatic space-time

Effective field theory descriptions of surface waves on flowing fluids have tended to assume that the flow is irrotational, but this assumption is often impractical due to boundary layer friction and flow recirculation. Here we develop an effective field theory of surface waves in an incompressible, inviscid flow that includes vorticity due to shear. Our model consists of a two-layer flow: an upper layer with no vorticity and a lower layer with constant vorticity. We consider linear, long-wavelength perturbations on top of such a flow, and find that these can be described by two coupled scalar fields admitting three elementary excitations, one more than the usual two found in irrotational flows. We compute the scattering coefficients pertaining to modes falling into an analogue black hole. Our approach provides a more realistic framework for simulating gravitational wave phenomena possibly with an internal structure mimicking quantum gravity effects in laboratory settings.

gr-qc