Angular Momentum Transport by Keplerian Turbulence in Liquid Metals
arXiv:2206.14214 · doi:10.1103/PhysRevLett.129.074501
Abstract
We report a laboratory study of the transport of angular momentum by a turbulent flow of an electrically conducting fluid confined in a thin disk. When the electromagnetic force applied to the liquid metal is large enough, the corresponding volume injection of angular momentum produces a turbulent flow characterized by a time-averaged Keplerian rotation rate . Two contributions to the local angular momentum transport are identified: one from the poloidal recirculation induced by the presence of boundaries, and the other from turbulent fluctuations in the bulk. The latter produces efficient angular momentum transport independent of the molecular viscosity of the fluid, and leads to Kraichnan's prediction . In this so-called ultimate regime, the experiment, therefore, provides a configuration analogous to accretion disks, allowing the prediction of accretion rates induced by Keplerian turbulence.
6 pages, 5 figures, accepted in Phys. Rev. Lett
References in corpus (7)
- Hydrodynamic turbulence cannot transport angular momentum effectively in astrophysical disks
- Experimental observation and characterization of the magnetorotational instability
- Experimental evidence for magnetorotational instability in a helical magnetic field
- Radiative heating achieves the ultimate regime of thermal convection
- Observation of a Free-Shercliff-Layer Instability in Cylindrical Geometry
- Azimuthal velocity profiles in Rayleigh-stable Taylor-Couette flow and implied axial angular momentum transport
- Turbulence in electromagnetically-driven Keplerian flows