Perpendicular Ion Heating by Reduced Magnetohydrodynamic Turbulence
arXiv:1309.0742 · doi:10.1088/0004-637X/776/2/90
Abstract
Recent theoretical studies argue that the rate of stochastic ion heating in low-frequency Alfvén-wave turbulence is given by , where is the rms turbulent velocity at the scale of the ion gyroradius , , is the perpendicular ion thermal speed, and and are dimensionless constants. We test this theoretical result by numerically simulating test particles interacting with strong reduced magnetohydrodynamic (RMHD) turbulence. The heating rates in our simulations are well fit by this formula. The best-fit values of are . The best-fit values of decrease (i.e., stochastic heating becomes more effective) as the grid size and Reynolds number of the RMHD simulations increase. As an example, in a RMHD simulation with a dissipation wavenumber of order the inverse ion gyroradius, we find . We show that stochastic heating is significantly stronger in strong RMHD turbulence than in a field of randomly phased Alfvén waves with the same power spectrum, because coherent structures in strong RMHD turbulence increase orbit stochasticity in the regions where ions are heated most strongly. We find that increases by a factor of while changes very little as the ion thermal speed increases from values to values , where is the Alfvén speed. We discuss the importance of these results for perpendicular ion heating in the solar wind.
11 pages, 8 pages, 1 table
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