Anisotropy of third-order structure functions in MHD turbulence
arXiv:1502.04705 · doi:10.1088/0004-637X/804/2/119
Abstract
The measure of the third-order structure function, Y, is employed in the solar wind to compute the cascade rate of turbulence. In the absence of a mean field B0=0, Y is expected to be isotropic (radial) and independent of the direction of increments, so its measure yields directly the cascade rate. For turbulence with mean field, as in the solar wind, Y is expected to become more two dimensional (2D), that is, to have larger perpendicular components, loosing the above simple symmetry. To get the cascade rate one should compute the flux of Y, which is not feasible with single-spacecraft data, thus measurements rely upon assumptions about the unknown symmetry. We use direct numerical simulations (DNS) of magneto-hydrodynamic (MHD) turbulence to characterize the anisotropy of Y. We find that for strong guide field B0=5 the degree of two-dimensionalization depends on the relative importance of shear and pseudo polarizations (the two components of an Alfvén mode in incompressible MHD). The anisotropy also shows up in the inertial range. The more Y is 2D, the more the inertial range extent differs along parallel and perpendicular directions. We finally test the two methods employed in observations and find that the so-obtained cascade rate may depend on the angle between B0 and the direction of increments. Both methods yield a vanishing cascade rate along the parallel direction, contrary to observations, suggesting a weaker anisotropy of solar wind turbulence compared to our DNS. This could be due to a weaker mean field and/or to solar wind expansion.
Some text editing and typos corrected, 13 pages, 6 figures, to be published in ApJ
References in corpus (3)
Cited by in corpus (15)
- Three-dimensional simulation of the fast solar wind driven by compressible magnetohydrodynamic turbulence
- Enhanced Energy Transfer Rate in Solar Wind Turbulence Observed near the Sun from Parker Solar Probe
- Scaling of compressible magnetohydrodynamic turbulence in the fast solar wind
- Pressure-Strain Interaction as the Energy Dissipation Estimate in Collisionless Plasma
- Strategies for determining the cascade rate in MHD turbulence: isotropy, anisotropy, and spacecraft sampling
- Filaments and striations: anisotropies in observed, supersonic, highly-magnetised turbulent clouds
- Helios 2 observations of solar wind turbulence decay in the inner heliosphere
- Spectrum of kinetic plasma turbulence at 0.3-0.9 astronomical units from the Sun
- Multipoint Turbulence Analysis with Helioswarm
- Scale dependence and cross-scale transfer of kinetic energy in compressible hydrodynamic turbulence at moderate Reynolds numbers
- Three-dimensional local anisotropy of velocity fluctuations in the solar wind
- An in-depth numerical study of exact laws for compressible Hall magnetohydrodynamic turbulence
- A Detailed Examination of Anisotropy and Timescales in Three-dimensional Incompressible Magnetohydrodynamic Turbulence
- On cascade of kinetic energy in compressible hydrodynamic turbulence
- Ion-scale transition of plasma turbulence: Pressure-strain effect