On the Conservation of Turbulence Energy in Turbulence Transport Models
arXiv:2111.11096 · doi:10.3847/1538-4357/ac596e
Abstract
Zank et al. developed models describing the transport of low frequency incompressible and nearly incompressible turbulence in inhomogeneous flows. The formalism was based on expressing the fluctuating variables in terms of the Elsässar variables and then taking "moments" subject to various closure hypotheses. The turbulence transport models are different according to whether the plasma beta regime is large or of order 1 or smaller. Here, we show explicitly that the two sets of turbulence transport models admit a conservation representation that resembles the well-known WKB transport equation for Alfvén wave energy density after introducing appropriate definitions of the "pressure" associated with the turbulent fluctuations. This includes introducing a distinct turbulent pressure tensor for 3D incompressible turbulence (the large plasma beta limit) and pressure tensors for quasi-2D and slab turbulence (the plasma beta order 1 or small regimes) that generalize the form of the WKB pressure tensor. Various limits of the different turbulent pressure tensors are discussed. However, the analogy between the conservation form of the turbulence transport models and the WKB model is not close for multiple reasons, including that the turbulence models express fully nonlinear physical processes unlike the strictly linear WKB description. The analysis presented here serves both as a check on the validity and correctness of the turbulence transport models and provides greater transparency of the energy dissipation term and the "turbulent pressure" in our models, which is important for many practical applications.
19 pages, 0 figure
References in corpus (7)
- Self-consistent Coronal Heating and Solar Wind Acceleration from Anisotropic Magnetohydrodynamic Turbulence
- Dynamical Feedback of Self-generated Magnetic Fields in Cosmic Ray Modified Shocks
- Turbulence Transport Modeling and First Orbit Parker Solar Probe (PSP) Observations
- Kolmogorov versus Iroshnikov-Kraichnan spectra: Consequences for ion heating in the solar wind
- Turbulence-Driven Coronal Heating and Improvements to Empirical Forecasting of the Solar Wind
- Turbulent Heating between 0.2 and 1 au: A Numerical Study
- Spatio-temporal behavior of magnetohydrodynamic fluctuations with cross-helicity and background magnetic field
Cited by in corpus (4)
- Modeling of Joint Parker Solar Probe - Metis/Solar Orbiter Observations
- Solar Energetic Particle Acceleration at a Spherical Shock with the Shock Normal Angle Evolving in Space and Time
- Observed Fluctuation Enhancement and Departure from WKB Theory in Sub-Alfvénic Solar Wind
- Critical Mach Numbers for Magnetohydrodynamic Shocks with Accelerated Particles and Waves