Turbulence Transport Modeling and First Orbit Parker Solar Probe (PSP) Observations
arXiv:1912.02372 · doi:10.3847/1538-4365/ab5852
Abstract
Parker Solar Probe (PSP) achieved its first orbit perihelion on November 6, 2018, reaching a heliocentric distance of about 0.165 au (35.55 R). Here, we study the evolution of fully developed turbulence associated with the slow solar wind along the PSP trajectory between 35.55 R and 131.64 R in the outbound direction, comparing observations to a theoretical turbulence transport model. Several turbulent quantities, such as the fluctuating kinetic energy and the corresponding correlation length, the variance of density fluctuations, and the solar wind proton temperature are determined from the PSP SWEAP plasma data along its trajectory between 35.55 R and 131.64 R. The evolution of the PSP derived turbulent quantities are compared to the numerical solutions of the nearly incompressible magnetohydrodynamic (NI MHD) turbulence transport model recently developed by Zank et al. (2017). We find reasonable agreement between the theoretical and observed results. On the basis of these comparisons, we derive other theoretical turbulent quantities, such as the energy in forward and backward propagating modes, the total turbulent energy, the normalized residual energy and cross-helicity, the fluctuating magnetic energy, and the correlation lengths corresponding to forward and backward propagating modes, the residual energy, and the fluctuating magnetic energy.
References in corpus (7)
- Self-consistent Coronal Heating and Solar Wind Acceleration from Anisotropic Magnetohydrodynamic Turbulence
- Identification of Magnetic Flux Ropes from Parker Solar Probe Observations during the First Encounter
- A generalized two-component model of solar wind turbulence and ab initio diffusion mean free paths and drift lengthscales of cosmic rays
- Kolmogorov versus Iroshnikov-Kraichnan spectra: Consequences for ion heating in the solar wind
- Implementing turbulence transport in the CRONOS framework and application to the propagation of CMEs
- Turbulence-Driven Coronal Heating and Improvements to Empirical Forecasting of the Solar Wind
- Turbulent Heating between 0.2 and 1 au: A Numerical Study
Cited by in corpus (19)
- Parker Solar Probe: Four Years of Discoveries at Solar Cycle Minimum
- Geometry of Magnetic Fluctuations near the Sun from PSP
- The radial variation of the solar wind turbulence spectra near the kinetic break scale from Parker Solar Probe measurements
- A possible link between turbulence and plasma heating
- Characteristics of Interplanetary Discontinuities in the Inner Heliosphere Revealed by Parker Solar Probe
- On the seed population of solar energetic particles in the inner heliosphere
- Modelling the 2020 November 29 solar energetic particle event using the EUHFORIA and the iPATH model
- On the Conservation of Turbulence Energy in Turbulence Transport Models
- A Statistical Study of the Compressible Energy Cascade Rate in Solar Wind Turbulence: Parker Solar Probe Observations
- Nature and Scalings of Density Fluctuations of Compressible MHD Turbulence with Applications to the Solar Wind
- Reconciling Parker Solar Probe observations and magnetohydrodynamic theory
- Role of Longitudinal Waves in Alfvén-wave-driven Solar Wind
- Compressible Turbulence in the Near-Sun Solar Wind: Parker Solar Probe's First Eight Perihelia
- Energy transport during 3D small-scale reconnection driven by anisotropic plasma turbulence
- On the Interpretation of the Scalings of Density Fluctuations from In-situ Solar Wind Observations: Insights from 3D Turbulence Simulations
- Does Turbulence along the Coronal Current Sheet Drive Ion Cyclotron Waves?
- NIRwave: A wave-turbulence-driven solar wind model constrained by PSP observations
- On the Regulation of the Solar Wind Helium Abundance by the Hydrogen Compressibility
- On the Turbulent Reduction of Drifts for Solar Energetic Particles