Enhanced Energy Transfer Rate in Solar Wind Turbulence Observed near the Sun from Parker Solar Probe
arXiv:1912.02959 · doi:10.3847/1538-4365/ab5dae
Abstract
Direct evidence of an inertial-range turbulent energy cascade has been provided by spacecraft observations in heliospheric plasmas. In the solar wind, the average value of the derived heating rate near 1 au is , an amount sufficient to account for observed departures from adiabatic expansion. Parker Solar Probe (PSP), even during its first solar encounter, offers the first opportunity to compute, in a similar fashion, a fluid-scale energy decay rate, much closer to the solar corona than any prior in-situ observations. Using the Politano-Pouquet third-order law and the von Kármán decay law, we estimate the fluid-range energy transfer rate in the inner heliosphere, at heliocentric distance ranging from (0.25 au) to (0.17 au). The energy transfer rate obtained near the first perihelion is about 100 times higher than the average value at 1 au. This dramatic increase in the heating rate is unprecedented in previous solar wind observations, including those from Helios, and the values are close to those obtained in the shocked plasma inside the terrestrial magnetosheath.
Accepted for publication in The Astrophysical Journal Supplement, PSP special issue
References in corpus (15)
- Observation of inertial energy cascade in interplanetary space plasma
- Switchbacks in the near-Sun magnetic field: long memory and impact on the turbulence cascade
- The Solar Probe Cup on Parker Solar Probe
- Evidence for Electron Landau Damping in Space Plasma Turbulence
- Measuring Collisionless Damping in Heliospheric Plasmas using Field-Particle Correlations
- Diagnosing collisionless energy transfer using field-particle correlations: gyrokinetic turbulence
- Anisotropy of third-order structure functions in MHD turbulence
- Evolution of turbulence in the expanding solar wind, a numerical study
- On the statistical properties of turbulent energy transfer rate in the inner Heliosphere
- Contextual Predictions for Parker Solar Probe II: Turbulence Properties and Taylor Hypothesis
- Clustering of Intermittent Magnetic and Flow Structures near Parker Solar Probe's First Perihelion -- A Partial-Variance-of-Increments Analysis
- The Enhancement of Proton Stochastic Heating in the near-Sun Solar Wind
- Characterization of the Turbulent Magnetic Integral Length in the Solar Wind: From 0.3 to 5 Astronomical Units
- Nonuniversality and finite dissipation in decaying magnetohydrodynamic turbulence
- Reynolds-number dependence of the dimensionless dissipation rate in homogeneous magnetohydrodynamic turbulence
Cited by in corpus (37)
- The Solar Orbiter mission -- Science overview
- Parker Solar Probe: Four Years of Discoveries at Solar Cycle Minimum
- The In Situ Signature of Cyclotron Resonant Heating
- Pressure-Strain Interaction as the Energy Dissipation Estimate in Collisionless Plasma
- Inner-Heliosphere Signatures of Ion-Scale Dissipation and Nonlinear Interaction
- Clustering of Intermittent Magnetic and Flow Structures near Parker Solar Probe's First Perihelion -- A Partial-Variance-of-Increments Analysis
- The Near-Sun Streamer Belt Solar Wind: Turbulence and Solar Wind Acceleration
- Strategies for determining the cascade rate in MHD turbulence: isotropy, anisotropy, and spacecraft sampling
- Geometry of Magnetic Fluctuations near the Sun from PSP
- The evolution of compressible solar wind turbulence in the inner heliosphere: PSP, THEMIS and MAVEN observations
- Large-scale Structure and Turbulence Transport in the Inner Solar Wind -- Comparison of Parker Solar Probe's First Five Orbits with a Global 3D Reynolds-averaged MHD Model
- An Extended and Fragmented Alfvén Zone in the Young Solar Wind
- Solar Wind Turbulence Around Mars: Relation Between The Energy Cascade Rate And The Proton Cyclotron Waves Activity
- Spectral transfer and Kármán-Howarth-Monin equations for compressible Hall magnetohydrodynamics
- The incompressible energy cascade rate in anisotropic solar wind turbulence
- Statistical analysis of intermittency and its association with proton heating in the near Sun environment
- Energy Supply for Heating the Slow Solar Wind Observed by Parker Solar Probe between 0.17 and 0.7 au
- Analysis of Magnetohydrodynamic Perturbations in Radial-field Solar Wind from Parker Solar Probe Observations
- Helios 2 observations of solar wind turbulence decay in the inner heliosphere
- Multipoint Turbulence Analysis with Helioswarm
- A Statistical Study of the Compressible Energy Cascade Rate in Solar Wind Turbulence: Parker Solar Probe Observations
- Estimation of turbulent proton and electron heating rates via Landau damping constrained by Parker Solar Probe observations
- Magnetic helicity signature and its role in regulating magnetic energy spectra and proton temperatures in the solar wind
- Anisotropic Magnetic Turbulence in the Inner Heliosphere -- Radial Evolution of Distributions observed by Parker Solar Probe
- Random Walk and Trapping of Interplanetary Magnetic Field Lines: Global Simulation, Magnetic Connectivity, and Implications for Solar Energetic Particles
- Turbulent Proton Heating Rate in the Solar Wind from to
- Visualizing and Interpreting Unsupervised Solar Wind Classifications
- Taylor microscale and effective Reynolds number near the Sun from PSP
- Association of intermittency with electron heating in the near-Sun solar wind
- Variability of the Incompressible Energy Cascade Rate in Solar Wind Turbulence Around Mars
- Local and global properties of energy transfer in models of plasma turbulence
- Comparing turbulent cascades and heating vs spectral anisotropy in solar wind via direct simulations
- Observation of Turbulent Magnetohydrodynamic Cascade in the Jovian Magnetosheath
- Alfvén Waves at Mars
- Ion-scale Turbulence and Energy Cascade Rate in the Solar Corona and Inner Heliosphere
- Proposal of a Novel Physical Parameter Characterizing Solar Wind Speed in a Wave-Driven Model
- Alfvén wave propagation, reflection and trapping in the solar wind