Violation of the zeroth law of turbulence in space plasmas
arXiv:2009.02828 · doi:10.1017/S0022377821000489
Abstract
The zeroth law of turbulence states that, for fixed energy input into large-scale motions, the statistical steady state of a turbulent system is independent of microphysical dissipation properties. The behavior, which is fundamental to nearly all fluid-like systems from industrial processes to galaxies, occurs because nonlinear processes generate smaller and smaller scales in the flow, until the dissipation -- no matter how small -- can thermalize the energy input. Using direct numerical simulations and theoretical arguments, we show that in strongly magnetized plasma turbulence such as that recently observed by the Parker Solar Probe (PSP) spacecraft, the zeroth law is routinely violated. Namely, when such turbulence is "imbalanced" -- when the large-scale energy input is dominated by Alfvén waves propagating in one direction (the most common situation in space plasmas) -- nonlinear conservation laws imply the existence of a "barrier" at scales near the ion gyroradius. This causes energy to build up over time at large scales. The resulting magnetic-energy spectra bear a strong similarity to those observed in situ, exhibiting a sharp, steep kinetic transition range above and around the ion-Larmor scale, with flattening at yet smaller scales, thus resolving the decade-long puzzle of the position and variability of ion-kinetic spectral breaks in plasma turbulence. The "barrier" effect also suggests that how a plasma is forced at large scales (the imbalance) may have a crucial influence on thermodynamic properties such as the ion-to-electron heating ratio.
References in corpus (25)
- Kinetic Simulations of Magnetized Turbulence in Astrophysical Plasmas
- The Evolution and Role of Solar Wind Turbulence in the Inner Heliosphere
- Recent progress in astrophysical plasma turbulence from solar wind observations
- Hyperviscosity, Galerkin truncation and bottlenecks in turbulence
- Solar wind turbulent spectrum at plasma kinetic scales
- In-situ switchback formation in the expanding solar wind
- Imbalanced Strong MHD Turbulence
- Role of cross helicity in magnetohydrodynamic turbulence
- Ion Scale Electromagnetic Waves in the Inner Heliosphere
- Strong Anisotropic MHD Turbulence with Cross Helicity
- Spectral Slope Variation at Proton Scales from Fast to Slow Solar Wind
- Collisionless Reconnection in Magnetohydrodynamic and Kinetic Turbulence
- Hybrid-Kinetic Simulations of Ion Heating in Alfvénic Turbulence
- Cross Helicity Reversals In Magnetic Switchbacks
- Structure of Stationary Strong Imbalanced Turbulence
- The "zeroth law" of turbulence: Isotropic turbulence simulations revisited
- Anisotropy of Solar-Wind Turbulence in the Inner Heliosphere at Kinetic Scales: PSP Observations
- Inner-Heliosphere Signatures of Ion-Scale Dissipation and Nonlinear Interaction
- Kinetic Scale Slow Solar Wind Turbulence in the Inner Heliosphere: Co-existence of Kinetic Alfvén Waves and Alfvén Ion Cyclotron Waves
- Magnetic Helicity Conservation and Inverse Energy Cascade in Electron Magnetohydrodynamic Wave Packets
- MHD-kinetic transition in imbalanced Alfvénic turbulence
- Observational evidence for solar wind proton heating by ion-scale turbulence
- Dynamic Phase Alignment in Inertial Alfven Turbulence
- Inverse cascade and magnetic vortices in kinetic Alfvén-wave turbulence
- MHD Turbulence: A Biased Review
Cited by in corpus (23)
- A solar source of Alfvénic magnetic field switchbacks: {\em in situ} remnants of magnetic funnels on supergranulation scales
- The In Situ Signature of Cyclotron Resonant Heating
- Anisotropy of Solar-Wind Turbulence in the Inner Heliosphere at Kinetic Scales: PSP Observations
- Pattern formation by turbulent cascades
- The Near-Sun Streamer Belt Solar Wind: Turbulence and Solar Wind Acceleration
- Reconnection-controlled decay of magnetohydrodynamic turbulence and the role of invariants
- Anisotropy of Magnetic Field Spectra at Kinetic Scales of Solar Wind Turbulence as Revealed by Parker Solar Probe in the Inner Heliosphere
- On the properties of Alfvénic switchbacks in the expanding solar wind: the influence of the Parker spiral
- Preferential Proton over Electron heating from coherent structures during the first perihelion of Parker Solar Probe
- Evidence for the helicity barrier from measurements of the turbulence transition range in the solar wind
- Electron-ion heating partition in imbalanced solar-wind turbulence
- Kinetic Simulations of Imbalanced Turbulence in a Relativistic Plasma: Net Flow and Particle Acceleration
- A Unified Phenomenology of Ion Heating in Low- Plasmas: Test-Particle Simulations
- Direct kinetic Alfvén wave energy cascade in the presence of imbalance
- Suppression of the collisionless tearing mode by flow shear: implications for reconnection onset in the Alfvénic solar wind
- The effects of finite electron inertia on helicity-barrier-mediated turbulence
- Four-dimensional equations for the study of electromagnetic plasma turbulence in a drift kinetic limit
- Gyrofluid simulations of turbulence and reconnection in space plasmas
- Perpendicular ion heating in turbulence and reconnection: magnetic moment breaking by coherent fluctuations
- Turbulent heating in collisionless low-beta plasmas: imbalance, Landau damping, and electron-ion energy partition
- Rugged magneto-hydrodynamic invariants in weakly collisional plasma turbulence: Two-dimensional hybrid simulation results
- Solving Triad Reduced Interactions for Drift Kinetic Equations
- ALLIANCE: Spectral solver for kinetic plasma turbulence