4.8 Article

Fluidization of collisionless plasma turbulence

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1813913116

Keywords

plasma turbulence; Landau damping; plasma echo; solar wind

Funding

  1. Grand Equipement National de Calcul Intensif Project [A0010510117]
  2. NASA High-End Computing Program through NASA Advanced Supercomputing Division at Ames Research Center [SMD-16-7654]
  3. US Department of Energy [DE-FC02-04ER54784, DE-FG02-93ER54197]
  4. UK Science and Technology Facilities Council [ST/N000919/1]
  5. Engineering and Physical Sciences Research Council [EP/M022331/1]
  6. Science and Technology Facilities Council [ST/N000919/1] Funding Source: researchfish
  7. U.S. Department of Energy (DOE) [DE-FG02-93ER54197] Funding Source: U.S. Department of Energy (DOE)
  8. EPSRC [EP/R034737/1] Funding Source: UKRI
  9. STFC [ST/N000919/1] Funding Source: UKRI

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In a collisionless, magnetized plasma, particles may stream freely along magnetic field lines, leading to phase mixing of their distribution function and consequently, to smoothing out of any compressive fluctuations (of density, pressure, etc.). This rapid mixing underlies Landau damping of these fluctuations in a quiescent plasma-one of the most fundamental physical phenomena that makes plasma different from a conventional fluid. Nevertheless, broad power law spectra of compressive fluctuations are observed in turbulent astrophysical plasmas (most vividly, in the solar wind) under conditions conducive to strong Landau damping. Elsewhere in nature, such spectra are normally associated with fluid turbulence, where energy cannot be dissipated in the inertial-scale range and is, therefore, cascaded from large scales to small. By direct numerical simulations and theoretical arguments, it is shown here that turbulence of compressive fluctuations in collisionless plasmas strongly resembles one in a collisional fluid and does have broad power law spectra. This fluidization of collisionless plasmas occurs, because phase mixing is strongly suppressed on average by stochastic echoes, arising due to nonlinear advection of the particle distribution by turbulent motions. Other than resolving the long-standing puzzle of observed compressive fluctuations in the solar wind, our results suggest a conceptual shift for understanding kinetic plasma turbulence generally: rather than being a system where Landau damping plays the role of dissipation, a collisionless plasma is effectively dissipationless, except at very small scales. The universality of fluid turbulence physics is thus reaffirmed even for a kinetic, collisionless system.

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