Turbulent Energy Transfer and Proton–Electron Heating in Collisionless Plasmas

dc.contributor.authorRoy, S.
dc.contributor.authorBandyopadhyay, R.
dc.contributor.authorYang, Y.
dc.contributor.authorParashar, T. N.
dc.contributor.authorMatthaeus, W. H.
dc.contributor.authorAdhikari, S.
dc.contributor.authorRoytershteyn, V.
dc.contributor.authorChasapis, A.
dc.contributor.authorLi, Hui
dc.contributor.authorGershman, D. J.
dc.contributor.authorGiles, B. L.
dc.contributor.authorBurch, J. L.
dc.date.accessioned2023-02-20T14:30:41Z
dc.date.available2023-02-20T14:30:41Z
dc.date.issued2022-12-19
dc.descriptionThis article was originally published in Astrophysical Journal. The version of record is available at: https://doi.org/10.3847/1538-4357/aca479
dc.description.abstractDespite decades of study of high-temperature weakly collisional plasmas, a complete understanding of how energy is transferred between particles and fields in turbulent plasmas remains elusive. Two major questions in this regard are how fluid-scale energy transfer rates, associated with turbulence, connect with kinetic-scale dissipation, and what controls the fraction of dissipation on different charged species. Although the rate of cascade has long been recognized as a limiting factor in the heating rate at kinetic scales, there has not been direct evidence correlating the heating rate with MHD-scale cascade rates. Using kinetic simulations and in situ spacecraft data, we show that the fluid-scale energy flux indeed accounts for the total energy dissipated at kinetic scales. A phenomenology, based on disruption of proton gyromotion by fluctuating electric fields that are produced in turbulence at proton scales, argues that the proton versus electron heating is controlled by the ratio of the nonlinear timescale to the proton cyclotron time and by the plasma beta. The proposed scalings are supported by the simulations and observations.
dc.description.sponsorshipWe wish to acknowledge NASA Heliospheric GI grant No. 80NSSC21K0739 and NASA grant No. 80NSSC21K1458 at Princeton University, and NASA MMS Theory and Modeling team grant No. 80NSSC19K0565, and LWS grant 80NSSC20K0198 at Delaware, and an NSFDOE grant PHY2108834 at Delaware. All MMS data are available at https://lasp.colorado.edu/mms/sdc/.
dc.identifier.citationRoy, S., R. Bandyopadhyay, Y. Yang, T. N. Parashar, W. H. Matthaeus, S. Adhikari, V. Roytershteyn, et al. “Turbulent Energy Transfer and Proton–Electron Heating in Collisionless Plasmas.” The Astrophysical Journal 941, no. 2 (December 19, 2022): 137. https://doi.org/10.3847/1538-4357/aca479.
dc.identifier.issn1538-4357
dc.identifier.urihttps://udspace.udel.edu/handle/19716/32329
dc.language.isoen_US
dc.publisherAstrophysical Journal
dc.subjectplasma physics
dc.subjectspace plasmas
dc.subjectmagnetohydrodynamics
dc.subjectplasma astrophysics
dc.titleTurbulent Energy Transfer and Proton–Electron Heating in Collisionless Plasmas
dc.typeArticle

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