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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Prof Michael Barnes

Professor in Theoretical Physics

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Theoretical astrophysics and plasma physics at RPC
michael.barnes@physics.ox.ac.uk
Telephone: 01865 (2)73960
Rudolf Peierls Centre for Theoretical Physics, room 50.10
  • About
  • Publications

Intrinsic rotation driven by turbulent acceleration

(2018)

Authors:

Michael Barnes, Felix I Parra
More details from the publisher

Thermal disequilibration of ions and electrons by collisionless plasma turbulence

(2018)

Authors:

Yohei Kawazura, Michael Barnes, Alexander A Schekochihin
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$\texttt{stella}$: a mixed implicit-explicit, delta-f gyrokinetic code for general magnetic field configurations

(2018)

Authors:

Michael Barnes, Felix Parra-Diaz, Matt Landreman
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Turbulent heating in an inhomogeneous magnetized plasma slab

Journal of Plasma Physics Cambridge University Press 84:3 (2018) 905840306

Authors:

Michael Barnes, P Abiuso, W Dorland

Abstract:

Observational evidence in space and astrophysical plasmas with a long collisional mean free path suggests that more massive charged particles may be preferentially heated. One possible mechanism for this is the turbulent cascade of energy from injection to dissipation scales, where the energy is converted to heat. Here we consider a simple system consisting of a magnetized plasma slab of electrons and a single ion species with a cross-field density gradient. We show that such a system is subject to an electron drift wave instability, known as the universal instability, which is stabilized only when the electron and ion thermal speeds are equal. For unequal thermal speeds, we find from quasilinear analysis and nonlinear simulations that the instability gives rise to turbulent energy exchange between ions and electrons that acts to equalize the thermal speeds. Consequently, this turbulent heating tends to equalize the component temperatures of pair plasmas and to heat ions to much higher temperatures than electrons for conventional mass-ratio plasmas.
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Optimisation of confinement in a fusion reactor using a nonlinear turbulence model

JOURNAL OF PLASMA PHYSICS 84:2 (2018) ARTN 905840208

Authors:

EG Highcock, NR Mandell, M Barnes, W Dorland
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