Kinetic Physics of the Solar Corona and Solar Wind

Кинетическая физика солнечной короны и солнечного ветра
E. Marsch
2006-01-01

Landau and cyclotron dampingkinetic plasma physicssolar coronasolar windwave-particle interactions
Kinetic plasma physics of the solar corona and solar wind are reviewed with emphasis on the theoretical understanding of the in situ measurements of solar wind particles and waves, as well as on the remote-sensing observations of the solar corona made by means of ultraviolet spectroscopy and imaging. In order to explain coronal and interplanetary heating, the micro-physics of the dissipation of various forms of mechanical, electric and magnetic energy at small scales (e.g., contained in plasma waves, turbulences or non-uniform flows) must be addressed. We therefore scrutinise the basic assumptions underlying the classical transport theory and the related collisional heating rates, and also describe alternatives associated with wave-particle interactions. We elucidate the kinetic aspects of heating the solar corona and interplanetary plasma through Landau- and cyclotron-resonant damping of plasma waves, and analyse in detail wave absorption and micro instabilities. Important aspects (virtues and limitations) of fluid models, either single- and multi-species or magnetohydrodynamic and multi-moment models, for coronal heating and solar wind acceleration are critically discussed. Also, kinetic model results which were recently obtained by numerically solving the Vlasov-Boltzmann equation in a coronal funnel and hole are presented. Promising areas and perspectives for future research are outlined finally.
1
Classical transport theory and collisional heating rates rely on assumptions that require scrutiny, motivating wave–particle interaction alternatives.
2
Fluid models, including multispecies, magnetohydrodynamic, and multimoment approaches, have important strengths but also limitations for modeling coronal heating and solar-wind acceleration.
3
Landau- and cyclotron-resonant damping of plasma waves, together with wave absorption and microinstabilities, provide key kinetic mechanisms for plasma heating.
4
Numerical solutions of the Vlasov–Boltzmann equation in coronal funnels and holes provide kinetic-model results relevant to coronal heating and solar-wind acceleration.
5
The review identifies kinetic dissipation of mechanical, electric, and magnetic energy at small scales as central to explaining coronal and interplanetary heating.

The solar corona and solar wind (coronal and interplanetary plasma)

Kinetic heating and solar-wind acceleration mechanisms, including wave–particle interactions, resonant wave damping, wave absorption, microinstabilities, and the validity of collisional and fluid transport models

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2006-01-01
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E. Marsch
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