The theory of the magnetothermal instability (MTI) [D. A. Tidman and R. A. Shanny, Phys. Fluids 17, 1207 (1974)] is revisited through the lens of the stability of uniform systems. The linear stability analysis includes flow advection and Nernst transport. The instability criteria derived distinguish between the convective and the absolute nature of the perturbation growth. It is proven that, in the region where the Nernst and plasma blowoff velocities cancel, the MTI can be absolute and wave-packet perturbations grow in situ. This instability is mediated by the internal feedback between the Biermann battery and Righi–Leduc terms. The analysis is extended to derive the dispersion relation for short-wavelength perturbations developing in nonuniform profiles with the application to coronal plasmas. It is found that the condition for MTI requires the net B-field convection velocity to be small at the isothermal sonic section, and the plasma conditions in this section govern the dynamics of the instability. Analysis of hydro-equivalent implosions suggests that unstable perturbations undergo more e-foldings of growth in larger-size targets.
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September 2022
Research Article|
September 23 2022
Theory of the magnetothermal instability in coronal plasma flows Available to Purchase
Special Collection:
Papers from the 63rd Annual Meeting of the APS Division of Plasma Physics
F. García-Rubio
;
(Conceptualization, Formal analysis, Investigation, Methodology, Writing – original draft)
1
Laboratory for Laser Energetics, University of Rochester
, 250 East River Road, Rochester, New York 14623-1299, USA
2
Department of Mechanical Engineering, University of Rochester
, Rochester, New York 14627, USA
b)Author to whom correspondence should be addressed: [email protected]
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R. Betti;
R. Betti
(Conceptualization, Formal analysis, Funding acquisition, Investigation, Methodology, Project administration, Supervision, Validation, Writing – review & editing)
1
Laboratory for Laser Energetics, University of Rochester
, 250 East River Road, Rochester, New York 14623-1299, USA
2
Department of Mechanical Engineering, University of Rochester
, Rochester, New York 14627, USA
3
Department of Physics and Astronomy, University of Rochester
, Rochester, New York 14627, USA
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J. Sanz;
J. Sanz
(Conceptualization, Formal analysis, Investigation, Methodology, Supervision, Validation, Writing – review & editing)
4
Escuela Técnica Superior de Ingeniería Aeronáutica y del Espacio, Universidad Politécnica de Madrid
, Madrid 28040, Spain
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H. Aluie
H. Aluie
(Conceptualization, Formal analysis, Funding acquisition, Investigation, Methodology, Project administration, Supervision, Validation, Writing – review & editing)
1
Laboratory for Laser Energetics, University of Rochester
, 250 East River Road, Rochester, New York 14623-1299, USA
2
Department of Mechanical Engineering, University of Rochester
, Rochester, New York 14627, USA
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F. García-Rubio
1,2,b),a)
R. Betti
1,2,3
J. Sanz
4
H. Aluie
1,2
1
Laboratory for Laser Energetics, University of Rochester
, 250 East River Road, Rochester, New York 14623-1299, USA
2
Department of Mechanical Engineering, University of Rochester
, Rochester, New York 14627, USA
3
Department of Physics and Astronomy, University of Rochester
, Rochester, New York 14627, USA
4
Escuela Técnica Superior de Ingeniería Aeronáutica y del Espacio, Universidad Politécnica de Madrid
, Madrid 28040, Spain
a)
Invited speaker.
b)Author to whom correspondence should be addressed: [email protected]
Note: This paper is part of the Special Collection: Papers from the 63rd Annual Meeting of the APS Division of Plasma Physics.
Note: Paper BI1 6, Bull. Am. Phys. Soc. 66 (2021).
Phys. Plasmas 29, 092106 (2022)
Article history
Received:
July 14 2022
Accepted:
August 25 2022
Citation
F. García-Rubio, R. Betti, J. Sanz, H. Aluie; Theory of the magnetothermal instability in coronal plasma flows. Phys. Plasmas 1 September 2022; 29 (9): 092106. https://doi.org/10.1063/5.0109877
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