4.6 Article

Large-amplitude longitudinal oscillations in solar prominences simulated with different resolutions

Journal

ASTRONOMY & ASTROPHYSICS
Volume 654, Issue -, Pages -

Publisher

EDP SCIENCES S A
DOI: 10.1051/0004-6361/202141524

Keywords

Sun; corona; Sun; filaments; prominences; Sun; oscillations; methods; numerical

Funding

  1. Instituto de Astrofisica de Canarias via an Astrophysicist Resident fellowship
  2. Ramon y Cajal fellowship from the Spanish Ministry of Science and Innovation [RYC2018-026129-I]
  3. Spanish National Research Agency (Agencia Estatal de Investigacion)
  4. European Social Fund through Operational Program FSE 2014 of Employment, Education and Training
  5. Universitat de les Illes Balears
  6. International Space Sciences Institute (ISSI) via team 413 on Large-Amplitude Oscillations as a Probe of Quiescent and Erupting Solar Prominences
  7. European Research Council [ERC-2017-CoG-771310-PI2FA]
  8. Spanish Ministry of Economy, Industry and Competitiveness [PGC2018-095832-B-I00]
  9. Barcelona Supercomputing Center [RES-AECT-2020-1-0012, RES-AECT-2020-2-0010]

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By using high-resolution numerical simulations, the study explores the attenuation and amplification mechanisms of large-amplitude longitudinal oscillations in solar prominences. The results indicate that the energy exchange between the bottom and top prominence regions is crucial for the attenuation and amplification of LALOs.
Context. Large-amplitude longitudinal oscillations (LALOs) in solar prominences have been widely studied in recent decades. However, their damping and amplification mechanisms are not well understood. Aims. In this study, we investigate the attenuation and amplification of LALOs using high-resolution numerical simulations with progressively increasing spatial resolutions. Methods. We performed time-dependent numerical simulations of LALOs using the 2D magnetic configuration that contains a dipped region. After the prominence mass loading in the magnetic dips, we triggered LALOs by perturbing the prominence mass along the magnetic field. We performed the experiments with four values of spatial resolution. Results. In the simulations with the highest resolution, the period shows good agreement with the pendulum model. The convergence experiment revealed that the damping time saturates at the bottom prominence region with increasing resolution, indicating the existence of a physical reason for the damping of oscillations. At the prominence top, the oscillations are amplified during the first minutes and are then slowly attenuated. The characteristic time suggests more significant amplification in the experiments with the highest spatial resolution. The analysis revealed that the energy exchange between the bottom and top prominence regions is responsible for the attenuation and amplification of LALOs. Conclusions. High-resolution experiments are crucial when studying the periods and the damping mechanism of LALOs. The period agrees with the pendulum model only when using a sufficiently high spatial resolution. The results suggest that numerical diffusion in simulations with insufficient spatial resolution can hide important physical mechanisms, such as amplification of oscillations.

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