Using coronal seismology to estimate the magnetic field strength in a realistic coronal model
arXiv:1508.00593 · doi:10.1051/0004-6361/201526237
Abstract
Coronal seismology is extensively used to estimate properties of the corona, e.g. the coronal magnetic field strength are derived from oscillations observed in coronal loops. We present a three-dimensional coronal simulation including a realistic energy balance in which we observe oscillations of a loop in synthesised coronal emission. We use these results to test the inversions based on coronal seismology. From the simulation of the corona above an active region we synthesise extreme ultraviolet (EUV) emission from the model corona. From this we derive maps of line intensity and Doppler shift providing synthetic data in the same format as obtained from observations. We fit the (Doppler) oscillation of the loop in the same fashion as done for observations to derive the oscillation period and damping time. The loop oscillation seen in our model is similar to imaging and spectroscopic observations of the Sun. The velocity disturbance of the kink oscillation shows an oscillation period of 52.5s and a damping time of 125s, both being consistent with the ranges of periods and damping times found in observation. Using standard coronal seismology techniques, we find an average magnetic field strength of G for our loop in the simulation, while in the loop the field strength drops from some 300G at the coronal base to 50G at the apex. Using the data from our simulation we can infer what the average magnetic field derived from coronal seismology actually means. It is close to the magnetic field strength in a constant cross-section flux tube that would give the same wave travel time through the loop. Our model produced not only a realistic looking loop-dominated corona, but also provides realistic information on the oscillation properties that can be used to calibrate and better understand the result from coronal seismology.
Accepted for publication on A&A
References in corpus (5)
- Persistent Doppler shift oscillations observed with HINODE/EIS in the solar corona: spectroscopic signatures of Alfvenic waves and recurring upflows
- Determination of the Coronal Magnetic Field by Hot Loop Oscillations
- First Stereoscopic Coronal Loop Reconstructions from Stereo Secchi Images
- MHD Seismology of a Coronal Loop System by the First Two Modes of Standing Kink Waves
- Magnetic Jam in the Corona of the Sun
Cited by in corpus (20)
- Extension of the MURaM radiative MHD code for coronal simulations
- Global maps of the magnetic field in the solar corona
- Kink oscillations of coronal loops
- Mapping the magnetic field in the solar corona through magnetoseismology
- Forward Modelling of Standing Kink Modes in Coronal Loops II. Applications
- Observing the evolution of the Sun's global coronal magnetic field over eight months
- Forward Modelling of Standing Kink Modes in Coronal Loops I. Synthetic Views
- Limitations of force-free magnetic field extrapolations: revisiting basic assumptions
- Transverse Coronal-Loop Oscillations Induced by the Non-radial Eruption of a Magnetic Flux Rope
- Application of a magnetic-field-induced transition in Fe X to solar and stellar coronal magnetic field measurements
- Current systems of coronal loops in 3D MHD simulations
- Inference of magnetic field strength and density from damped transverse coronal waves
- Excitation and evolution of coronal oscillations in self-consistent 3D radiative MHD simulations of the solar atmosphere
- Pulsations of microwave emission from a solar flare in a twisted loop caused by intrinsic MHD oscillations
- Forward Modelling of MHD Waves in Braided Magnetic Fields
- Transverse vertical oscillations during the contraction and expansion of coronal loops
- Stellar X-rays and magnetic activity in 3D MHD coronal models
- Data-driven Radiative Magnetohydrodynamics Simulations with the MURaM Code: Coronal Heating and Dynamics in an Emerging Active Region
- Forward Modeling of Solar Coronal Magnetic Field Measurements Based on a Magnetic-field-induced Transition in Fe X
- Parallel plasma loops and the energization of the solar corona