Monte Carlo Markov Chain DEM reconstruction of isothermal plasmas
arXiv:1112.2857 · doi:10.1051/0004-6361/201117424
Abstract
In this paper, we carry out tests on the Monte Carlo Markov Chain (MCMC) technique with the aim of determining: 1) its ability to retrieve isothermal plasmas from a set of spectral line intensities, with and without random noise; 2) to what extent can it discriminate between an isothermal solution and a narrow multithermal distribution; and 3) how well it can detect multiple isothermal components along the line of sight. We also test the effects of 4) atomic data uncertainties on the results, and 5) the number of ions whose lines are available for the DEM reconstruction. We find that the MCMC technique is unable to retrieve isothermal plasmas to better than Delta log T = 0.05. Also, the DEM curves obtained using lines calculated with an isothermal plasma and with a Gaussian distribution with FWHM of log T = 0.05 are very similar. Two near-isothermal components can be resolved if their temperature separation is Delta log T = 0.2 or larger. Thus, DEM diagnostics has an intrinsic resolving power of log T = 0.05. Atomic data uncertainties may significantly affect both temperature and peak DEM values, but do not alter our conclusions. The availability of small sets of lines also does not worsen the performance of the MCMC technique, provided these lines are formed in a wide temperature range. Our analysis shows the present limitations in our ability to identify the presence of strictly isothermal plasmas in stellar and solar coronal spectra.
11 pages, 11 figures, accepted for publication
References in corpus (2)
Cited by in corpus (14)
- Differential Emission Measures from the Regularized Inversion of Hinode and SDO data
- A Systematic Survey of High Temperature Emission in Solar Active Regions
- Diagnosing the time-dependence of active region core heating from the emission measure: I. Low-frequency nanoflares
- Hinode/EIS spectroscopic validation of very hot plasma imaged with Solar Dynamics Observatory in non-flaring active region cores
- On the Accuracy of the Differential Emission Measure Diagnostics of Solar Plasmas. Application to AIA/SDO. Part II: Multithermal plasmas
- On the Accuracy of the Differential Emission Measure Diagnostics of Solar Plasmas. Application to AIA/SDO. Part I: Isothermal plasmas
- Can the Differential Emission Measure constrain the timescale of energy deposition
- Investigating the reliability of coronal emission measure distribution diagnostics using 3D radiative MHD simulations
- Benchmark Test of Differential Emission Measure Codes and Multi-Thermal Energies in Solar Active Regions
- Inference of Heating Properties from "Hot" Non-flaring Plasmas in Active Region Cores. II. Nanoflare Trains
- The Evolution of the EM Distribution in the Core of an Active Region
- Multimodal Differential Emission Measure in the Solar Corona
- Measurements of Anisotropic Ion Temperatures, Non-Thermal Velocities, and Doppler Shifts in a Coronal Hole
- Measuring relative abundances in the solar corona with optimised linear combinations of spectral lines