Evidence of Impulsive Heating in Active Region Core Loops
arXiv:1009.0663 · doi:10.1088/0004-637X/723/1/713
Abstract
Using a full spectral scan of an active region from the Extreme-Ultraviolet Imaging Spectrometer (EIS) we have obtained Emission Measure EM distributions in two different moss regions within the same active region. We have compared these with theoretical transition region EMs derived for three limiting cases, namely \textit{static equilibrium}, \textit{strong condensation} and \textit{strong evaporation} from \cite{ebtel}. The EM distributions in both the moss regions are strikingly similar and show a monotonically increasing trend from . Using photospheric abundances we obtain a consistent EM distribution for all ions. Comparing the observed and theoretical EM distributions, we find that the observed EM distribution is best explained by the \textit{strong condensation} case (EM), suggesting that a downward enthalpy flux plays an important and possibly dominant role in powering the transition region moss emission. The downflows could be due to unresolved coronal plasma that is cooling and draining after having been impulsively heated. This supports the idea that the hot loops (with temperatures of 3{-}5 MK) seen in the core of active regions are heated by nanoflares.
17 pages, 4 figures, Accepted for publication in The Astrophysical Journal
References in corpus (6)
- Highly Efficient Modeling of Dynamic Coronal Loops
- High precision density measurements in the solar corona: I. Analysis methods and results for Fe XII and Fe XIII
- Flows and Non-thermal Velocities in Solar Active Regions Observed with the Extreme-ultraviolet Imaging Spectrometer on Hinode: A Tracer of Active Region Sources of Heliospheric Magnetic Fields?
- Flows and Motions in Moss in the Core of a Flaring Active Region: Evidence for Steady Heating
- Observation and Modeling of Coronal "Moss" With the EUV Imaging Spectrometer on Hinode
- Density structure of an active region and associated moss using Hinode/EIS
Cited by in corpus (28)
- A Systematic Survey of High Temperature Emission in Solar Active Regions
- Emission Measure Distribution and Heating of Two Active Region Cores
- H to Zn Ionization Equilibrium for the Non-Maxwellian Electron kappa-distributions: Updated Calculations
- EUV spectral line formation and the temperature structure of active region fan loops: observations with Hinode/EIS and SDO/AIA
- Widespread nanoflare variability detected with Hinode/XRT in a solar active region
- Heating of braided coronal loops
- Cool transition region loops observed by the Interface Region Imaging Spectrograph
- The Evolution of the EM Distribution in the Core of an Active Region
- Imaging and Spectroscopic Observations of a Transient Coronal Loop: Evidence for the Non-Maxwellian -Distributions
- Asymmetries in Coronal Spectral lines and Emission Measure Distribution
- Observations of Plasma Upflow in a Warm Loop with Hinode/EIS
- MHD modeling of coronal loops: the transition region throat
- Structure and Dynamics of the Accretion Process and Wind in TW Hya
- Active Region Moss: Doppler Shifts from Hinode/EIS Observations
- On the formation of solar wind & switchbacks, and quiet Sun heating
- Heating and cooling of coronal loops observed by SDO
- Doppler shift of hot coronal lines in a moss area of an active region
- The First Flight of the Marshall Grazing Incidence X-ray Spectrometer (MaGIXS)
- Solar Active Region Heating Diagnostics from High Temperature Emission using the Marshall Grazing Incidence X-ray Spectrometer (MaGIXS)
- Emission Measure Distribution for Diffuse Regions in Solar Active Regions
- On the Impulsive Heating of Quiet Solar Corona
- Energetics of small electron acceleration episodes in the solar corona from radio noise storm observations
- Transient Formation of Loops in the Core of an Active Region
- Non-equilibrium ionization by a periodic electron beam. I. Synthetic coronal spectra and implications for interpretation of observations
- Observations and modeling of the emerging EUV loops in the quiet Sun as seen with the Solar Dynamics Observatory
- Direct Observations of Plasma Upflows and Condensation in a Catastrophically Cooling Solar Transition Region Loop
- Heating of quiescent coronal loops caused by nearby eruptions observed with the Solar Dynamics Observatory and the Solar Upper Transition Region Imager
- Multifractal Solar EUV Intensity Fluctuations and their Implications for Coronal Heating Models