Constraints on the Heating of High Temperature Active Region Loops: Observations from Hinode and SDO
arXiv:1009.5976 · doi:10.1088/0004-637X/734/2/90
Abstract
We present observations of high temperature emission in the core of a solar active region using instruments on Hinode and SDO. These multi-instrument observations allow us to determine the distribution of plasma temperatures and follow the evolution of emission at different temperatures. We find that at the apex of the high temperature loops the emission measure distribution is strongly peaked near 4 MK and falls off sharply at both higher and lower temperatures. Perhaps most significantly, the emission measure at 0.5 MK is reduced by more than two orders of magnitude from the peak at 4 MK. We also find that the temporal evolution in broad-band soft X-ray images is relatively constant over about 6 hours of observing. Observations in the cooler SDO/AIA bandpasses generally do not show cooling loops in the core of the active region, consistent with the steady emission observed at high temperatures. These observations suggest that the high temperature loops observed in the core of an active region are close to equilibrium. We find that it is possible to reproduce the relative intensities of high temperature emission lines with a simple, high-frequency heating scenario where heating events occur on time scales much less than a cooling time. In contrast, low-frequency heating scenarios, which are commonly invoked to describe nanoflare models of coronal heating, do not reproduce the relative intensities of high temperature emission lines and predict low-temperature emission that is approximately an order of magnitude too large. We also present an initial look at images from the SDO/AIA 94 A channel, which is sensitive to Fe XVIII.
Movies are available at http://tcrb.nrl.navy.mil/~hwarren/temp/papers/active_region_core/ Paper has been refereed and revised
References in corpus (7)
- Highly Efficient Modeling of Dynamic Coronal Loops
- Coronal Temperature Diagnostic Capability of the Hinode/X-Ray Telescope Based on Self-Consistent Calibration
- The Temperature and Density Structure of the Solar Corona. I. Observations of the Quiet Sun with the EUV Imaging Spectrometer (EIS) on Hinode
- Hinode/Extreme-Ultraviolet Imaging Spectrometer Observations of the Temperature Structure of the Quiet Corona
- Flows and Motions in Moss in the Core of a Flaring Active Region: Evidence for Steady Heating
- Modeling X-ray Loops and EUV "Moss" in an Active Region Core
- The Role of Magnetic Topology in the Heating of Active Region Coronal Loops
Cited by in corpus (68)
- The FIP and Inverse FIP Effects in Solar and Stellar Coronae
- A Systematic Survey of High Temperature Emission in Solar Active Regions
- Observing coronal nanoflares in active region moss
- Enthalpy-based Thermal Evolution of Loops: II. Improvements to the Model
- Using a Differential Emission Measure and Density Measurements in an Active Region Core to Test a Steady Heating Model
- Photometric and Thermal Cross-calibration of Solar EUV Instruments
- Patterns of Nanoflare Storm Heating Exhibited by an Active Region Observed with SDO/AIA
- Evidence for evaporation-incomplete condensation cycles in warm solar coronal loops
- Numerical Simulations of Coronal Heating through Footpoint Braiding
- Emission Measure Distribution and Heating of Two Active Region Cores
- Diagnosing the time-dependence of active region core heating from the emission measure: I. Low-frequency nanoflares
- Measurements of Absolute Abundances in Solar Flares
- Coronal Temperature Diagnostic Capability of the Hinode/X-Ray Telescope Based on Self-Consistent Calibration
- Hinode/EIS spectroscopic validation of very hot plasma imaged with Solar Dynamics Observatory in non-flaring active region cores
- Fast Differential Emission Measure Inversion of Solar Coronal Data
- Closed-Field Coronal Heating Driven by Wave Turbulence
- On the Accuracy of the Differential Emission Measure Diagnostics of Solar Plasmas. Application to AIA/SDO. Part II: Multithermal plasmas
- Inference of Heating Properties from "Hot" Non-flaring Plasmas in Active Region Cores I. Single Nanoflares
- Modeling the Line-of-Sight Integrated Emission in the Corona: Implications for Coronal Heating
- On the Accuracy of the Differential Emission Measure Diagnostics of Solar Plasmas. Application to AIA/SDO. Part I: Isothermal plasmas
- The Heating of Solar Coronal Loops by Alfven Wave Turbulence
- Is the High-Resolution Coronal Imager Resolving Coronal Strands? Results from AR 12712
- The first X-ray imaging spectroscopy of quiescent solar active regions with NuSTAR
- Can the Differential Emission Measure constrain the timescale of energy deposition
- 3D MHD modeling of twisted coronal loops
- The coronal source of extreme-ultraviolet line profile asymmetries in solar active region outflows
- Investigating the reliability of coronal emission measure distribution diagnostics using 3D radiative MHD simulations
- Contribution of mode coupling and phase-mixing of Alfvén waves to coronal heating
- The effects of numerical resolution, heating timescales and background heating on thermal non-equilibrium in coronal loops
- Observing the formation of flare-driven coronal rain
- Diagnosing the time-dependence of active region core heating from the emission measure: II. Nanoflare trains
- Plasma sloshing in pulse-heated solar and stellar coronal loops
- Inference of Heating Properties from "Hot" Non-flaring Plasmas in Active Region Cores. II. Nanoflare Trains
- The Cooling of Coronal Plasmas. iv: Catastrophic Cooling of Loops
- Determining heating time scales in solar active region cores from AIA/SDO Fe XVIII images
- Constraining Hot Plasma in a Non-flaring Solar Active Region with FOXSI Hard X-ray Observations
- Patterns of Activity in a Global Model of a Solar Active Region
- The Evolution of the EM Distribution in the Core of an Active Region
- Spectroscopic Observations of Fe XVIII in Solar Active Regions
- Statistical Signatures of Nanoflare Activity. I. Monte Carlo Simulations and Parameter-space Exploration
- Improved AI-generated Solar Farside Magnetograms by STEREO and SDO Data Sets and Their Release
- Understanding Heating in Active Region Cores through Machine Learning I. Numerical Modeling and Predicted Observables
- The role of radiative losses in the late evolution of pulse-heated coronal loops/strands
- The Slowly Varying Corona: I --- Daily Differential Emission Measure Distributions Derived from EVE Spectra
- Can a Long Nanoflare Storm Explain the Observed Emission Measure Distributions in Active Region Cores?
- Coronal heating in multiple magnetic threads
- Fan Loops Observed by IRIS, EIS and AIA
- Structures in the outer solar atmosphere
- Towards a Quantitative Comparison of Magnetic Field Extrapolations and Observed Coronal Loops
- Solar microflares: a case study on temperatures and the Fe XVIII emission
- Thermal structure of hot non-flaring corona from Hinode/EIS
- The Coronal Abundances of Mid-F Dwarfs
- A new approach for modelling chromospheric evaporation in response to enhanced coronal heating: II Non-uniform heating
- A model for heating the super-hot corona in solar active regions
- A nanoflare based cellular automaton model and the observed properties of the coronal plasma
- Heating Mechanisms for Intermittent Loops in Active Region Cores from AIA/SDO EUV Observations
- Signatures of the non-Maxwellian -distributions in optically thin line spectra. II. Synthetic Fe XVII--XVIII X-ray coronal spectra and predictions for the Marshall Grazing-Incidence X-ray Spectrometer (MaGIXS)
- Electron Densities in the Solar Corona Measured Simultaneously in the Extreme-Ultraviolet and Infra-Red
- Coronal Abundances in an Active Region: Evolution and Underlying Chromospheric and Transition Region Properties
- Non-equilibrium ionization by a periodic electron beam. I. Synthetic coronal spectra and implications for interpretation of observations
- Properties of the diffuse emission around warm loops in solar active regions
- Sparse Bayesian Inference and the Temperature Structure of the Solar Corona
- Understanding Heating in Active Region Cores through Machine Learning II. Classifying Observations
- Hot coronal loops associated with umbral brightenings
- Nanoflare Diagnostics from Magnetohydrodynamic Heating Profiles
- Multifractal Solar EUV Intensity Fluctuations and their Implications for Coronal Heating Models
- Solar cycle observations of the Neon abundance in the Sun-as-a-star
- Thermal Non-equilibrium Cycles in a Non-eruptive Pseudo-Streamer