Scaling Laws and Temperature Profiles for Solar and Stellar Coronal Loops with Non-uniform Heating
arXiv:0804.2241 · doi:10.1088/0004-637X/714/2/1290
Abstract
The bulk of solar coronal radiative loss consists of soft X-ray emission from quasi-static loops at the cores of Active Regions. In order to develop diagnostics for determining the heating mechanism of these loops from observations by coronal imaging instruments, I have developed analytical solutions for the temperature structure and scaling laws of loop strands for a wide range of heating functions, including footpoint heating, uniform heating, and heating concentrated at the loop apex. Key results are that the temperature profile depends only weakly on the heating distribution -- not sufficiently to be of significant diagnostic value -- and that the scaling laws survive for this wide range of heating distributions, but with the constant of proportionality in the RTV scaling law () depending on the specific heating function. Furthermore, quasi-static analytical solutions do not exist for an excessive concentration of heating near the loop footpoints, a result in agreement with recent numerical simulations. It is demonstrated that a generalization of the solutions to the case of a strand with a variable diameter leads to only relatively small correction factors in the scaling laws and temperature profiles for constant diameter loop strands. A quintet of leading theoretical coronal heating mechanisms is shown to be captured by the formalism of this paper, and the differences in thermal structure between them may be verified through observations. Preliminary results from full numerical simulations demonstrate that, despite the simplifying assumptions, the analytical solutions from this paper are stable and accurate.
4 figures, two in two parts, i.e., 6 total. Submitted to ApJ
References in corpus (6)
- On the Size of Structures in the Solar Corona
- Evidence for Steady Heating: Observations of an Active Region Core with Hinode and TRACE
- Solar Coronal Structures and Stray Light in TRACE
- Modeling X-ray Loops and EUV "Moss" in an Active Region Core
- Are constant loop widths an artifact of the background and the spatial resolution?
- Observations of Transient Active Region Heating with Hinode
Cited by in corpus (26)
- Heating of the Solar Chromosphere and Corona by Alfven Wave Turbulence
- The Properties of the Solar Corona and Its Connection to the Solar Wind
- Enthalpy-based Thermal Evolution of Loops: II. Improvements to the Model
- Semi-empirical Modeling of the Photosphere, Chromosphere, Transition Region, and Corona of the M-dwarf Host Star GJ 832
- Long-period intensity pulsations in the solar corona during activity cycle 23
- The Role of Asymmetries in Thermal Non-Equilibrium
- The Coronal Veil
- The Distinction Between Thermal Nonequilibrium and Thermal Instability
- Suppression of parallel transport in turbulent magnetized plasmas and its impact on non-thermal and thermal aspects of solar flares
- Constraining a Model of Turbulent Coronal Heating for AU Microscopii with X-Ray, Radio, and Millimeter Observations
- Phase mixing of nonlinear Alfven waves
- Extremely Large Extreme-ultraviolet Late Phase Powered by Intense Early Heating in a Non-eruptive Solar Flare
- Coronal Loop Scaling Laws for Various Forms of Parallel Heat Conduction
- Static and dynamic solar coronal loops with cross-sectional area variations
- Heating Mechanisms for Intermittent Loops in Active Region Cores from AIA/SDO EUV Observations
- Probing the Production of Extreme-ultraviolet Late-Phase Solar Flares by Using the Model Enthalpy-Based Thermal Evolution of Loops
- Giant coronal loops dominate the quiescent X-ray emission in rapidly rotating M stars
- Electron Heat Flux in the Solar Wind: Generalized Approaches to Fluid Transport with a Variety of Skewed Velocity Distributions
- Modeling Active Region Transient Brightenings Observed with XRT as Multi-Stranded Loops
- Explaining Inverted Temperature Loops in the Quiet Solar Corona with Magnetohydrodynamic Wave Mode Conversion
- Scaling Laws for Dynamic Solar Loops
- Temperature and Differential Emission Measure Profiles in Turbulent Solar Active Region Loops
- Signatures of Type III Solar Radio Bursts from Nanoflares: Modeling
- Dominance of Bursty over Steady Heating of the 4--8 MK Coronal Plasma in a Solar Active Region: Quantification using Maps of Minimum, Maximum, and Average Brightness
- The Transition Region of Solar Flare Loops
- On the intermittency of hot plasma loops in the solar corona