Can Large Time Delays Observed in Light Curves of Coronal Loops be Explained by Impulsive Heating?
arXiv:1512.06146 · doi:10.3847/0004-637X/818/2/129
Abstract
The light curves of solar coronal loops often peak first in channels associated with higher temperatures and then in those associated with lower. The time delays between the different narrowband EUV channels have been measured for many individual loops and recently for every pixel of an active region observation. Time delays between channels for an active region exhibit a wide range of values, with maxima 5,000\,s. These large time delays make up 3-26\% (depending on the channel pair) of the pixels where a significant, positive time delay is measured. It has been suggested that time delays can be explained by impulsive heating. In this paper, we investigate whether the largest observed time delays can be explained by this hypothesis by simulating a series of coronal loops with different heating rates, loop lengths, abundances, and geometries to determine the range of expected time delays between a set of four EUV channels. We find that impulsive heating cannot address the largest time delays observed in two of the channel pairs and that the majority of the large time delays can only be explained by long, expanding loops with photospheric abundances. Additional observations may rule out these simulations as an explanation for the long time delays. We suggest that either the time delays found in this manner may not be representative of real loop evolution, or that the impulsive heating and cooling scenario may be too simple to explain the observations and other heating scenarios must be explored.
References in corpus (3)
Cited by in corpus (13)
- On The Fourier And Wavelet Analysis Of Coronal Time Series
- On the occurrence of thermal non-equilibrium in coronal loops
- Long-Period Intensity Pulsations in Coronal Loops Explained by Thermal Non-Equilibrium Cycles
- The Coronal Monsoon: Thermal Nonequilibrium Revealed by Periodic Coronal Rain
- The effects of numerical resolution, heating timescales and background heating on thermal non-equilibrium in coronal loops
- Multi-scale observations of thermal non-equilibrium cycles in coronal loops
- Understanding Heating in Active Region Cores through Machine Learning I. Numerical Modeling and Predicted Observables
- Manifestations of three dimensional magnetic reconnection in an eruption of a quiescent filament: \\ Filament strands turning to flare loops
- Signatures of Steady Heating in Time Lag Analysis of Coronal Emission
- Thermal non-equilibriuem revealed by periodic pulses of random amplitudes in solar coronal loops
- Identifying Observables that can Differentiate Between Impulsive and Footpoint Heating: Time Lags and Intensity Ratios
- EUV fine structure and variability associated with coronal rain revealed by Solar Orbiter/EUI HRIEUV and SPICE
- Transition region contribution to AIA observations in the context of coronal heating