Neutral Helium Triplet Spectroscopy of Quiescent Coronal Rain with Sensitivity Estimates for Spectropolarimetric Magnetic Field Diagnostics
arXiv:1809.02252 · doi:10.3847/1538-4357/aad962
Abstract
On account of its polarizability and magnetic field sensitivity, as well as the role of neutral helium in partially ionized solar environments, the neutral helium triplet (orthohelium) system provides important, yet under-utilized, diagnostics of solar coronal rain. This work describes off-limb observations of coronal rain in NOAA Active Region 12468 obtained in the He I 10830 triplet using the Massively MultipleXed Imaging Spectrograph experiment at the Dunn Solar Telescope along with co-temporal observations from NASA's Solar Dynamics Observatory and the Interface Region Imaging Spectrograph. We detect rain simultaneously in the IRIS 1400 and 2796 channels and in He I 10830 . The large degree of spatial coherence present between all channels agrees with previous observations of the multi-thermal nature of coronal rain. A statistical analysis of He I spectral profiles for rain identified via automated detection indicate He I line radiances are, on average, ergs cm s sr; the average translational velocity is 70 km s and Doppler widths are distributed around 10 km s. Based on these results, forward models of expected He I polarized signals allow us to estimate, using synthetic observables and an inversion algorithm including fits for the scattering angle constraining the material's location along-the-line of sight, the magnetic sensitivity of the upcoming National Science Foundation's Daniel K. Inouye Solar Telescope. We predict joint observations of the He I 10830 and 5876 multiplets, using first-light instrumentation, will provide inverted magnetic field errors of G () for spatial scales of ( km) assuming dynamically-limited integration times of 5.5 seconds.
Preprint version originally submitted to AAS journals. Accepted for publication in ApJ. See published article for Version of Record
References in corpus (12)
- Advanced Forward Modeling and Inversion of Stokes Profiles Resulting from the Joint Action of the Hanle and Zeeman Effects
- The multi-thermal and multi-stranded nature of coronal rain
- The influence of coronal EUV irradiance on the emission in the He I 10830 A and D3 multiplets
- The Coronal Monsoon: Thermal Nonequilibrium Revealed by Periodic Coronal Rain
- Continuous upflows and sporadic downflows observed in active regions
- Vector magnetic field measurements along a cooled stereo-imaged coronal loop
- Observing the formation of flare-driven coronal rain
- Multi-line Stokes inversion for prominence magnetic-field diagnostics
- Differences between Doppler velocities of ions and neutral atoms in a solar prominence
- Automated Spatiotemporal Analysis of Fibrils and Coronal Rain using the Rolling Hough Transform
- Effect of motions in prominences on the helium resonance lines in the extreme ultraviolet
- Infrared Imaging Spectroscopy Using Massively Multiplexed Slit-Based Techniques and Sub-Field Motion Correction
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- First direct observation of a torsional Alfvén oscillation at coronal heights
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- Using multi-line spectropolarimetric observations of forbidden emission lines to measure single-point coronal magnetic fields
- Formation of coronal rain triggered by impulsive heating associated with magnetic reconnection
- Three-dimensional magnetic field structure of a flux emerging region in the solar atmosphere
- Large ion-neutral drift velocities and plasma heating in partially ionized coronal rain blobs
- From Chromospheric Evaporation to Coronal Rain: An Investigation of the Mass and Energy Cycle of a Flare
- Revisiting the formation mechanism for coronal rain from previous studies