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Chris Osborne

Publications and source records attributed to Chris Osborne.

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Signatures of photospheric convection throughout the solar atmosphere: the EVE Sun-as-a-star mHz continuum

Convectively driven motions in the solar photosphere can generate broadband Doppler variability across the chromosphere, transition region and corona. Here we investigate this variability using "Sun-as-a-Star" observations from the Extreme Ultraviolet Variability Experiment (EVE) aboard the Solar Dynamics Observatory, constructing high signal-to-noise Doppler power spectra from incoherently summed 3-hour sequences of the centroid wavelengths of emission lines that span wavelengths 35-104 nm. The spectra reveal a broad power-spectral continuum with two Harvey-like components, one of which extends to the Nyquist frequency at 50 mHz with a steep power-law tail. Lines formed in the corona, as compared with those of the chromosphere/transition region, have substantially less Doppler amplitude in the 5 mHz Harvey component associated with granulation-scale convection. Based on the observed continuum, there is no evidence (in any of the 26 lines studied) for Kolmogorov turbulence, which predicts a flat continuum component with Doppler variance ~ f^{-5/3) as a function of frequency f. The total inferred non-thermal RMS velocities (>0.1 mHz) are of order 15 km/s, consistent with previous coronal "microturbulence" estimates from non-thermal line widths. These observations provide the first clear detection of Sun-as-a-star EUV Doppler variability above about 10 mHz and demonstrate the potential of full-disk EUV spectroscopy to probe turbulent energy transport throughout the solar atmosphere.

astro-ph.SR

Observational signatures of mixing-induced cooling in the Kelvin-Helmholtz instability

Cool ($\approx 10^4$K), dense material permeates the hot ($\approx 10^6$K), tenuous solar corona in form of coronal condensations, for example prominences and coronal rain. As the solar atmosphere evolves, turbulence can drive mixing between the condensations and the surrounding corona, with the mixing layer exhibiting an enhancement in emission from intermediate temperature ($\approx10^5$K) spectral lines, which is often attributed to turbulent heating within the mixing layer. However, radiative cooling is highly efficient at intermediate temperatures and numerical simulations have shown that radiative cooling can far exceed turbulent heating in prominence-corona mixing scenarios. As such the mixing layer can have a net loss of thermal energy, i.e., the mixing layer is cooling rather than heating. Here, we investigate the observational signatures of cooling processes in Kelvin-Helmholtz mixing between a prominence thread and the surrounding solar corona through 2D numerical simulations. Optically thin emission is synthesised for Si IV, along with optically thick emission for H$\alpha$, Ca II K and Mg II h using Lightweaver The Mg II h probes the turbulent mixing layer, whereas H$\alpha$ and Ca II K form within the thread and along its boundary respectively. As the mixing evolves, intermediate temperatures form leading to an increase in Si IV emission, which coincides with increased radiative losses. The simulation is dominated by cooling in the mixing layer, rather than turbulent heating, and yet enhanced emission in warm lines is produced. As such, an observational signature of decreased emission in cooler lines and increased emission in hotter lines may be a signature of mixing, rather than an implication of heating.

astro-ph.SR