Witnessing the fragmentation of a filament into prestellar cores in Orion B/NGC 2024
arXiv:2301.10560 · doi:10.1051/0004-6361/202140857
Abstract
Recent Herschel observations of nearby clouds have shown that filamentary structures are ubiquitous and that most prestellar cores form in filaments. Probing the density () and velocity () structure of filaments is crucial for the understanding of the star formation process. To characterize both the and the field of a fragmenting filament, we mapped NGC2024. 13CO, C18O, and H13CO+ trace the filament seen in the data. The radial profile from the data shows ~0.081 pc, which is similar to the Herschel findings. The from 13CO and C18O are broader, while the from H13CO+ is narrower, than from Herschel. These results suggest that 13CO and C18O trace only the outer part of the filament and H13CO+ only the inner part. The H13CO+ map reveals gradients along both filament axis, as well as oscillations with a period ~0.2 pc along the major axis. Comparison between the and the distribution shows a tentative /4 shift in H13CO+ or C18O. This /4 shift is not simultaneously observed for all cores in any single tracer but is tentatively seen in either H13CO+ or C18O. We produced a toy model taking into account a transverse gradient, a longitudinal gradient, and a longitudinal oscillation mode caused by fragmentation. Examination of synthetic data shows that the oscillation component produces an oscillation pattern in the velocity structure function (VSF) of the model. The H13CO+ VSF shows an oscillation pattern, suggesting that our observations are partly tracing core-forming motions and fragmentation. We also found that the mean corresponds to the effective in the filament. This is consistent with a scenario in which higher-mass cores form in higher line-mass filaments.
accepted in A&A
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