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Toward Resolving the Outflow Engine: An Observational Perspective

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arxiv astro-ph/0605597 v1 pith:5Y6CBVDE submitted 2006-05-23 astro-ph

classification astro-ph
keywords jetsaccretiondatadiskhowevermodelsobservationalscales
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Jets from young stars represent one of the most striking signposts of star formation. The phenomenon has been researched for over two decades and there is now general agreement that such jets are generated as a by-product of accretion; most likely by the accretion disk itself. Thus they mimic what occurs in more exotic objects such as active galactic nuclei and micro-quasars. The precise mechanism for their production however remains a mystery. To a large degree, progress is hampered observationally by the embedded nature of many jet sources as well as a lack of spatial resolution: Crude estimates, as well as more sophisticated models, nevertheless suggest that jets are accelerated and focused on scales of a few AU at most. It is only in the past few years however that we have begun to probe such scales in detail using classical T Tauri stars as touchstones. Application of adaptive optics, data provided by the HST, use of specialised techniques such as spectro-astrometry, and the development of spectral diagnostic tools, are beginning to reveal conditions in the jet launch zone. This has helped enormously to constrain models. Further improvements in the quality of the observational data are expected when the new generation of interferometers come on-line. Here we review some of the most dramatic findings in this area since Protostars and Planets~IV including indications for jet rotation, i.e. that they transport angular momentum. We will also show how measurements, such as those of width and the velocity field close to the source, suggest jets are initially launched as warm magneto-centrifugal disk winds. (abridged)

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 27 citations worldwide. Full citation record

  1. JWST/MIRI Detection of Molecular H$_2$ Winds from an Edge-on Class II Source HV Tau C

    astro-ph.SR 2026-07 conditional novelty 6.0 of 10

    The edge-on Class II disk HV Tau C hosts a spatially extended, wide-angled molecular hydrogen wind with warm (~600 K) and hot (~2000 K) components and a mass-loss rate near 1e-8 solar masses per year.

  2. Spin-down of solar-mass protostars in magnetospheric accretion paradigm

    astro-ph.SR 2024-12 conditional novelty 6.0 of 10

    Three-dimensional effects in magnetospheric accretion, especially failed winds and a conical disk wind, spin down solar-mass protostars within about a million years.

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