SearcharxivSearch

arXiv · astro-ph/0103223

A molecular-line study of clumps with embedded high-mass protostar candidates

Abstract

We present molecular line observations made with the IRAM 30-m telescope of the immediate surroundings of a sample of 11 candidate high-mass protostars. These observations are part of an effort to clarify the evolutionary status of a set of objects which we consider to be precursors of UC HII regions. We find that the present data are consistent with such an interpretation. The sources have FIR luminosities indicating the presence of B2.5 to O8.5V0 stars, are associated with dense gas and dust, have (sub-)mm continuum spectra indicating temperatures of ca. 30K, and have no detectable radio continuum emission. All observed sources are associated with well-defined molecular clumps. Masses, sizes, and other parameters depend on the tracer used, but typically the cores have average diameters of ca. 0.5-1 pc, and masses of a few tens to a few thousand solar masses. Compared to a similar analysis of sources which are mostly identifyable with UC HII regions, the present sample has molecular clumps that are more massive, larger, cooler, and less turbulent. They also tend to have a smaller ratio of virial-to-luminous mass, indicating they are less dynamically stable than their counterparts embedded in the UC HII-like sources. The large sizes suggest these clumps should still undergo substantial contraction. The lower temperatures and small linewidths are also expected in objects in an earlier evolutionary state. We find that the masses of the molecular clumps associated with our objects increase with Lfir [M(clump) propto Lfir^(1.17)], and that there is a (weak) relation between the clump mass and the mass of the embedded protostellar object M(proto) propto M(clump)^(0.30).

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

J. Brand, R. Cesaroni, F. Palla, S. Molinari. 2001-03-14. A molecular-line study of clumps with embedded high-mass protostar candidates. https://doi.org/10.1051/0004-6361%3A20010190

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Deformation procedure for scalar fields in cosmology

This work offers an extension of the deformation procedure introduced in field theory to the case of standard cosmology in the presence of real scalar field in flat space-time. The procedure is shown to work for many models, which give rise to several different cosmic scenarios, evolving under the presence of first-order differential equations which solve the corresponding equations of motion very appropriately.

astro-ph

Dark Energy is the Cosmological Quantum Vacuum Energy of Light Particles-The Axion and the Lightest Neutrino

We uncover the general mechanism producing the dark energy(DE). This is only based on well known quantum physics and cosmology. We show that the observed DE originates from the cosmological quantum vacuum of light particles which provides a continuous energy distribution able to reproduce the data. Bosons give positive contributions to the DE while fermions yield negative contributions. As usual in field theory, ultraviolet divergences are subtracted from the physical quantities. The subtractions respect the symmetries of the theory and we normalize the physical quantities to be zero for the Minkowski vacuum. The resulting finite contributions to the energy density and the pressure from the quantum vacuum grow as log a(t) where a(t) is the scale factor, while the particle contributions dilute as 1/a^3(t), as it must be for massive particles. The DE equation of state P = w(z)H turns to be w(z)<-1 with w(z) asymptotically reaching the value -1 from below.A scalar particle can produce the observed DE through its quantum cosmological vacuum provided:(i)its mass is of the order of 10^{-3} eV = 1 meV,(ii) it is very weakly coupled and (iii) it is stable on the time scale of the age of the universe. The axion vacuum thus appears as a natural candidate. The neutrino vacuum (especially the lightest mass eigenstate) can give negative contributions to the DE. We find that w(z=0) is slightly below -1 by an amount ranging from [-1.5 10^{-3}] to [-8 10^{-3}] and we predict the axion mass to be in the range between 4 and 5 meV. We find that the universe will expand in the future faster than the de Sitter universe, as an exponential in the square of the cosmic time. DE arises from the quantum vacua of light particles in FRW cosmological space time in an analogous way to the Casimir effect in Minkowski spacetime with non trivial boundaries.

astro-ph