Chemical tracers of episodic accretion in low-mass protostars
arXiv:1503.04951 · doi:10.1051/0004-6361/201425365
Abstract
Aims: Accretion rates in low-mass protostars can be highly variable in time. Each accretion burst is accompanied by a temporary increase in luminosity, heating up the circumstellar envelope and altering the chemical composition of the gas and dust. This paper aims to study such chemical effects and discusses the feasibility of using molecular spectroscopy as a tracer of episodic accretion rates and timescales. Methods: We simulate a strong accretion burst in a diverse sample of 25 spherical envelope models by increasing the luminosity to 100 times the observed value. Using a comprehensive gas-grain network, we follow the chemical evolution during the burst and for up to 10^5 yr after the system returns to quiescence. The resulting abundance profiles are fed into a line radiative transfer code to simulate rotational spectra of C18O, HCO+, H13CO+, and N2H+ at a series of time steps. We compare these spectra to observations taken from the literature and to previously unpublished data of HCO+ and N2H+ 6-5 from the Herschel Space Observatory. Results: The bursts are strong enough to evaporate CO throughout the envelope, which in turn enhances the abundance of HCO+ and reduces that of N2H+. After the burst, it takes 10^3-10^4 yr for CO to refreeze and for HCO+ and N2H+ to return to normal. The chemical effects of the burst remain visible in the rotational spectra for as long as 10^5 yr after the burst has ended, highlighting the importance of considering luminosity variations when analyzing molecular line observations in protostars. The spherical models are currently not accurate enough to derive robust timescales from single-dish observations. As follow-up work, we suggest that the models be calibrated against spatially resolved observations in order to identify the best tracers to be used for statistically significant source samples.
Accepted by A&A; 12 pages, 7 figures
References in corpus (9)
- The c2d Spitzer spectroscopic survey of ices around low-mass young stellar objects II: CO2
- The N2D+/N2H+ ratio as an evolutionary tracer of Class 0 protostars
- Infall-Driven Protostellar Accretion and the Solution to the Luminosity Problem
- APEX-CHAMP+ high-J CO observations of low-mass young stellar objects: IV. Mechanical and radiative feedback
- Young Stellar Object Variability (YSOVAR): Long Timescale Variations in the Mid-Infrared
- HOPS 383: An Outbursting Class 0 Protostar in Orion
- Water in Low-Mass Star-Forming Regions with Herschel: The Link Between Water Gas and Ice in Protostellar Envelopes
- Astro & cosmo-chemical consequences of accretion bursts I: the D/H ratio of water
- X-ray emission from an FU Ori star in early outburst: HBC 722
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- Constraining the Rate of Protostellar Accretion Outbursts in the Orion Molecular Clouds
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- The Rate, Amplitude and Duration of Outbursts from Class 0 Protostars in Orion
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- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars I. Identifying and Characterizing the Protostellar Content of the OMC2-FIR4 and OMC2-FIR3 Regions
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