Regulation of accretion by its outflow in a symbiotic star: the 2016 outflow fast state of MWC 560

Author:

Lucy Adrian B1ORCID,Sokoloski J L12,Munari U3ORCID,Roy Nirupam4,Kuin N Paul M5ORCID,Rupen Michael P67,Knigge Christian8,Darnley M J9ORCID,Luna G J M1011,Somogyi Péter12,Valisa P13,Milani A13,Sollecchia U13,Weston Jennifer H S14

Affiliation:

1. Department of Astronomy, Columbia University, 550 West 120th Street, New York, NY 10027, USA

2. Large Synoptic Survey Telescope Corporation, 933 North Cherry Ave, Tucson, AZ 85721, USA

3. INAF Astronomical Observatory of Padova, I-36012 Asiago (VI), Italy

4. Department of Physics, Indian Institute of Science, Bangalore 560012, India

5. Mullard Space Science Laboratory, University College London, Holmbury St. Mary, Dorking, Surrey RH5 6NT, UK

6. National Radio Astronomy Observatory, Socorro, New Mexico 87801, USA

7. National Research Council, Herzberg Astronomy and Astrophysics, 717 White Lake Road, PO Box 248, Penticton, BC V2A 6J9, Canada

8. School of Physics and Astronomy, University of Southampton, Highfield, Southampton, SO17 1BJ, UK

9. Astrophysics Research Institute, Liverpool John Moores University, Liverpool, L3 5RF, UK

10. CONICET-Universidad de Buenos Aires, Instituto de Astronomía y Física del Espacio (IAFE), Av. Inte. Güiraldes 2620, C1428ZAA Buenos Aires, Argentina

11. Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, C1428EGA Buenos Aires, Argentina

12. Astronomical Ring for Access to Spectroscopy

13. ANS Collaboration, c/o Astronomical Observatory, I-36012 Asiago (VI), Italy

14. National Science Foundation, 415 Eisenhower Avenue, Alexandria, Virginia 22314, USA

Abstract

ABSTRACT How are accretion discs affected by their outflows? To address this question for white dwarfs accreting from cool giants, we performed optical, radio, X-ray, and ultraviolet observations of the outflow-driving symbiotic star MWC 560 (≡V694 Mon) during its 2016 optical high state. We tracked multi-wavelength changes that signalled an abrupt increase in outflow power at the initiation of a months-long outflow fast state, just as the optical flux peaked: (1) an abrupt doubling of Balmer absorption velocities; (2) the onset of a 20 μJy per month increase in radio flux; and (3) an order-of-magnitude increase in soft X-ray flux. Juxtaposing to prior X-ray observations and their coeval optical spectra, we infer that both high-velocity and low-velocity optical outflow components must be simultaneously present to yield a large soft X-ray flux, which may originate in shocks where these fast and slow absorbers collide. Our optical and ultraviolet spectra indicate that the broad absorption-line gas was fast, stable, and dense (≳106.5  cm−3) throughout the 2016 outflow fast state, steadily feeding a lower density (≲105.5 cm−3) region of radio-emitting gas. Persistent optical and ultraviolet flickering indicate that the accretion disc remained intact. The stability of these properties in 2016 contrasts to their instability during MWC 560’s 1990 outburst, even though the disc reached a similar accretion rate. We propose that the self-regulatory effect of a steady fast outflow from the disc in 2016 prevented a catastrophic ejection of the inner disc. This behaviour in a symbiotic binary resembles disc/outflow relationships governing accretion state changes in X-ray binaries.

Funder

NSF

Infosys Foundation

CIC-CONICET

ANPCYT-PICT

Science and Technology Facilities Council

UK Space Agency

Brinson Foundation

Moore Foundation

Mikulski Archive for Space Telescopes

NASA

NASA Office of Space Science

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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