New black hole spin values for Sagittarius A* obtained with the outflow method

Author:

Daly Ruth A1ORCID,Donahue Megan2,O’Dea Christopher P3ORCID,Sebastian Biny3,Haggard Daryl456,Lu Anan45ORCID

Affiliation:

1. Department of Physics, Penn State University , Berks Campus, Reading, PA 19610-6009 , USA

2. Department of Physics & Astronomy, Michigan State University , East Lansing, MI 48824 , USA

3. Department of Physics & Astronomy, University of Manitoba , 30A Sifton Rd., Winnipeg, MB R3T 2N2 , Canada

4. Department of Physics, McGill University , 3600 University Street, Montréal, QC H3A 2T8 , Canada

5. McGill Space Institute, McGill University , 3550 University Street, Montréal, QC H3A 2A7 , Canada

6. CIFAR Azrieli Global Scholar, Gravity & the Extreme Universe Program, Canadian Institute for Advanced Research , 661 University Avenue, Suite 505, Toronto, ON M5G 1M1 , Canada

Abstract

ABSTRACT Six archival Chandra observations are matched with eight sets of radio data and studied in the context of the outflow method to measure and study the spin properties of $\rm {Sgr ~A^{*}}$. Three radio and X-ray data sets obtained simultaneously, or partially simultaneously, are identified as preferred for the purpose of measuring the spin properties of $\rm {Sgr ~A^{*}}$. Similar results are obtained with other data sets. Results obtained with the preferred data sets are combined and indicate weighted mean values of the spin function of $F = 0.62 \pm 0.10$ and dimensionless spin angular momentum of $a_* = 0.90 \pm 0.06$. The spin function translates into measurements of the black hole rotational mass, Mrot, irreducible mass, Mirr, and spin mass–energy available for extraction, Mspin, relative to the total black hole dynamical mass, Mdyn. Weighted mean values of (Mrot/Mdyn) = (0.53 ± 0.06), (Mirr/Mdyn) = (0.85 ± 0.04), (Mspin/Mdyn) = (0.15 ± 0.04), Mrot = (2.2 ± 0.3) × 106 M⊙, Mirr = (3.5 ± 0.2) × 106 M⊙, and Mspin = (6.2 ± 1.6) × 105 M⊙ are obtained; of course (Mrot/Mirr) = (0.62 ± 0.10) since (Mrot/Mirr) = F. Values obtained for $\rm {Sgr ~A^{*}}$ are compared with those obtained for M87 based on the published spin function, which indicate that M87 carries substantially more rotational energy and spin mass–energy relative to the total (i.e. dynamical) black hole mass, the irreducible black hole mass, and in absolute terms.

Funder

NASA

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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