Herschel water maps towards the vicinity of the black hole Sgr A

被引:3
|
作者
Armijos-Abendano, J. [1 ,2 ]
Martin-Pintado, J. [2 ]
Requena-Torres, M. A. [3 ,4 ]
Gonzalez-Alfonso, E. [5 ]
Guesten, R. [4 ]
Weiss, A. [4 ]
Harris, A., I [3 ]
Israel, F. P. [6 ]
Kramer, C. [7 ]
Stutzki, J. [8 ]
van der Werf, P. [6 ]
机构
[1] Escuela Politec Nacl, Observ Astron Quito, Av Gran Colombia S-N,Interior Parque La Alameda, Quito 170136, Ecuador
[2] CSIC, INTA, Ctr Astrobiol, Ctra Ajalvir,km 4, Madrid 28850, Spain
[3] Univ Maryland, Dept Astron, College Pk, MD 20742 USA
[4] Max Planck Inst Radioastron, Hugel 69, D-53121 Bonn, Germany
[5] Univ Alcala de Henares, Dept Fis, Campus Univ, Madrid 28871, Spain
[6] Leiden Univ, Leiden Observ, POB 9513, NL-2300 RA Leiden, Netherlands
[7] IRAM, Ave Divina Pastora 7, E-18012 Granada, Spain
[8] Univ Cologne, Phsikal Inst 1, KOSMA, Zulpicher Str 77, D-50937 Cologne, Germany
关键词
Galaxy: nucleus; ISM: molecules; ISM: abundances; MASSIVE STAR-FORMATION; SAGITTARIUS-A-EAST; WARM MOLECULAR GAS; CENTRAL; PARSECS; GALACTIC-CENTER; LINE EMISSION; SIO EMISSION; IONIZED-GAS; DYNAMICS; CO;
D O I
10.1051/0004-6361/201833897
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Aims. We study the spatial distribution and kinematics of water emission in a similar to 8 x 8 pc(2) region of the Galactic center (GC) that covers the main molecular features around the supermassive black hole Sagittarius A* (Sgr A*). We also analyze the water excitation to derive the physical conditions and water abundances in the circumnuclear disk (CND) and the "quiescent clouds". Methods. We presented the integrated line intensity maps of the ortho 1(10) - 1(01), and para 2(02) - 1(11) and 1(11) - 0(00) water transitions observed using the On the Fly mapping mode with the Heterodyne Instrument for the Far Infrared (HIFI) on board Herschel. To study the water excitation, we used HIFI observations of the ground state ortho and para (H2O)-O-18 transitions toward three selected positions in the vicinity of Sgr A*. In our study, we also used dust continuum measurements of the CND, obtained with the Spectral and Photometric Imaging REceiver (SPIRE) instrument. Using a non-local thermodynamical equilibrium (LTE) radiative transfer code, the water line profiles and dust continuum were modeled, deriving H2O abundances (XH2O), turbulent velocities (V-t), and dust temperatures (T-d). We also used a rotating ring model to reproduce the CND kinematics represented by the position velocity (PV) diagram derived from para 2(02) - 1(11) H2O lines. Results. In our H2O maps we identify the emission associated with known features around Sgr A*: CND, the Western Streamer, and the 20 and 50 km s(-1) clouds. The ground-state ortho water maps show absorption structures in the velocity range of [-220,10] km s 1 associated with foreground sources. The PV diagram reveals that the 2(02) - 1(11) H2O emission traces the CND also observed in other high-dipole molecules such as SiO, HCN, and CN. Using the non-LTE code, we derive high XH2O of similar to (0.1-1.3) x 10(-5), V-t of 14-23 km s(-1), and T-d of 15-45 K for the CND, and the lower XH2O of 4 x 10(-8) and V-t of 9 km s(-1) for the 20 km s(-1) cloud. Collisional excitation and dust effects are responsible for the water excitation in the southwest lobe of the CND and the 20 km s(-1) cloud, whereas only collisions can account for the water excitation in the northeast lobe of the CND. We propose that the water vapor in the CND is produced by grain sputtering by shocks of 10-20 km s(-1), with some contribution of high temperature and cosmic-ray chemistries plus a photon-dominated region chemistry, whereas the low XH2O derived for the 20 km s(-1) cloud could be partially a consequence of the water freeze-out on grains.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Light propagation in the vicinity of the ModMax black hole
    Guzman-Herrera, E.
    Breton, N.
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2024, (01):
  • [22] Compton reflection in the vicinity of a rotating black hole
    Maciolek-Niedzwiecki, A
    Magdziarz, P
    HOT UNIVERSE, 1998, (188): : 409 - 410
  • [23] Black Hole Shadows Constrain Extended Gravity 2: Sgr A
    Prokopov, V. A.
    Alexeyev, S. O.
    Zenin, O. I.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2022, 135 (06) : 842 - 843
  • [24] High energy radiation from the Galactic black hole Sgr A*
    Cheng, K. S.
    Chernyshov, D. O.
    Dogiel, V.
    NUCLEAR PHYSICS B-PROCEEDINGS SUPPLEMENTS, 2008, 175 : 383 - 388
  • [25] Modeling the Sgr A* Black Hole Immersed in a Dark Matter Spike
    Nampalliwar, Sourabh
    Kumar, Saurabh
    Jusufi, Kimet
    Wu, Qiang
    Jamil, Mubasher
    Salucci, Paolo
    ASTROPHYSICAL JOURNAL, 2021, 916 (02):
  • [26] Black Hole Shadows Constrain Extended Gravity 2: Sgr A*
    V. A. Prokopov
    S. O. Alexeyev
    O. I. Zenin
    Journal of Experimental and Theoretical Physics, 2022, 135 : 842 - 843
  • [27] What is SGR A*? The starved black hole in the center of the Milky Way
    Falcke, H
    UNSOLVED PROBLEMS OF THE MILKY WAY, 1996, (169): : 169 - 180
  • [28] UHECR production by a compact black hole dynamo: application to Sgr A
    Levinson, A
    Boldt, E
    ASTROPARTICLE PHYSICS, 2002, 16 (03) : 265 - 270
  • [29] Centrifugal acceleration of protons in the vicinity of a supermassive black hole
    Gunya, A. A.
    Istomin, Y. N.
    HIGH ENERGY PHENOMENA IN RELATIVISTIC OUTFLOWS VII, HEPRO VII, 2020,
  • [30] THE FATE OF LORENTZ FRAME IN THE VICINITY OF BLACK HOLE SINGULARITY
    Moore, Douglas G.
    Satheeshkumar, V. H.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2013, 22 (12):