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首页> 外文期刊>The Astrophysical Journal. Letters >First M87 Event Horizon Telescope Results. V. Physical Origin of the Asymmetric Ring
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First M87 Event Horizon Telescope Results. V. Physical Origin of the Asymmetric Ring

机译:First M87活动地平线望远镜结果。 V.非对称环的物理来源

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摘要

The Event Horizon Telescope (EHT) has mapped the central compact radio source of the elliptical galaxy M87 at 1.3mm with unprecedented angular resolution. Here we consider the physical implications of the asymmetric ring seen in the 2017 EHT data. To this end, we construct a large library of models based on general relativistic magnetohydrodynamic (GRMHD) simulations and synthetic images produced by general relativistic ray tracing. We compare the observed visibilities with this library and confirm that the asymmetric ring is consistent with earlier predictions of strong gravitational lensing of synchrotron emission from a hot plasma orbiting near the black hole event horizon. The ring radius and ring asymmetry depend on black hole mass and spin, respectively, and both are therefore expected to be stable when observed in future EHT campaigns. Overall, the observed image is consistent with expectations for the shadow of a spinning Kerr black hole as predicted by general relativity. If the black hole spin and M87's large scale jet are aligned, then the black hole spin vector is pointed away from Earth. Models in our library of non-spinning black holes are inconsistent with the observations as they do not produce sufficiently powerful jets. At the same time, in those models that produce a sufficiently powerful jet, the latter is powered by extraction of black hole spin energy through mechanisms akin to the Blandford-Znajek process. We briefly consider alternatives to a black hole for the central compact object. Analysis of existing EHT polarization data and data taken simultaneously at other wavelengths will soon enable new tests of the GRMHD models, as will future EHT campaigns at 230 and 345 GHz.
机译:事件Horizo​​ n Telescope(EHT)映射了椭圆形星系M87的中心紧凑型无线电源,以前所未有的角度分辨率为1.3mm。在这里,我们考虑在2017年EHT数据中看到的非对称环的物理影响。为此,我们基于一般相对论磁力流体动力学(GRMHD)模拟和一般相对主义射线追踪产生的合成图像构建一个大型模型库。我们将观察到的可见性与该库进行比较,并确认不对称环与早期预测来自黑洞事件范围附近的热等离子体轨道的同步旋转的强度重力透镜。环半径和环不对称依赖于黑洞质量和旋转,因此预计在未来的EHT活动中观察到时都会稳定。总的来说,观察到的图像与一般相对性预测的旋转克尔黑洞的阴影的期望一致。如果黑洞旋转和M87的大规模射流进行对齐,则将黑洞旋转载体指向远离地球。我们的非旋转黑洞图书馆的模型与观察结果不一致,因为它们不会产生足够强大的喷气机。与此同时,在生产足够强大的喷射的那些模型中,后者通过用类似于Blandford-Znajek工艺的机制来提取黑洞旋转能量。我们简要考虑了中央紧凑型物体的黑洞的替代品。在其他波长上同时采取的现有EHT偏振数据和数据的分析将很快实现GRMHD型号的新测试,因为230和345 GHz的未来EHT广告系列将成为未来的EHT活动。

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  • 来源
    《The Astrophysical Journal. Letters》 |2019年第1期|共31页
  • 作者单位

    National Radio Astronomy Observatory 520 Edgemont Rd Charlottesville VA 22903 USA;

    Instituto de Astrofísica de Andalucía-CSIC Glorieta de la Astronomía s/n E-18008 Granada Spain;

    Max-Planck-Institut für Radioastronomie Auf dem Hügel 69 D-53121 Bonn Germany;

    Institute of Astronomy and Astrophysics Academia Sinica 11F of Astronomy-Mathematics Building AS/NTU No. 1 Sec. 4 Roosevelt Rd Taipei 10617 Taiwan R.O.C.;

    Departament d'Astronomia i Astrofísica Universitat de València C. Dr. Moliner 50 E-46100 Burjassot València Spain;

    Max-Planck-Institut für Radioastronomie Auf dem Hügel 69 D-53121 Bonn Germany;

    Steward Observatory and Department of Astronomy University of Arizona 933 N. Cherry Ave. Tucson AZ 85721 USA;

    Black Hole Initiative at Harvard University 20 Garden Street Cambridge MA 02138 USA;

    Massachusetts Institute of Technology Haystack Observatory 99 Millstone Road Westford MA 01886 USA;

    East Asian Observatory 660 N. A'ohoku Pl. Hilo HI 96720 USA;

    Black Hole Initiative at Harvard University 20 Garden Street Cambridge MA 02138 USA;

    Nederlandse Onderzoekschool voor Astronomie (NOVA) PO Box 9513 2300 RA Leiden The Netherlands;

    Black Hole Initiative at Harvard University 20 Garden Street Cambridge MA 02138 USA;

    Institute of Astronomy and Astrophysics Academia Sinica 645 N. A'ohoku Place Hilo HI 96720 USA;

    Institut de Radioastronomie Millimétrique 300 rue de la Piscine 38406 Saint Martin d'Hères France;

    Department of Astrophysics Institute for Mathematics Astrophysics and Particle Physics (IMAPP) Radboud University P.O. Box 9010 6500 GL Nijmegen The Netherlands;

    Black Hole Initiative at Harvard University 20 Garden Street Cambridge MA 02138 USA;

    Max-Planck-Institut für Radioastronomie Auf dem Hügel 69 D-53121 Bonn Germany;

    Perimeter Institute for Theoretical Physics 31 Caroline Street North Waterloo ON N2L 2Y5 Canada;

    Institut de Radioastronomie Millimétrique 300 rue de la Piscine 38406 Saint Martin d'Hères France;

    Department of Astrophysics Institute for Mathematics Astrophysics and Particle Physics (IMAPP) Radboud University P.O. Box 9010 6500 GL Nijmegen The Netherlands;

    Korea Astronomy and Space Science Institute Daedeok-daero 776 Yuseong-gu Daejeon 34055 Republic of Korea;

    Kavli Institute for Cosmological Physics University of Chicago Chicago IL 60637 USA;

    Black Hole Initiative at Harvard University 20 Garden Street Cambridge MA 02138 USA;

    Steward Observatory and Department of Astronomy University of Arizona 933 N. Cherry Ave. Tucson AZ 85721 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 天体力学(理论天文学);
  • 关键词

    accretion; accretion disks; black hole physics; galaxies: individual (M87); galaxies: jets; magnetohydrodynamics (MHD); techniques: high angular resolution;

    机译:accretion;吸收磁盘;黑洞物理;星系:个人(M87);星系:喷射器;磁力流体动力学(MHD);技术:高角度分辨率;

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