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Published January 20, 2022 | Accepted Version + Published
Journal Article Open

The Variability of the Black Hole Image in M87 at the Dynamical Timescale

Satapathy, Kaushik ORCID icon
Psaltis, Dimitrios ORCID icon
Özel, Feryal
Medeiros, Lia ORCID icon
Dougall, Sean T. ORCID icon
Chan, Chi-Kwan ORCID icon
Wielgus, Maciek ORCID icon
Prather, Ben S. ORCID icon
Wong, George N. ORCID icon
Gammie, Charles F. ORCID icon
Akiyama, Kazunori ORCID icon
Alberdi, Antxon ORCID icon
Alef, Walter
Algaba, Juan Carlos ORCID icon
Anantua, Richard ORCID icon
Asada, Keiichi
Azulay, Rebecca ORCID icon
Baczko, Anne-Kathrin ORCID icon
Ball, David
Baloković, Mislav ORCID icon
Barrett, John ORCID icon
Benson, Bradford A. ORCID icon
Bintley, Dan
Blackburn, Lindy ORCID icon
Blundell, Raymond ORCID icon
Boland, Wilfred
Bouman, Katherine L. ORCID icon
Bower, Geoffrey C. ORCID icon
Boyce, Hope ORCID icon
Bremer, Michael
Brinkerink, Christiaan D. ORCID icon
Brissenden, Roger ORCID icon
Britzen, Silke ORCID icon
Broderick, Avery E. ORCID icon
Broguiere, Dominique
Bronzwaer, Thomas ORCID icon
Bustamente, Sandra
Byun, Do-Young ORCID icon
Carlstrom, John E. ORCID icon
Chael, Andrew ORCID icon
Chatterjee, Koushik ORCID icon
Chatterjee, Shami ORCID icon
Chen, Ming-Tang ORCID icon
Chen, Yongjun ORCID icon
Cho, Ilje ORCID icon
Christian, Pierre ORCID icon
Conway, John E. ORCID icon
Cordes, James M. ORCID icon
Crawford, Thomas M. ORCID icon
Crew, Geoffrey B. ORCID icon
Cruz-Osorio, Alejandro ORCID icon
Cui, Yuzhu ORCID icon
Davelaar, Jordy ORCID icon
De Laurentis, Mariafelicia ORCID icon
Deane, Roger ORCID icon
Dempsey, Jessica ORCID icon
Desvignes, Gregory ORCID icon
Dexter, Jason ORCID icon
Doeleman, Sheperd S. ORCID icon
Eatough, Ralph P. ORCID icon
Falcke, Heino ORCID icon
Farah, Joseph ORCID icon
Fish, Vincent L. ORCID icon
Fomalont, Ed ORCID icon
Ford, H. Alyson ORCID icon
Fraga-Encinas, Raquel ORCID icon
Friberg, Per ORCID icon
Fromm, Christian M. ORCID icon
Fuentes, Antonio ORCID icon
Galison, Peter ORCID icon
García, Roberto ORCID icon
Gentaz, Olivier
Georgiev, Boris ORCID icon
Goddi, Ciriaco ORCID icon
Gold, Roman ORCID icon
Gómez-Ruiz, Arturo I. ORCID icon
Gómez, José L. ORCID icon
Gu, Minfeng ORCID icon
Gurwell, Mark ORCID icon
Hada, Kazuhiro ORCID icon
Haggard, Daryl ORCID icon
Hecht, Michael H.
Hesper, Ronald ORCID icon
Ho, Luis C. ORCID icon
Ho, Paul ORCID icon
Honma, Mareki ORCID icon
Huang, Chih-Wei L. ORCID icon
Huang, Lei ORCID icon
Hughes, David H.
Ikeda, Shiro ORCID icon
Inoue, Makoto ORCID icon
Issaoun, Sara ORCID icon
James, David J. ORCID icon
Jannuzi, Buell T. ORCID icon
Janssen, Michael ORCID icon
Jeter, Britton ORCID icon
Jiang, Wu ORCID icon
Jiménez-Rosales, Alejandra ORCID icon
Johnson, Michael D. ORCID icon
Jorstad, Svetlana ORCID icon
Jung, Taehyun ORCID icon
Karami, Mansour ORCID icon
Karuppusamy, Ramesh ORCID icon
Kawashima, Tomohisa ORCID icon
Keating, Garrett K. ORCID icon
Kettenis, Mark ORCID icon
Kim, Dong-Jin ORCID icon
Kim, Jae-Young ORCID icon
Kim, Jongsoo ORCID icon
Kim, Junhan ORCID icon
Kino, Motoki ORCID icon
Koay, Jun Yi ORCID icon
Kofuji, Yutaro
Koch, Patrick M. ORCID icon
Koyama, Shoko ORCID icon
Kramer, Carsten ORCID icon
Kramer, Michael ORCID icon
Krichbaum, Thomas P. ORCID icon
Kuo, Cheng-Yu ORCID icon
Lauer, Tod R. ORCID icon
Lee, Sang-Sung ORCID icon
Levis, Aviad ORCID icon
Li, Yan-Rong ORCID icon
Li, Zhiyuan ORCID icon
Lindqvist, Michael ORCID icon
Lico, Rocco ORCID icon
Lindahl, Greg ORCID icon
Liu, Jun ORCID icon
Liu, Kuo ORCID icon
Liuzzo, Elisabetta ORCID icon
Lo, Wen-Ping ORCID icon
Lobanov, Andrei P. ORCID icon
Loinard, Laurent ORCID icon
Lonsdale, Colin ORCID icon
Lu, Ru-Sen ORCID icon
MacDonald, Nicholas R. ORCID icon
Mao, Jirong ORCID icon
Marchili, Nicola ORCID icon
Markoff, Sera ORCID icon
Marrone, Daniel P. ORCID icon
Marscher, Alan P. ORCID icon
Martí-Vidal, Iván ORCID icon
Matsushita, Satoki ORCID icon
Matthews, Lynn D. ORCID icon
Menten, Karl M. ORCID icon
Mizuno, Izumi ORCID icon
Mizuno, Yosuke ORCID icon
Moran, James M. ORCID icon
Moriyama, Kotaro ORCID icon
Moscibrodzka, Monika ORCID icon
Müller, Cornelia ORCID icon
Mus Mejías, Alejandro ORCID icon
Musoke, Gibwa ORCID icon
Nagai, Hiroshi ORCID icon
Nagar, Neil M. ORCID icon
Nakamura, Masanori ORCID icon
Narayan, Ramesh ORCID icon
Narayanan, Gopal ORCID icon
Natarajan, Iniyan ORCID icon
Nathanail, Antonios
Neilsen, Joey ORCID icon
Neri, Roberto ORCID icon
Ni, Chunchong ORCID icon
Noutsos, Aristeidis ORCID icon
Nowak, Michael A. ORCID icon
Okino, Hiroki ORCID icon
Olivares, Héctor ORCID icon
Ortiz-León, Gisela N. ORCID icon
Oyama, Tomoaki ORCID icon
Palumbo, Daniel C. M. ORCID icon
Park, Jongho ORCID icon
Patel, Nimesh
Pen, Ue-Li ORCID icon
Pesce, Dominic W. ORCID icon
Piétu, Vincent
Plambeck, Richard ORCID icon
PopStefanija, Aleksandar
Porth, Oliver ORCID icon
Pötzl, Felix M. ORCID icon
Preciado-López, Jorge A. ORCID icon
Pu, Hung-Yi ORCID icon
Ramakrishnan, Venkatessh ORCID icon
Rao, Ramprasad ORCID icon
Rawlings, Mark G. ORCID icon
Raymond, Alexander W. ORCID icon
Rezzolla, Luciano ORCID icon
Ripperda, Bart ORCID icon
Roelofs, Freek ORCID icon
Rogers, Alan ORCID icon
Ros, Eduardo ORCID icon
Rose, Mel ORCID icon
Roshanineshat, Arash
Rottmann, Helge ORCID icon
Roy, Alan L. ORCID icon
Ruszczyk, Chet ORCID icon
Rygl, Kazi L. J. ORCID icon
Sánchez, Salvador ORCID icon
Sánchez-Arguelles, David ORCID icon
Sasada, Mahito ORCID icon
Savolainen, Tuomas ORCID icon
Schloerb, F. Peter
Schuster, Karl-Friedrich ORCID icon
Shao, Lijing ORCID icon
Shen, Zhiqiang ORCID icon
Small, Des ORCID icon
Sohn, Bong Won ORCID icon
SooHoo, Jason ORCID icon
Sun, He ORCID icon
Tazaki, Fumie ORCID icon
Tetarenko, Alexandra J. ORCID icon
Tiede, Paul ORCID icon
Tilanus, Remo P. J. ORCID icon
Titus, Michael ORCID icon
Toma, Kenji ORCID icon
Torne, Pablo ORCID icon
Traianou, Efthalia ORCID icon
Trent, Tyler
Trippe, Sascha ORCID icon
van Bemmel, Ilse ORCID icon
van Langevelde, Huib Jan ORCID icon
van Rossum, Daniel R. ORCID icon
Wagner, Jan ORCID icon
Ward-Thompson, Derek ORCID icon
Wardle, John ORCID icon
Weintroub, Jonathan ORCID icon
Wex, Norbert ORCID icon
Wharton, Robert ORCID icon
Wiik, Kaj
Wu, Qingwen ORCID icon
Yoon, Doosoo ORCID icon
Young, André ORCID icon
Young, Ken ORCID icon
Younsi, Ziri ORCID icon
Yuan, Feng ORCID icon
Yuan, Ye-Fei ORCID icon
Zensus, J. Anton ORCID icon
Zhao, Guang-Yao ORCID icon
Zhao, Shan-Shan ORCID icon
Event Horizon Telescope Collaboration

Abstract

The black hole images obtained with the Event Horizon Telescope (EHT) are expected to be variable at the dynamical timescale near their horizons. For the black hole at the center of the M87 galaxy, this timescale (5–61 days) is comparable to the 6 day extent of the 2017 EHT observations. Closure phases along baseline triangles are robust interferometric observables that are sensitive to the expected structural changes of the images but are free of station-based atmospheric and instrumental errors. We explored the day-to-day variability in closure-phase measurements on all six linearly independent nontrivial baseline triangles that can be formed from the 2017 observations. We showed that three triangles exhibit very low day-to-day variability, with a dispersion of ∼3°–5°. The only triangles that exhibit substantially higher variability (∼90°–180°) are the ones with baselines that cross the visibility amplitude minima on the u–v plane, as expected from theoretical modeling. We used two sets of general relativistic magnetohydrodynamic simulations to explore the dependence of the predicted variability on various black hole and accretion-flow parameters. We found that changing the magnetic field configuration, electron temperature model, or black hole spin has a marginal effect on the model consistency with the observed level of variability. On the other hand, the most discriminating image characteristic of models is the fractional width of the bright ring of emission. Models that best reproduce the observed small level of variability are characterized by thin ring-like images with structures dominated by gravitational lensing effects and thus least affected by turbulence in the accreting plasmas.

Additional Information

© 2022. The Author(s). Published by the American Astronomical Society. Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI. Received 2021 June 3; revised 2021 October 21; accepted 2021 October 24; published 2022 January 20. This work was supported, in part, by the NSF PIRE award 1743747 and NASA ATP award 80NSSC20K0521. L.M. acknowledges support from an NSF Astronomy and Astrophysics Postdoctoral Fellowship under award No. AST-1903847. M.W. acknowledges the support of the Black Hole Initiative at Harvard University, which is funded by grants from the John Templeton Foundation and the Gordon and Betty Moore Foundation to Harvard University. All ray tracing calculations for Set A were performed with the El Gato GPU cluster at the University of Arizona that is funded by NSF award 1228509. All analyses for Set B were performed on CyVerse, supported by NSF grants DBI-0735191, DBI-1265383, and DBI-1743442. The EHT Collaboration thanks the following organizations and programs: the Academy of Finland (projects 274477, 284495, 312496, and 315721); the Agencia Nacional de Investigación y Desarrollo, Chile via NCN19₀₅₈ (TITANs) and Fondecyt 3190878; the Alexander von Humboldt Stiftung; an Alfred P. Sloan Research Fellowship; Allegro, the European ALMA Regional Centre node in the Netherlands, the NL astronomy research network NOVA, and the astronomy institutes of the University of Amsterdam, Leiden University, and Radboud University; the black hole Initiative at Harvard University, through a grant (60477) from the John Templeton Foundation; the China Scholarship Council; Consejo Nacional de Ciencia y Tecnología (Mexico, projects U0004-246083, U0004-259839, F0003-272050, M0037-279006, F0003-281692, 104497, 275201, and 263356); the Delaney Family via the Delaney Family John A. Wheeler Chair at Perimeter Institute; Dirección General de Asuntos del Personal Académico-Universidad Nacional Autónoma de México (projects IN112417 and IN112820); the European Research Council Synergy Grant "BlackHoleCam: Imaging the Event Horizon of Black Holes" (grant 610058); the Generalitat Valenciana postdoctoral grant APOSTD/2018/177 and GenT Program (project CIDEGENT/2018/021); MICINN Research Project PID2019-108995GB-C22; the Gordon and Betty Moore Foundation (grant GBMF-3561); the Istituto Nazionale di Fisica Nucleare sezione di Napoli, iniziative specifiche TEONGRAV; the International Max Planck Research School for Astronomy and Astrophysics at the Universities of Bonn and Cologne; Joint Princeton/Flatiron and Joint Columbia/Flatiron Postdoctoral Fellowships; research at the Flatiron Institute is supported by the Simons Foundation; the Japanese Government (Monbukagakusho: MEXT) Scholarship; the Japan Society for the Promotion of Science (JSPS) Grant-in-Aid for JSPS Research Fellowship (JP17J08829); the Key Research Program of Frontier Sciences, Chinese Academy of Sciences (CAS; grants QYZDJ-SSW-SLH057, QYZDJSSW-SYS008, and ZDBS-LY-SLH011); the Leverhulme Trust Early Career Research Fellowship; the Max-Planck-Gesellschaft (MPG); the Max-Planck Partner Group of the MPG and the CAS; the MEXT/JSPS KAKENHI (grants 18KK0090, JP18K13594, JP18K03656, JP18H03721, 18K03709, 18H01245, and 25120007); the Malaysian Fundamental Research Grant Scheme (FRGS). FRGS/1/2019/STG02/UM/02/6; the MIT International Science and Technology Initiatives Funds; the Ministry of Science and Technology (MOST) of Taiwan (105-2112-M-001-025-MY3, 106-2112-M-001-011, 106-2119- M-001-027, 107-2119-M-001-017, 107-2119-M-001-020, 107-2119-M-110-005, 108-2112-M-001-048, and 109-2124-M-001-005); the National Aeronautics and Space Administration (NASA; Fermi Guest Investigator grant 80NSSC20K1567, NASA Astrophysics Theory Program grant 80NSSC20K0527, and NASA NuSTAR award 80NSSC20K0645); the National Institute of Natural Sciences of Japan; the National Key Research and Development Program of China (grants 2016YFA0400704 and 2016YFA0400702); the National Science Foundation (NSF; grants AST-0096454, AST-0352953, AST-0521233, AST-0705062, AST-0905844, AST-0922984, AST-1126433, AST-1140030, DGE-1144085, AST-1207704, AST-1207730, AST-1207752, MRI-1228509, OPP-1248097, AST-1310896, AST-1555365, AST-1615796, AST-1715061, AST-1716327, AST-1903847, and AST-2034306); the Natural Science Foundation of China (grants 11573051, 11633006, 11650110427, 10625314, 11721303, 11725312, 11933007, 11991052, and 11991053); a fellowship of China Postdoctoral Science Foundation (2020M671266); the Natural Sciences and Engineering Research Council of Canada (NSERC; including a Discovery Grant and the NSERC Alexander Graham Bell Canada Graduate Scholarships-Doctoral Program); the National Youth Thousand Talents Program of China; the National Research Foundation of Korea (the Global PhD Fellowship Grant: grants NRF-2015H1A2A1033752 and 2015- R1D1A1A01056807; the Korea Research Fellowship Program: NRF-2015H1D3A1066561 and Basic Research Support Grant 2019R1F1A1059721); the Netherlands Organization for Scientific Research VICI award (grant 639.043.513) and Spinoza Prize SPI 78-409; the New Scientific Frontiers with Precision Radio Interferometry Fellowship awarded by the South African Radio Astronomy Observatory, which is a facility of the National Research Foundation, an agency of the Department of Science and Technology of South Africa; the Onsala Space Observatory (OSO) national infrastructure, for the provisioning of its facilities/observational support (OSO receives funding through the Swedish Research Council under grant 2017–00648) the Perimeter Institute for Theoretical Physics (research at Perimeter Institute is supported by the Government of Canada through the Department of Innovation, Science, and Economic Development and by the Province of Ontario through the Ministry of Research, Innovation, and Science); the Spanish Ministerio de Economía y Competitividad (grants PGC2018-098915-B-C21, AYA2016-80889-P, and PID2019-108995GB-C21); the State Agency for Research of the Spanish MCIU through the "Center of Excellence Severo Ochoa" award for the Instituto de Astrofísica de Andalucía (SEV-2017–0709); the Toray Science Foundation; the Consejería de Economía, Conocimiento, Empresas y Universidad of the Junta de Andalucía (grant P18-FR-1769), the Consejo Superior de Investigaciones Científicas (grant 2019AEP112); the US Department of Energy (USDOE) through the Los Alamos National Laboratory (operated by Triad National Security, LLC), for the National Nuclear Security Administration of the USDOE (Contract 89233218CNA000001); the European Union's Horizon 2020 research and innovation program under grant agreement No. 730562 RadioNet; ALMA North America Development Fund; the Academia Sinica; Chandra DD7-18089X and TM6-17006X; the GenT Program (Generalitat Valenciana) Project CIDEGENT/2018/021. This work used the Extreme Science and Engineering Discovery Environment (XSEDE), supported by NSF grant ACI-1548562, and CyVerse, supported by NSF grants DBI-0735191, DBI-1265383, and DBI-1743442. XSEDE Stampede2 resource at TACC was allocated through TG-AST170024 and TG-AST080026N. XSEDE JetStream resource at PTI and TACC was allocated through AST170028. The simulations were performed in part on the SuperMUC cluster at the LRZ in Garching, on the LOEWE cluster in CSC in Frankfurt, and on the HazelHen cluster at the HLRS in Stuttgart. This research was enabled, in part, by support provided by Compute Ontario (http://computeontario.ca), Calcul Quebec (http://www.calculquebec.ca), and Compute Canada (http://www.computecanada.ca). We thank the staff at the participating observatories, correlation centers, and institutions for their enthusiastic support. This paper makes use of the following ALMA data: ADS/JAO.ALMA#2016.1.01154.V. ALMA is a partnership of the European Southern Observatory (ESO; Europe, representing its member states), NSF, and the National Institutes of Natural Sciences of Japan, together with National Research Council (Canada), MOST (Taiwan), the Academia Sinica Institute of Astronomy and Astrophysics (ASIAA; Taiwan), and the Korea Astronomy and Space Science Institute (KASI; Republic of Korea), in cooperation with the Republic of Chile. The Joint ALMA Observatory is operated by ESO, Associated Universities, Inc. (AUI)/NRAO, and the National Astronomical Observatory of Japan (NAOJ). The NRAO is a facility of the NSF operated under cooperative agreement by AUI. APEX is a collaboration between the Max-Planck-Institut für Radioastronomie (Germany), ESO, and the OSO (Sweden). The SMA is a joint project between the SAO and ASIAA and is funded by the Smithsonian Institution and the Academia Sinica. The JCMT is operated by the East Asian Observatory on behalf of the NAOJ, ASIAA, and KASI, as well as the Ministry of Finance of China, CAS, and the National Key R&D Program (No. 2017YFA0402700) of China. Additional funding support for the JCMT is provided by the Science and Technologies Facility Council (UK) and participating universities in the UK and Canada. The LMT is a project operated by the Instituto Nacional de Astrófisica, Óptica, y Electrónica (Mexico) and the University of Massachusetts at Amherst (USA). The IRAM 30 m telescope in Pico Veleta, Spain is operated by IRAM and supported by CNRS (Centre National de la Recherche Scientifique, France), MPG (Max-Planck Gesellschaft, Germany), and IGN (Instituto Geográfico Nacional, Spain). The SMT is operated by the Arizona Radio Observatory, a part of the Steward Observatory of the University of Arizona, with financial support of operations from the State of Arizona and financial support for instrumentation development from the NSF. The SPT is supported by the NSF through grant PLR-1248097. Partial support is also provided by the NSF Physics Frontier Center grant PHY-1125897 to the Kavli Institute of Cosmological Physics at the University of Chicago, the Kavli Foundation, and the Gordon and Betty Moore Foundation grant GBMF 947. The SPT hydrogen maser was provided on loan from the GLT, courtesy of ASIAA. The EHTC has received generous donations of FPGA chips from Xilinx Inc., under the Xilinx University Program. The EHTC has benefited from technology shared under an open-source license by the Collaboration for Astronomy Signal Processing and Electronics Research. The EHT project is grateful to T4Science and Microsemi for their assistance with hydrogen masers. This research has made use of NASA's Astrophysics Data System. We gratefully acknowledge the support provided by the extended staff of the ALMA, both from the inception of the ALMA Phasing Project through the observational campaigns of 2017 and 2018. We would like to thank A. Deller and W. Brisken for the EHT-specific support with the use of DiFX. We acknowledge the significance that Maunakea, where the SMA and JCMT-EHT stations are located, has for the indigenous Hawaiian people.

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Additional details

Created:
August 22, 2023
Modified:
October 23, 2023