Astrophysical jet explained
An astrophysical jet is an astronomical phenomenon where outflows of ionised matter are emitted as extended beams along the axis of rotation.[1] When this greatly accelerated matter in the beam approaches the speed of light, astrophysical jets become relativistic jets as they show effects from special relativity.
The formation and powering of astrophysical jets are highly complex phenomena that are associated with many types of high-energy astronomical sources. They likely arise from dynamic interactions within accretion disks, whose active processes are commonly connected with compact central objects such as black holes, neutron stars or pulsars. One explanation is that tangled magnetic fields are organised to aim two diametrically opposing beams away from the central source by angles only several degrees wide Jets may also be influenced by a general relativity effect known as frame-dragging.[2]
Most of the largest and most active jets are created by supermassive black holes (SMBH) in the centre of active galaxies such as quasars and radio galaxies or within galaxy clusters.[3] Such jets can exceed millions of parsecs in length. Other astronomical objects that contain jets include cataclysmic variable stars, X-ray binaries and gamma-ray bursts (GRB). Jets on a much smaller scale (~parsecs) may be found in star forming regions, including T Tauri stars and Herbig–Haro objects; these objects are partially formed by the interaction of jets with the interstellar medium. Bipolar outflows may also be associated with protostars,[4] or with evolved post-AGB stars, planetary nebulae and bipolar nebulae.
Relativistic jets
Relativistic jets are beams of ionised matter accelerated close to the speed of light. Most have been observationally associated with central black holes of some active galaxies, radio galaxies or quasars, and also by galactic stellar black holes, neutron stars or pulsars. Beam lengths may extend between several thousand,[5] hundreds of thousands[6] or millions of parsecs. Jet velocities when approaching the speed of light show significant effects of the special theory of relativity; for example, relativistic beaming that changes the apparent beam brightness.[7]
Massive central black holes in galaxies have the most powerful jets, but their structure and behaviours are similar to those of smaller galactic neutron stars and black holes. These SMBH systems are often called microquasars and show a large range of velocities. SS 433 jet, for example, has a mean velocity of 0.26c.[8] Relativistic jet formation may also explain observed gamma-ray bursts, which have the most relativistic jets known, being ultrarelativistic.[9]
Mechanisms behind the composition of jets remain uncertain,[10] though some studies favour models where jets are composed of an electrically neutral mixture of nuclei, electrons, and positrons, while others are consistent with jets composed of positron–electron plasma.[11] [12] [13] Trace nuclei swept up in a relativistic positron–electron jet would be expected to have extremely high energy, as these heavier nuclei should attain velocity equal to the positron and electron velocity.
Rotation as possible energy source
Because of the enormous amount of energy needed to launch a relativistic jet, some jets are possibly powered by spinning black holes. However, the frequency of high-energy astrophysical sources with jets suggests combinations of different mechanisms indirectly identified with the energy within the associated accretion disk and X-ray emissions from the generating source. Two early theories have been used to explain how energy can be transferred from a black hole into an astrophysical jet:
- Blandford–Znajek process.[14] This theory explains the extraction of energy from magnetic fields around an accretion disk, which are dragged and twisted by the spin of the black hole. Relativistic material is then feasibly launched by the tightening of the field lines.
- Penrose mechanism.[15] Here energy is extracted from a rotating black hole by frame dragging, which was later theoretically proven by Reva Kay Williams to be able to extract relativistic particle energy and momentum,[16] and subsequently shown to be a possible mechanism for jet formation.[17] This effect includes using general relativistic gravitomagnetism.
Relativistic jets from neutron stars
Jets may also be observed from spinning neutron stars. An example is pulsar IGR J11014-6103, which has the largest jet so far observed in the Milky Way, and whose velocity is estimated at 80% the speed of light (0.8c). X-ray observations have been obtained, but there is no detected radio signature nor accretion disk.[18] [19] Initially, this pulsar was presumed to be rapidly spinning, but later measurements indicate the spin rate is only 15.9 Hz.[20] [21] Such a slow spin rate and lack of accretion material suggest the jet is neither rotation nor accretion powered, though it appears aligned with the pulsar rotation axis and perpendicular to the pulsar's true motion.
Other images
See also
External links
Notes and References
- Beall . J. H. . 2015 . A Review of Astrophysical Jets . . 58 . 10.22323/1.246.0058 . 2015mbhe.confE..58B . 19 February 2017. free .
- Miller-Jones. James. April 2019. A rapidly changing jet orientation in the stellar-mass black-hole system V404 Cygni. Nature. 569. 7756. 374–377. 10.1038/s41586-019-1152-0. 31036949. 1906.05400. 2019Natur.569..374M. 139106116.
- 2014. A review of Astrophysical Jets. Acta Polytechnica CTU Proceedings. 1. 1. 259–264. 2014mbhe.conf..259B. 10.14311/APP.2014.01.0259. Beall. J. H. free.
- Web site: 27 December 2007 . Star sheds via reverse whirlpool . Astronomy.com . 26 May 2015.
- Web site: Biretta . J. . 6 Jan 1999 . Hubble Detects Faster-Than-Light Motion in Galaxy M87 .
- Web site: Evidence for Ultra-Energetic Particles in Jet from Black Hole . 20 June 2006 . Yale University – Office of Public Affairs . https://web.archive.org/web/20080513034113/http://www.yale.edu/opa/newsr/06-06-20-01.all.html . 2008-05-13.
- Semenov . V. . Dyadechkin . S. . Punsly . B. . 2004 . Simulations of Jets Driven by Black Hole Rotation . . 305 . 5686 . 978–980 . astro-ph/0408371 . 2004Sci...305..978S . 10.1126/science.1100638 . 15310894. 1590734 .
- Blundell . Katherine . Jet Velocity in SS 433: Its Anticorrelation with Precession-Cone Angle and Dependence on Orbital Phase . The Astrophysical Journal . December 2008 . 622 . 2 . 129 . 10.1086/429663 . astro-ph/0410457 . 15 January 2021. free .
- Dereli-Bégué . Hüsne . Pe’er . Asaf . Ryde . Felix . Oates . Samantha R. . Zhang . Bing . Dainotti . Maria G. . 2022-09-24 . A wind environment and Lorentz factors of tens explain gamma-ray bursts X-ray plateau . Nature Communications . en . 13 . 1 . 5611 . 10.1038/s41467-022-32881-1 . 36153328 . 9509382 . 2207.11066 . 2022NatCo..13.5611D . 2041-1723.
- Georganopoulos . M. . Kazanas . D. . Perlman . E. . Stecker . F. W. . 2005 . Bulk Comptonization of the Cosmic Microwave Background by Extragalactic Jets as a Probe of Their Matter Content . . 625 . 2 . 656–666 . astro-ph/0502201 . 2005ApJ...625..656G . 10.1086/429558. 39743397 .
- Hirotani . K. . Iguchi . S. . Kimura . M. . Wajima . K. . 2000 . Pair Plasma Dominance in the Parsec-Scale Relativistic Jet of 3C 345 . . 545 . 1 . 100–106 . 2000ApJ...545..100H . 10.1086/317769. astro-ph/0005394 . 17274015 .
- http://pc.astro.brandeis.edu/pdfs/elec-pos.pdf Electron–positron Jets Associated with Quasar 3C 279
- Web site: Naeye . R. . Gutro . R. . 2008-01-09 . Vast Cloud of Antimatter Traced to Binary Stars . NASA.
- Blandford . R. D. . Znajek . R. L. . 1977 . Electromagnetic extraction of energy from Kerr black holes . . 179 . 3 . 433 . 1977MNRAS.179..433B . 10.1093/mnras/179.3.433. free . astro-ph/0506302.
- Penrose . R. . 1969 . Gravitational Collapse: The Role of General Relativity . . 1 . 252–276 . 1969NCimR...1..252P. Reprinted in: Penrose . R. . 2002 . "Golden Oldie": Gravitational Collapse: The Role of General Relativity . . 34 . 7 . 1141–1165 . 2002GReGr..34.1141P . 10.1023/A:1016578408204. 117459073 .
- Williams . R. K.. Reva Williams . 1995 . Extracting X-rays, Ύ-rays, and relativistic e−e+ pairs from supermassive Kerr black holes using the Penrose mechanism . . 51 . 10 . 5387–5427 . 1995PhRvD..51.5387W . 10.1103/PhysRevD.51.5387 . 10018300.
- Williams . R. K. . 2004 . Collimated Escaping Vortical Polar e−e+Jets Intrinsically Produced by Rotating Black Holes and Penrose Processes . . 611 . 2 . 952–963 . astro-ph/0404135 . 2004ApJ...611..952W . 10.1086/422304. 1350543 .
- Web site: Chandra :: Photo Album :: IGR J11014-6103 :: June 28, 2012 .
- Pavan . L. . etal . 2015 . A closer view of the IGR J11014-6103 outflows . Astronomy & Astrophysics . 591 . A91 . 1511.01944 . 2016A&A...591A..91P . 10.1051/0004-6361/201527703. 59522014 .
- Pavan . L. . etal . 2014 . The long helical jet of the Lighthouse nebula, IGR J11014-6103 . . 562 . 562 . A122 . 1309.6792 . 2014A&A...562A.122P . 10.1051/0004-6361/201322588. 118845324 . Long helical jet of Lighthouse nebula page 7
- Halpern . J. P. . etal . 2014 . Discovery of X-ray Pulsations from the INTEGRAL Source IGR J11014-6103 . . 795 . 2 . L27 . 1410.2332 . 2014ApJ...795L..27H . 10.1088/2041-8205/795/2/L27. 118637856 .