Cosmic-Ray Transport in Simulations of Star-forming Galactic Disks

被引:31
作者
Armillotta, Lucia [1 ]
Ostriker, Eve C. [1 ]
Jiang, Yan-Fei [2 ]
机构
[1] Princeton Univ, Dept Astrophys Sci, Princeton, NJ 08544 USA
[2] Flatiron Inst, Ctr Computat Astrophys, New York, NY 10010 USA
关键词
PROPAGATION; GALAXY; EQUIPARTITION; ACCELERATION; CONFINEMENT; TURBULENCE; EQUILIBRIUM; OUTFLOWS; MODELS; WINDS;
D O I
10.3847/1538-4357/ac1db2
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Cosmic-ray transport on galactic scales depends on the detailed properties of the magnetized, multiphase interstellar medium (ISM). In this work, we postprocess a high-resolution TIGRESS magnetohydrodynamic simulation modeling a local galactic disk patch with a two-moment fluid algorithm for cosmic-ray transport. We consider a variety of prescriptions for the cosmic rays, from a simple, purely diffusive formalism with constant scattering coefficient, to a physically motivated model in which the scattering coefficient is set by the critical balance between streaming-driven Alfven wave excitation and damping mediated by local gas properties. We separately focus on cosmic rays with kinetic energies of similar to 1 GeV (high-energy) and similar to 30 MeV (low energy), respectively important for ISM dynamics and chemistry. We find that simultaneously accounting for advection, streaming, and diffusion of cosmic rays is crucial for properly modeling their transport. Advection dominates in the high-velocity, low-density hot phase, while diffusion and streaming are more important in higher-density, cooler phases. Our physically motivated model shows that there is no single diffusivity for cosmic-ray transport: the scattering coefficient varies by four or more orders of magnitude, maximal at density n (H) similar to 0.01 cm(-3). The ion-neutral damping of Alfven waves results in strong diffusion and nearly uniform cosmic-ray pressure within most of the mass of the ISM. However, cosmic rays are trapped near the disk midplane by the higher scattering rate in the surrounding lower-density, higher-ionization gas. The transport of high-energy cosmic rays differs from that of low-energy cosmic rays, with less effective diffusion and greater energy losses for the latter.
引用
收藏
页数:36
相关论文
共 88 条
[1]   High Statistics Measurement of the Positron Fraction in Primary Cosmic Rays of 0.5-500 GeV with the Alpha Magnetic Spectrometer on the International Space Station [J].
Accardo, L. ;
Aguilar, M. ;
Aisa, D. ;
Alpat, B. ;
Alvino, A. ;
Ambrosi, G. ;
Andeen, K. ;
Arruda, L. ;
Attig, N. ;
Azzarello, P. ;
Bachlechner, A. ;
Barao, F. ;
Barrau, A. ;
Barrin, L. ;
Bartoloni, A. ;
Basara, L. ;
Battarbee, M. ;
Battiston, R. ;
Bazo, J. ;
Becker, U. ;
Behlmann, M. ;
Beischer, B. ;
Berdugo, J. ;
Bertucci, B. ;
Bigongiari, G. ;
Bindi, V. ;
Bizzaglia, S. ;
Bizzarri, M. ;
Boella, G. ;
de Boer, W. ;
Bollweg, K. ;
Bonnivard, V. ;
Borgia, B. ;
Borsini, S. ;
Boschini, M. J. ;
Bourquin, M. ;
Burger, J. ;
Cadoux, F. ;
Cai, X. D. ;
Capell, M. ;
Caroff, S. ;
Carosi, G. ;
Casaus, J. ;
Cascioli, V. ;
Castellini, G. ;
Cernuda, I. ;
Cerreta, D. ;
Cervelli, F. ;
Chae, M. J. ;
Chang, Y. H. .
PHYSICAL REVIEW LETTERS, 2014, 113 (12)
[2]   Fermi establishes classical novae as a distinct class of gamma-ray sources [J].
Ackermann, M. ;
Ajello, M. ;
Albert, A. ;
Baldini, L. ;
Ballet, J. ;
Barbiellini, G. ;
Bastieri, D. ;
Bellazzini, R. ;
Bissaldi, E. ;
Blandford, R. D. ;
Bloom, E. D. ;
Bottacini, E. ;
Brandt, T. J. ;
Bregeon, J. ;
Bruel, P. ;
Buehler, R. ;
Buson, S. ;
Caliandro, G. A. ;
Cameron, R. A. ;
Caragiulo, M. ;
Caraveo, P. A. ;
Cavazzuti, E. ;
Charles, E. ;
Chekhtman, A. ;
Cheung, C. C. ;
Chiang, J. ;
Chiaro, G. ;
Ciprini, S. ;
Claus, R. ;
Cohen-Tanugi, J. ;
Conrad, J. ;
Corbel, S. ;
D'Ammando, F. ;
de Angelis, A. ;
den Hartog, P. R. ;
de Palma, F. ;
Dermer, C. D. ;
Desiante, R. ;
Digel, S. W. ;
Di Venere, L. ;
do Couto e Silva, E. ;
Donato, D. ;
Drell, P. S. ;
Drlica-Wagner, A. ;
Favuzzi, C. ;
Ferrara, E. C. ;
Focke, W. B. ;
Franckowiak, A. ;
Fuhrmann, L. ;
Fukazawa, Y. .
SCIENCE, 2014, 345 (6196) :554-558
[3]   Precision Measurement of the Helium Flux in Primary Cosmic Rays of Rigidities 1.9 GV to 3 TV with the Alpha Magnetic Spectrometer on the International Space Station [J].
Aguilar, M. ;
Aisa, D. ;
Alpat, B. ;
Alvino, A. ;
Ambrosi, G. ;
Andeen, K. ;
Arruda, L. ;
Attig, N. ;
Azzarello, P. ;
Bachlechner, A. ;
Barao, F. ;
Barrau, A. ;
Barrin, L. ;
Bartoloni, A. ;
Basara, L. ;
Battarbee, M. ;
Battiston, R. ;
Bazo, J. ;
Becker, U. ;
Behlmann, M. ;
Beischer, B. ;
Berdugo, J. ;
Bertucci, B. ;
Bindi, V. ;
Bizzaglia, S. ;
Bizzarri, M. ;
Boella, G. ;
de Boer, W. ;
Bollweg, K. ;
Bonnivard, V. ;
Borgia, B. ;
Borsini, S. ;
Boschini, M. J. ;
Bourquin, M. ;
Burger, J. ;
Cadoux, F. ;
Cai, X. D. ;
Capell, M. ;
Caroff, S. ;
Casaus, J. ;
Castellini, G. ;
Cernuda, I. ;
Cerreta, D. ;
Cervelli, F. ;
Chae, M. J. ;
Chang, Y. H. ;
Chen, A. I. ;
Chen, G. M. ;
Chen, H. ;
Chen, H. S. .
PHYSICAL REVIEW LETTERS, 2015, 115 (21)
[4]   Cosmic ray transport in the Galaxy: A review [J].
Amato, Elena ;
Blasi, Pasquale .
ADVANCES IN SPACE RESEARCH, 2018, 62 (10) :2731-2749
[5]   The EDIBLES survey IV. Cosmic ray ionization rates in diffuse clouds from near-ultraviolet observations of interstellar OH+ [J].
Bacalla, Xavier L. ;
Linnartz, Harold ;
Cox, Nick L. J. ;
Cami, Jan ;
Roueff, Evelyne ;
Smoker, Jonathan V. ;
Farhang, Amin ;
Bouwman, Jordy ;
Zhao, Dongfeng .
ASTRONOMY & ASTROPHYSICS, 2019, 622
[6]   Magnetohydrodynamic Particle-in-cell Simulations of the Cosmic-Ray Streaming Instability: Linear Growth and Quasi-linear Evolution [J].
Bai, Xue-Ning ;
Ostriker, Eve C. ;
Plotnikov, Illya ;
Stone, James M. .
ASTROPHYSICAL JOURNAL, 2019, 876 (01)
[7]  
Bambic C.J., 2021, ARXIV210211877
[8]   Revised equipartition and minimum energy formula for magnetic field strength estimates from radio synchrotron observations [J].
Beck, R ;
Krause, M .
ASTRONOMISCHE NACHRICHTEN, 2005, 326 (06) :414-427
[9]   Galactic and extragalactic magnetic fields [J].
Beck, R .
SPACE SCIENCE REVIEWS, 2001, 99 (1-4) :243-260
[10]   ACCELERATION OF COSMIC-RAYS IN SHOCK FRONTS .1. [J].
BELL, AR .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 1978, 182 (01) :147-156