Literature DB >> 33729988

Time-resolved turbulent dynamo in a laser plasma.

Archie F A Bott1,2, Petros Tzeferacos3,4,5,6, Laura Chen3, Charlotte A J Palmer3,7, Alexandra Rigby3, Anthony R Bell3, Robert Bingham8,9, Andrew Birkel10, Carlo Graziani11, Dustin H Froula5,6, Joseph Katz6, Michel Koenig12,13, Matthew W Kunz2, Chikang Li10, Jena Meinecke3, Francesco Miniati3, Richard Petrasso10, Hye-Sook Park14, Bruce A Remington14, Brian Reville15, J Steven Ross14, Dongsu Ryu16, Dmitri Ryutov14, Fredrick H Séguin10, Thomas G White17, Alexander A Schekochihin3, Donald Q Lamb4, Gianluca Gregori3,4.   

Abstract

Understanding magnetic-field generation and amplification in turbulent plasma is essential to account for observations of magnetic fields in the universe. A theoretical framework attributing the origin and sustainment of these fields to the so-called fluctuation dynamo was recently validated by experiments on laser facilities in low-magnetic-Prandtl-number plasmas ([Formula: see text]). However, the same framework proposes that the fluctuation dynamo should operate differently when [Formula: see text], the regime relevant to many astrophysical environments such as the intracluster medium of galaxy clusters. This paper reports an experiment that creates a laboratory [Formula: see text] plasma dynamo. We provide a time-resolved characterization of the plasma's evolution, measuring temperatures, densities, flow velocities, and magnetic fields, which allows us to explore various stages of the fluctuation dynamo's operation on seed magnetic fields generated by the action of the Biermann-battery mechanism during the initial drive-laser target interaction. The magnetic energy in structures with characteristic scales close to the driving scale of the stochastic motions is found to increase by almost three orders of magnitude and saturate dynamically. It is shown that the initial growth of these fields occurs at a much greater rate than the turnover rate of the driving-scale stochastic motions. Our results point to the possibility that plasma turbulence produced by strong shear can generate fields more efficiently at the driving scale than anticipated by idealized magnetohydrodynamics (MHD) simulations of the nonhelical fluctuation dynamo; this finding could help explain the large-scale fields inferred from observations of astrophysical systems.

Entities:  

Keywords:  fluctuation dynamo; laboratory astrophysics; magnetic fields

Year:  2021        PMID: 33729988      PMCID: PMC7980456          DOI: 10.1073/pnas.2015729118

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   12.779


  12 in total

1.  Magnetic-field generation in Kolmogorov turbulence.

Authors:  Stanislav Boldyrev; Fausto Cattaneo
Journal:  Phys Rev Lett       Date:  2004-04-08       Impact factor: 9.161

2.  Generation of scaled protogalactic seed magnetic fields in laser-produced shock waves.

Authors:  G Gregori; A Ravasio; C D Murphy; K Schaar; A Baird; A R Bell; A Benuzzi-Mounaix; R Bingham; C Constantin; R P Drake; M Edwards; E T Everson; C D Gregory; Y Kuramitsu; W Lau; J Mithen; C Niemann; H-S Park; B A Remington; B Reville; A P L Robinson; D D Ryutov; Y Sakawa; S Yang; N C Woolsey; M Koenig; F Miniati
Journal:  Nature       Date:  2012-01-25       Impact factor: 49.962

3.  Universal nonlinear small-scale dynamo.

Authors:  A Beresnyak
Journal:  Phys Rev Lett       Date:  2012-01-18       Impact factor: 9.161

4.  Numerical demonstration of fluctuation dynamo at low magnetic Prandtl numbers.

Authors:  A B Iskakov; A A Schekochihin; S C Cowley; J C McWilliams; M R E Proctor
Journal:  Phys Rev Lett       Date:  2007-05-14       Impact factor: 9.161

5.  Turbulence and magnetic fields in the large-scale structure of the universe.

Authors:  Dongsu Ryu; Hyesung Kang; Jungyeon Cho; Santabrata Das
Journal:  Science       Date:  2008-05-16       Impact factor: 47.728

6.  Dynamics of self-generated, large amplitude magnetic fields following high-intensity laser matter interaction.

Authors:  G Sarri; A Macchi; C A Cecchetti; S Kar; T V Liseykina; X H Yang; M E Dieckmann; J Fuchs; M Galimberti; L A Gizzi; R Jung; I Kourakis; J Osterholz; F Pegoraro; A P L Robinson; L Romagnani; O Willi; M Borghesi
Journal:  Phys Rev Lett       Date:  2012-11-13       Impact factor: 9.161

7.  Invited article: Relation between electric and magnetic field structures and their proton-beam images.

Authors:  N L Kugland; D D Ryutov; C Plechaty; J S Ross; H-S Park
Journal:  Rev Sci Instrum       Date:  2012-10       Impact factor: 1.523

8.  Developed turbulence and nonlinear amplification of magnetic fields in laboratory and astrophysical plasmas.

Authors:  Jena Meinecke; Petros Tzeferacos; Anthony Bell; Robert Bingham; Robert Clarke; Eugene Churazov; Robert Crowston; Hugo Doyle; R Paul Drake; Robert Heathcote; Michel Koenig; Yasuhiro Kuramitsu; Carolyn Kuranz; Dongwook Lee; Michael MacDonald; Christopher Murphy; Margaret Notley; Hye-Sook Park; Alexander Pelka; Alessandra Ravasio; Brian Reville; Youichi Sakawa; Willow Wan; Nigel Woolsey; Roman Yurchak; Francesco Miniati; Alexander Schekochihin; Don Lamb; Gianluca Gregori
Journal:  Proc Natl Acad Sci U S A       Date:  2015-06-22       Impact factor: 11.205

9.  Laboratory evidence of dynamo amplification of magnetic fields in a turbulent plasma.

Authors:  P Tzeferacos; A Rigby; A F A Bott; A R Bell; R Bingham; A Casner; F Cattaneo; E M Churazov; J Emig; F Fiuza; C B Forest; J Foster; C Graziani; J Katz; M Koenig; C-K Li; J Meinecke; R Petrasso; H-S Park; B A Remington; J S Ross; D Ryu; D Ryutov; T G White; B Reville; F Miniati; A A Schekochihin; D Q Lamb; D H Froula; G Gregori
Journal:  Nat Commun       Date:  2018-02-09       Impact factor: 14.919

10.  Supersonic plasma turbulence in the laboratory.

Authors:  T G White; M T Oliver; P Mabey; M Kühn-Kauffeldt; A F A Bott; L N K Döhl; A R Bell; R Bingham; R Clarke; J Foster; G Giacinti; P Graham; R Heathcote; M Koenig; Y Kuramitsu; D Q Lamb; J Meinecke; Th Michel; F Miniati; M Notley; B Reville; D Ryu; S Sarkar; Y Sakawa; M P Selwood; J Squire; R H H Scott; P Tzeferacos; N Woolsey; A A Schekochihin; G Gregori
Journal:  Nat Commun       Date:  2019-04-15       Impact factor: 14.919

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  1 in total

1.  Strong suppression of heat conduction in a laboratory replica of galaxy-cluster turbulent plasmas.

Authors:  Jena Meinecke; Petros Tzeferacos; James S Ross; Archie F A Bott; Scott Feister; Hye-Sook Park; Anthony R Bell; Roger Blandford; Richard L Berger; Robert Bingham; Alexis Casner; Laura E Chen; John Foster; Dustin H Froula; Clement Goyon; Daniel Kalantar; Michel Koenig; Brandon Lahmann; Chikang Li; Yingchao Lu; Charlotte A J Palmer; Richard D Petrasso; Hannah Poole; Bruce Remington; Brian Reville; Adam Reyes; Alexandra Rigby; Dongsu Ryu; George Swadling; Alex Zylstra; Francesco Miniati; Subir Sarkar; Alexander A Schekochihin; Donald Q Lamb; Gianluca Gregori
Journal:  Sci Adv       Date:  2022-03-09       Impact factor: 14.136

  1 in total

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