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


ABSTRACT: In conventional gases and plasmas, it is known that heat fluxes are proportional to temperature gradients, with collisions between particles mediating energy flow from hotter to colder regions and the coefficient of thermal conduction given by Spitzer's theory. However, this theory breaks down in magnetized, turbulent, weakly collisional plasmas, although modifications are difficult to predict from first principles due to the complex, multiscale nature of the problem. Understanding heat transport is important in astrophysical plasmas such as those in galaxy clusters, where observed temperature profiles are explicable only in the presence of a strong suppression of heat conduction compared to Spitzer's theory. To address this problem, we have created a replica of such a system in a laser laboratory experiment. Our data show a reduction of heat transport by two orders of magnitude or more, leading to large temperature variations on small spatial scales (as is seen in cluster plasmas).

SUBMITTER: Meinecke J 

PROVIDER: S-EPMC8906738 | biostudies-literature | 2022 Mar

REPOSITORIES: biostudies-literature

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

Meinecke Jena J   Tzeferacos Petros P   Ross James S JS   Bott Archie F A AFA   Feister Scott S   Park Hye-Sook HS   Bell Anthony R AR   Blandford Roger R   Berger Richard L RL   Bingham Robert R   Casner Alexis A   Chen Laura E LE   Foster John J   Froula Dustin H DH   Goyon Clement C   Kalantar Daniel D   Koenig Michel M   Lahmann Brandon B   Li Chikang C   Lu Yingchao Y   Palmer Charlotte A J CAJ   Petrasso Richard D RD   Poole Hannah H   Remington Bruce B   Reville Brian B   Reyes Adam A   Rigby Alexandra A   Ryu Dongsu D   Swadling George G   Zylstra Alex A   Miniati Francesco F   Sarkar Subir S   Schekochihin Alexander A AA   Lamb Donald Q DQ   Gregori Gianluca G  

Science advances 20220309 10


In conventional gases and plasmas, it is known that heat fluxes are proportional to temperature gradients, with collisions between particles mediating energy flow from hotter to colder regions and the coefficient of thermal conduction given by Spitzer's theory. However, this theory breaks down in magnetized, turbulent, weakly collisional plasmas, although modifications are difficult to predict from first principles due to the complex, multiscale nature of the problem. Understanding heat transpor  ...[more]

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