Three-dimensional feedback processes in current-driven metal.

E P Yu,T J Awe, K R Cochrane, K J Peterson, K C Yates, T M Hutchinson, M W Hatch, B S Bauer, K Tomlinson, D B Sinars

Physical review. E(2023)

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摘要
Using three-dimensional (3D) magnetohydrodynamic simulations, we study how a pit on a metal surface evolves when driven by intense electrical current density j. Redistribution of j around the pit initiates a feedback loop: j both reacts to and alters the electrical conductivity σ, through Joule heating and hydrodynamic expansion, so that j and σ are constantly in flux. Thus, the pit transforms into larger striation and filament structures predicted by the electrothermal instability theory. Both structures are important in applications of current-driven metal: The striation constitutes a density perturbation that can seed the magneto-Rayleigh-Taylor instability, while the filament provides a more rapid path to plasma formation, through 3D j redistribution. Simulations predict distinctive self-emission patterns, thus allowing for experimental observation and comparison.
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关键词
metal,three-dimensional,current-driven
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