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Laboratory plasma astrophysics simulation experiments using lasers

N C Woolsey, C Courtois, R O Dendy2004年Plasma Physics and Controlled FusionIF 2.2出版社

Laboratory astroplasma physics experiments advance both our astrophysics and plasma physics knowledge. Contemporary high-energy, high-power laser technology enables us to reproduce in the laboratory the conditions of temperature and pressure that are met in extreme stellar environments. The focus is on experiments designed to address key aspects of the plasma physics occurring in supernova remnants. In this approach, a plasma physics model of the astrophysical object is identified and then scaled, and applied to a laboratory experiment. This offers the possibility of detailed measurements, which can be repeated as the input conditions are altered. Results from a scaled experiment designed to address aspects of collisionless plasma interaction in a young supernova remnant are presented. This experimental study is based on the interaction of two millimetre-scale counter-streaming laser-produced plasmas, created from exploded thin plastic foils in an intense transverse magnetic field. The dynamics of the two plasmas and their interaction are studied with, and without, magnetic fields, through spatially and temporally resolved measurements of the electron density.

日本語訳

実験室における天体プラズマ物理の実験は、天体物理学とプラズマ物理学の両方の知識を前進させる。現代の高エネルギー・高出力レーザー技術により、極端な恒星環境で遭遇する温度と圧力の条件を実験室内で再現することが可能となった。焦点は、超新星残骸で生じるプラズマ物理学の主要な側面を扱うように設計された実験に当てられている。このアプローチでは、天体物理学的対象のプラズマ物理モデルを特定し、それをスケーリングして実験室実験に適用する。これにより、入力条件を変えながら繰り返すことができる詳細な測定が可能となる。強力な横磁場中で爆発させた薄いプラスチック箔から生成された、ミリメートルスケールの対向するレーザー生成プラズマの相互作用における衝突性プラズマ相互作用の側面を扱うように設計されたスケーリング実験の結果が提示される。2つのプラズマのダイナミクスとその相互作用は、磁場の有無の両方について、電子密度の空間的・時間的分解測定を通じて研究された。

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