FusionPapers
図版検索トレンドwiki日本の研究
© 2026 FUSIONPAPERS
About法務情報
トップに戻る

Density evolution after shock release from laser-driven polystyrene (CH) targets in inertial confinement fusion

A. Shvydky, D. Haberberger, A. V. Maximov, R. Boni, D. Cao, J. Carroll-Nellenback, D. H. Froula, V. N. Goncharov, S. X. Hu, I. V. Igumenshchev, S. T. Ivancic, V. V. Karasiev, J. P. Knauer, P. M. Nilson, P. B. Radha, S. P. Regan, J. R. Rygg, T. C. Sangster, M. D. Rosen, V. A. Smalyuk2021年Physics of PlasmasIF 2.2出版社

wiki

Inertial confinement fusion
この論文にはまだAI要約がありません。

関連論文

Driving high-gain shock-ignited inertial confinement fusion targets by green laser light

2012Physics of Plasmas

Initial experiments on the shock-ignition inertial confinement fusion concept

2008Physics of Plasmas

Experimental investigation of the density-scale-length effects on laser–plasma instabilities toward the shock-ignition scheme in direct-drive inertial-confinement fusionOpen Access

2025Physics of Plasmas

Laser absorption, mass ablation rate, and shock heating in direct-drive inertial confinement fusion

2007Physics of Plasmas

Measurements of near forward scattered laser light in a large inertial confinement fusion plasma (invited)

1999Review of Scientific Instruments

The importance of laser wavelength for driving inertial confinement fusion targets. I. Basic physics

2023Physics of Plasmas

Evolution and hot electron generation of laser–plasma instabilities in direct-drive inertial confinement fusion

2023Physics of Plasmas

Multiple-beam laser–plasma interactions in inertial confinement fusion

2014Physics of Plasmas

The importance of laser wavelength for driving inertial confinement fusion targets. II. Target design

2023Physics of Plasmas

Uniformity of spherical shock wave dynamically stabilized by two successive laser profiles in direct-drive inertial confinement fusion implosions

2015Physics of Plasmas