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Inertial fusion research over the past 30 years

机译:过去30年的惯性融合研究

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Laser fusion research has been pursued intently over the past 30 years. The experiments using the GEKKO XII laser demonstrated a high-temperature compression of DT fuel of up to l0 keV, a neutron yield of 10~13 and high-density compression of CDT hollow shell pellet reached l000 g/cm~3. These data are the first fruitful attainment of implosion fusion research in the world. These results gave the society a strong confidence in achieving ignition and burn in the near future. The US National Ignition Facility and French MJ Laser Program have started in this direction. A new method for ignition is also proposed to use a petawatt femtosecond pulse laser which can deliver the energetic electrons into the compressed fuel core to ignite the target. The energy deposition mechanism is a very interesting topic for study. The aim of ICF is to develop the civil energy for the next century. The level of ICF research is not at all inferior to MCF. The international collaboration, which was not so prosperous in the past compared to the MCF, has been highly recommended. No other alternate energy source holds as bright a promise as fusion and none has ever presented such formidable scientific and engineering challenges.
机译:在过去的30年中,一直致力于激光聚变研究。使用GEKKO XII激光器进行的实验表明,DT燃料的高温压缩率高达10 keV,中子产率为10〜13,CDT中空壳丸的高密度压缩率达到1000 g / cm〜3。这些数据是世界上内爆聚变研究的第一个丰硕成果。这些结果使社会对在不久的将来实现点火和燃烧具有强大的信心。美国国家点火设施和法国MJ激光计划已朝这个方向开始。还提出了一种新的点火方法,该方法使用了皮特飞秒飞秒脉冲激光器,该激光器可以将高能电子传递到压缩燃料芯中以点燃目标。能量沉积机理是一个非常有趣的研究主题。 ICF的目标是为下个世纪发展民用能源。 ICF的研究水平绝对不逊于MCF。强烈建议进行国际合作,该合作过去与MCF相比并不那么繁荣。没有任何其他替代能源能够像聚变一样有光明的前途,也没有任何一个提出过如此严峻的科学和工程挑战。

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