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First Measurements of Deuterium-Tritium and Deuterium-Deuterium Fusion Reaction Yields in Ignition-Scalable Direct-Drive Implosions

机译:灼烧氚和氘 - 氘熔合反应产率的首次测量可点燃 - 可扩展直接驱动内爆

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摘要

The deuterium-tritium (D-T) and deuterium-deuterium neutron yield ratio in cryogenic inertial confinement fusion (ICF) experiments is used to examine multifluid effects, traditionally not included in ICF modeling. This ratio has been measured for ignition-scalable direct-drive cryogenic DT implosions at the Omega Laser Facility [T. R. Boehly et al., Opt. Commun. 133, 495 (1997)] using a high-dynamic-range neutron time-of-flight spectrometer. The experimentally inferred yield ratio is consistent with both the calculated values of the nuclear reaction rates and the measured preshot target-fuel composition. These observations indicate that the physical mechanisms that have been proposed to alter the fuel composition, such as species separation of the hydrogen isotopes [D. T. Casey et al., Phys. Rev. Lett. 108, 075002 (2012)], are not significant during the period of peak neutron production in ignition-scalable cryogenic direct-drive DT implosions.
机译:低温惯性约束聚变(ICF)实验中的氘-(D-T)和氘-氘中子产率比用于检查多流体效应,传统上不包括在ICF建模中。已针对Omega Laser Facility [T.燃烧可缩放直接驱动低温DT爆燃测量了该比率。 R. Boehly等,选项公社133,495(1997)]使用高动态范围中子飞行时间光谱仪。实验推断的收率与核反应速率的计算值和测得的预射击目标燃料成分均一致。这些观察结果表明,已经提出了改变燃料成分的物理机制,例如氢同位素的物种分离[D。 T.Casey等人,《物理学报》牧师108,075002(2012)],在可点火缩放的低温直接驱动DT爆燃中的峰值中子产生期间并不重要。

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