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惯性约束聚变γ射线物理学诊断(特邀报告)

Diagnosing inertial confinement fusion gamma ray physics (invited).

作者信息

Herrmann H W, Hoffman N, Wilson D C, Stoeffl W, Dauffy L, Kim Y H, McEvoy A, Young C S, Mack J M, Horsfield C J, Rubery M, Miller E K, Ali Z A

机构信息

Los Alamos National Laboratory, P.O. Box 1663, M/S E526, Los Alamos, New Mexico 87545, USA.

出版信息

Rev Sci Instrum. 2010 Oct;81(10):10D333. doi: 10.1063/1.3495770.

Abstract

The gamma reaction history (GRH) diagnostic is a multichannel, time-resolved, energy-thresholded γ-ray spectrometer that provides a high-bandwidth, direct-measurement of fusion reaction history in inertial confinement fusion implosion experiments. 16.75 MeV deuterium+tritium (DT) fusion γ-rays, with a branching ratio of the order of 10(-5)γ/(14 MeV n), are detected to determine fundamental burn parameters, such as nuclear bang time and burn width, critical to achieving ignition at the National Ignition Facility. During the tritium/hydrogen/deuterium ignition tuning campaign, an additional γ-ray line at 19.8 MeV, produced by hydrogen+tritium fusion with a branching ratio of unity, will increase the available γ-ray signal and may allow measurement of reacting fuel composition or ion temperature. Ablator areal density measurements with the GRH are also made possible by detection of 4.43 MeV γ-rays produced by inelastic scatter of DT fusion neutrons on (12)C nuclei in the ablating plastic capsule material.

摘要

伽马反应历史(GRH)诊断仪是一种多通道、时间分辨、能量阈值化的γ射线光谱仪,可在惯性约束聚变内爆实验中对聚变反应历史进行高带宽直接测量。检测分支比约为10(-5)γ/(14 MeV n)的16.75 MeV氘+氚(DT)聚变γ射线,以确定基本燃烧参数,如核爆时间和燃烧宽度,这些参数对于在国家点火设施实现点火至关重要。在氚/氢/氘点火调谐活动期间,由氢+氚聚变产生的分支比为1的19.8 MeV处的额外γ射线谱线,将增加可用的γ射线信号,并可能允许测量反应燃料成分或离子温度。通过检测DT聚变中子在烧蚀塑料胶囊材料中的(12)C核上非弹性散射产生的4.43 MeV γ射线,也可以利用GRH进行烧蚀体面密度测量。

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