Mora Durocher, Verena Geppert-Kleinrath, Christopher R. Danly, Carl H. Wilde, Gary J. Saavedra, Matthew S. Freeman, Valerie E. Fatherley, Emily F. Mendoza, Landon R. Tafoya, Petr L. Volegov, David N. Fittinghoff, Michael Rubery
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引用次数: 0
摘要
十多年来,国家点火装置的核成像系统一直在捕捉惯性约束聚变(ICF)驱动内爆的中子图像。该成像系统已从一条视线发展到三条近乎正交的视线,从而可以研究点火喷射的三维形状特征。有限视角层析成像算法有助于以三维方式观察燃烧热点,并利用 Legendre 模式参数评估中子源的几何形状。借助中子、伽马射线和 X 射线图像重建能力,NIS 对限制内爆性能的机制(如点火型目标的填充管直径)提供了重要的洞察力。这一全面的诊断套件为了解点火发射的形状特征以及对称性如何影响集成电路框架的内爆性能打开了一扇窗。在最近的点火发射中,中子产率明显增加。对重建中子源的形状和大小进行的分析表明,燃烧体积有所扩大,这表明内爆过程中α加热的效率更高。
First look at neutron emission shape characteristics of ignition hotspots at the National Ignition Facility (invited)
The nuclear imaging system has been capturing neutron images of inertial confinement fusion (ICF) driven implosions for over a decade at the National Ignition Facility. This imaging system has evolved from one to three nearly orthogonal lines-of-sight, allowing for the study of three-dimensional shape characteristics of ignition shots. Limited-view tomography algorithms help visualize the burning hotspot in 3D and assess neutron source geometry using Legendre mode parameters. With its neutron, gamma-ray, and x-ray image reconstruction capabilities, NIS has provided critical insight into mechanisms that have limited implosion performance, such as fill tube diameter for ignition-type targets. This comprehensive diagnostic suite opens a window into the shape characteristics of ignition shots and how symmetry affects ICF implosion performance. In more recent ignition shots, neutron yields have visibly increased. Analyzing the shape and size of the reconstructed neutron source has shown an expansion of the burn volume, which is indicative of more efficient alpha heating during the implosion process.
期刊介绍:
Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.