在开氏 300 度、1000 个大气压条件下对一批球壳进行氢同位素扩散填充的系统

IF 0.6 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY
I. V. Aleksandrova, E. R. Koresheva, I. E. Osipov, S. M. Tolokonnikov
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引用次数: 0

摘要

摘要 目前,受控惯性聚变能(IFE)的发展前景广阔,其目标是建立一个大规模制造低温燃料靶(CFT)的动力设施,并将其高重复率地输送到强大激光的辐照区。为确保 IFE 反应堆的连续运行,热核燃烧区应以每天约 100 万个靶的速度补充燃料。同时,在封闭运行周期的每个步骤中处理独立 CFT 阵列是反应堆技术设计的关键要求。CFT 制造的第一步是在空心球形外壳中填充燃料,即氘或氘氚混合物。CFT 外壳由聚合物、玻璃、铍或高密度碳制成。在世界范围内,通常的做法是通过燃料气体在 CFT 壳壁上的扩散或通过壳壁上的细毛细管(直径几微米)注入液体燃料来完成填充步骤。后一种方法在未来的应用中存在很大问题,因为它会破坏壳体的完整性和对称性,并使 CFT 无法按比例注入激光焦点。根据多次实验运行的数据,我们介绍了列别杰夫物理研究所(LPI)首次开发的扩散填充系统的优化结果,该系统用于在 300 K 压力为 1000 atm 的条件下向一批独立的聚合物和玻璃壳体(直径 0.8 至 2.0 mm)填充氢同位素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The System of Diffusion Filling with Hydrogen Isotopes for a Batch of Spherical Shells up to Pressures of 1000 atm at 300 K

The System of Diffusion Filling with Hydrogen Isotopes for a Batch of Spherical Shells up to Pressures of 1000 atm at 300 K

Abstract

The current promising developments in controlled inertial fusion energy (IFE) are aimed at creating a power facility for mass fabrication of cryogenic fuel targets (CFT) and their high rep-rate delivery to the irradiation zone of a powerful laser. To ensure continuous operation of a IFE reactor, the thermonuclear burn region should be refilled with fuel at the rate of about 1 million targets per day. At the same time, handling an array of free-standing CFTs at each step of a closed operation cycle is a key requirement for the reactor technology design. The first step in the CFT fabrication is filling of hollow spherical shells with a fuel, which is deuterium or a deuterium–tritium mixture. The CFT shells are made of polymer, glass, beryllium, or high-density carbon. In world practice, it is customary to carry out the filling step either by diffusion of fuel gas through the CFT shell wall or by injecting liquid fuel through a thin capillary (several microns in diameter) built into the shell wall. The latter method is extremely problematic for future applications because it disrupts the integrity and symmetry of the shell and precludes rep-rate injection of the CFT into the laser focus. Based on data from many experimental runs, we present results on the optimization of a diffusion filling system first developed at the Lebedev Physical Institute (LPI) for filling a batch of free-standing polymer and glass shells (dia. 0.8 to 2.0 mm) with hydrogen isotopes to pressures of 1000 atm at 300 K. These results are unique and have no counterparts in the world.

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来源期刊
Bulletin of the Lebedev Physics Institute
Bulletin of the Lebedev Physics Institute PHYSICS, MULTIDISCIPLINARY-
CiteScore
0.70
自引率
25.00%
发文量
41
审稿时长
6-12 weeks
期刊介绍: Bulletin of the Lebedev Physics Institute is an international peer reviewed journal that publishes results of new original experimental and theoretical studies on all topics of physics: theoretical physics; atomic and molecular physics; nuclear physics; optics; lasers; condensed matter; physics of solids; biophysics, and others.
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