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在国家点火设施中进行氚和点火靶管理。

Tritium and ignition target management at the National Ignition Facility.

机构信息

Lawrence Livermore National Laboratory, Livermore, CA 94551-9900, USA.

出版信息

Health Phys. 2013 Jun;104(6):571-9. doi: 10.1097/HP.0b013e31828cfd17.

Abstract

Isotopic mixtures of hydrogen constitute the basic fuel for fusion targets of the National Ignition Facility (NIF). A typical NIF fusion target shot requires approximately 0.5 mmoles of hydrogen gas and as much as 750 GBq (20 Ci) of 3H. Isotopic mix ratios are specified according to the experimental shot/test plan and the associated test objectives. The hydrogen isotopic concentrations, absolute amounts, gas purity, configuration of the target, and the physical configuration of the NIF facility are all parameters and conditions that must be managed to ensure the quality and safety of operations. An essential and key step in the preparation of an ignition target is the formation of a ~60 μm thick hydrogen "ice" layer on the inner surface of the target capsule. The Cryogenic Target Positioning System (Cryo-Tarpos) provides gas handling, cyro-cooling, x-ray imaging systems, and related instrumentation to control the volumes and temperatures of the multiphase (solid, liquid, and gas) hydrogen as the gas is condensed to liquid, admitted to the capsule, and frozen as a single spherical crystal of hydrogen in the capsule. The hydrogen fuel gas is prepared in discrete 1.7 cc aliquots in the LLNL Tritium Facility for each ignition shot. Post-shot hydrogen gas is recovered in the NIF Tritium Processing System (TPS). Gas handling systems, instrumentation and analytic equipment, material accounting information systems, and the shot planning systems must work together to ensure that operational and safety requirements are met.

摘要

氢的同位素混合物构成了国家点火装置(NIF)聚变靶的基本燃料。一次典型的 NIF 聚变靶射击需要大约 0.5 毫摩尔的氢气和高达 750GBq(20Ci)的 3H。同位素混合比根据实验射击/测试计划和相关的测试目标进行规定。氢同位素浓度、绝对数量、气体纯度、靶的配置以及 NIF 设施的物理配置都是必须管理的参数和条件,以确保操作的质量和安全。点火靶制备的一个重要和关键步骤是在靶壳的内表面上形成一层约 60μm厚的氢“冰”层。低温靶定位系统(Cryo-Tarpos)提供气体处理、低温冷却、X 射线成像系统和相关仪器仪表,以控制多相(固、液、气)氢的体积和温度,因为气体被冷凝成液体,进入靶壳,并在靶壳中冻结成单个球形氢晶体。每个点火射击都在 LLNL 氚设施中用离散的 1.7cc 等分物制备氢气燃料气体。射击后的氢气在 NIF 氚处理系统(TPS)中回收。气体处理系统、仪器仪表和分析设备、材料核算信息系统以及射击计划系统必须协同工作,以确保满足操作和安全要求。

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