氚
同位素分离
氢
氘
工艺工程
分离过程
氢同位素
聚变能
环境科学
过程(计算)
同位素
核工程
纳米技术
材料科学
计算机科学
化学
核物理学
物理
工程类
色谱法
等离子体
操作系统
有机化学
作者
Lawrence Shere,Alfred K. Hill,Timothy J. Mays,R. Lawless,Rosemary Brown,Semali Perera
标识
DOI:10.1016/j.ijhydene.2023.10.282
摘要
The separation of hydrogen isotopes is a vital step in preparing tritium and deuterium fuels for future fusion power plants. This represents a fundamental challenge to fusion energy since the separation process must be able to handle high throughputs of hydrogen isotopes whilst maintaining a low tritium inventory, because tritium is highly radioactive. There are many possible isotope separation techniques, however none that are currently deployable can meet the demands required. To address this gap, recent developments have improved existing processes and created new high-performance processes including Thermal Cycling Absorption Process (TCAP), electrochemical graphene sieving and absorbative separation based on quantum sieving. In this article, ten of the most promising future hydrogen isotope separation technologies are reviewed, to understand the development route to a process that addresses this key challenge of fusion energy.
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