Lawrence Livermore National Laboratory, Livermore, CA 94551-9900, USA.
Health Phys. 2013 Jun;104(6):641-7. doi: 10.1097/HP.0b013e31828d2fab.
The National Ignition Facility (NIF) at the Lawrence Livermore National Laboratory (LLNL) in California is currently in operation with the goal to demonstrate fusion energy gain for the first time in the laboratory-also referred to as "ignition." Based on these demonstration experiments, the Laser Inertial Fusion Energy (LIFE) power plant is being designed at LLNL in partnership with other institutions with the goal to deliver baseload electricity from safe, secure, sustainable fusion power in a time scale that is consistent with the energy market needs. For this purpose, the LIFE design takes advantage of recent advances in diode-pumped, solid-state laser technology and adopts the paradigm of Line Replaceable Units used on the NIF to provide high levels of availability and maintainability and mitigate the need for advanced materials development. The LIFE market entry plant will demonstrate the feasibility of a closed fusion fuel cycle, including tritium breeding, extraction, processing, refueling, accountability, and safety, in a steady-state power-producing device. While many fusion plant designs require large quantities of tritium for startup and operations, a range of design choices made for the LIFE fuel cycle act to reduce the in-process tritium inventory. This paper presents an overview of the delivery plan and the preconceptual design of the LIFE facility with emphasis on the key safety design principles being adopted. In order to illustrate the favorable safety characteristics of the LIFE design, some initial accident analysis results are presented that indicate potential for a more attractive licensing regime than that of current fission reactors.
加利福尼亚州劳伦斯利弗莫尔国家实验室(LLNL)的国家点火装置(NIF)目前正在运行,其目标是首次在实验室中实现聚变能增益,也称为“点火”。基于这些示范实验,LLNL 正在与其他机构合作设计激光惯性聚变能(LIFE)发电厂,旨在以与能源市场需求一致的时间尺度,从安全、可靠、可持续的聚变能中提供基荷电力。为此,LIFE 设计利用了最近在二极管泵浦固态激光技术方面的进展,并采用了 NIF 上使用的可更换线单元的范例,以提供高水平的可用性和可维护性,并减少对先进材料开发的需求。LIFE 市场准入工厂将在稳态发电装置中演示封闭聚变燃料循环的可行性,包括氚的繁殖、提取、处理、再加油、核算和安全。虽然许多聚变工厂设计需要大量的氚用于启动和运行,但 LIFE 燃料循环的一系列设计选择有助于减少中间氚库存。本文概述了 LIFE 设施的交付计划和初步概念设计,重点介绍了所采用的关键安全设计原则。为了说明 LIFE 设计的有利安全特性,本文介绍了一些初步的事故分析结果,表明其潜在的许可制度可能比当前的裂变反应堆更具吸引力。