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An overview of the development of the first wall and other principal components of a laser fusion power plant

机译:激光聚变电站第一壁和其他主要组件的开发概述

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This paper introduces the JNM Special Issue on the development of a first wall for the reaction chamber in a laser fusion power plant. In this approach to fusion energy a spherical target is injected into a large chamber and heated to fusion burn by an array of lasers. The target emissions are absorbed by the wall and encapsulating blanket, and the resulting heat converted into electricity. The bulk of the energy deposited in the first wall is in the form of X-rays (1.0-100 keV) and ions (0.1-4 MeV). in order to have a practical power plant, the first wall must be resistant to these emissions and suffer virtually no erosion oil each shot. A wall candidate based oil tungsten armor bonded to a low activation ferritic steel substrate has been chosen as the initial system to be studied. The choice was based oil the vast experience with these materials in a nuclear environment and the ability to address most of the key remaining issues with existing facilities. This overview paper is divided into three parts. The first part summarizes the current state of the development of laser fusion energy. The second part introduces the tungsten armored ferritic steel concept, the three critical development issues (thermo-mechanical fatigue, helium retention, and bonding) and the research to address them. Based oil progress to date the latter two appear to be resolvable, but the former remains a challenge. Complete details are presented in the companion papers in this JNM Special Issue. The third part discusses other factors that must be considered in the design of the first wall, including compatibility with blanket concepts, radiological concerns, and structural considerations. Published by Elsevier B.V.
机译:本文介绍了JNM专刊,介绍了激光聚变电站反应室第一壁的开发。在这种融合能量的方法中,球形靶材被注入到一个大腔室中,并通过激光阵列加热以进行融合燃烧。目标排放物被墙壁和密封毯吸收,产生的热量转化为电能。沉积在第一壁中的大部分能量为X射线(1.0-100 keV)和离子(0.1-4 MeV)的形式。为了拥有一个实用的发电厂,第一道墙必须能够抵抗这些排放物,并且每次喷射时实际上都不会遭受侵蚀。已选择结合到低活化铁素体钢基材上的基于墙候选物的油钨铠装作为要研究的初始系统。选择是基于在核环境中使用这些材料的丰富经验以及解决现有设施中大多数关键问题的能力。本概述文件分为三个部分。第一部分总结了激光聚变能量发展的现状。第二部分介绍了钨铠装铁素体钢的概念,三个关键的发展问题(热机械疲劳,氦气保留和键合)以及解决这些问题的研究。迄今为止,基础油的进展似乎是可以解决的,但前者仍然是一个挑战。有关完整的详细信息,请参见本JNM特刊的随附文件。第三部分讨论了在设计第一面墙时必须考虑的其他因素,包括与毯子概念的兼容性,放射学问题和结构方面的考虑。由Elsevier B.V.发布

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