Conceptual engineering method for attenuating He ion interactions on first wall components in the Fusion Test Facility (FTF) employing a low-pressure noble gas

C. Gentile, W. Blanchard, T. Kozub, C. Priniski, I. Zatz, S. Obenschain
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引用次数: 1

Abstract

It has been shown that post detonation energetic helium ions can drastically reduce the useful life of the (dry) first wall of an IFE reactor due to the accumulation of implanted helium. For the purpose of attenuating energetic helium ions from interacting with first wall components in the Fusion Test Facility (FTF) target chamber, several concepts have been advanced. These include magnetic intervention (MI), deployment of a dynamically moving first wall, use of a sacrificial shroud, designing the target chamber large enough to mitigate the damage caused by He ions on the target chamber wall, and the use of a low pressure noble gas resident in the target chamber during pulse power operations. It is proposed that employing a low-pressure (∼ 1 torr equivalent) noble gas in the target chamber will thermalize energetic helium ions prior to interaction with the wall. The principle benefit of this concept is the simplicity of the design and the utilization of (modified) existing technologies for pumping and processing the noble ambient gas. Although the gas load in the system would be increased over other proposed methods, the use of a “gas shield” may provide a cost effective method of greatly extending the first wall of the target chamber. An engineering study has been initiated to investigate conceptual engineering methods for implementing a viable gas shield strategy in the FTF.
利用低压惰性气体衰减聚变试验装置(FTF)第一壁组件上He离子相互作用的概念工程方法
研究表明,由于注入氦的积累,爆轰后高能氦离子会大大降低IFE反应堆(干)第一壁的使用寿命。为了衰减高能氦离子与聚变试验装置(FTF)靶室第一壁组件的相互作用,提出了几个概念。这些措施包括磁干预(MI),动态移动第一壁的部署,牺牲罩的使用,设计足够大的目标室以减轻He离子对目标室壁造成的损害,以及在脉冲电源操作期间在目标室中使用低压惰性气体。有人提出,在靶室中使用低压(约1 torr当量)惰性气体将在与壁相互作用之前加热高能氦离子。这个概念的主要优点是设计简单,并利用(改进)现有的泵送和处理惰性环境气体的技术。虽然系统中的气体负荷将比其他提议的方法增加,但使用“气体屏蔽”可能提供一种成本效益高的方法,可以大大延长目标室的第一壁。一项工程研究已经开始探讨在FTF中实施可行的气体保护策略的概念工程方法。
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