剪切流稳定Z箍缩中等离子体-物质相互作用的诊断进展

A. Khairi, B. Diamond, A. Johansen, T. Lloyd, E. Meier, U. Shumlak
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引用次数: 0

摘要

将剪切速度流应用于Z箍缩成功地减轻了MHD的不稳定性,使该概念能够扩展到ZaP-HD设备上的高能量密度。这为在聚变相关条件下研究Z夹缩的等离子体-材料相互作用(PMI)提供了一个独特的平台。高粒子和能量通量的电极导致等离子体表面的侵蚀,特别是在鼻锥的电流附着位置。最初的PMI实验将使用目前正在开发的新诊断方法来研究石墨鼻锥的行为。在放电过程中,杂质通量测量将通过光谱学进行,通过使用每个光子的电离事件数(称为S/XB值)转换视距发射强度。红外成像系统将用于测量表面温度和热通量。此外,该研究将包括传统的非原位诊断,如扫描电子显微镜、轮廓术和质量损失技术,这些技术可以测量在实验活动中解决的净变化。重新设计的鼻锥将能够快速和频繁地去除该分析的一部分材料。这里描述了这些技术的实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diagnostic Developments for Plasma-Material Interactions on a Sheared-Flow-Stabilized Z Pinch
Applying sheared velocity flow to the Z pinch successfully mitigates MHD instabilities, enabling the concept to scale to high energy densities on the ZaP-HD device. This provides a unique platform for studying the plasma-material interactions (PMI) of a Z pinch at fusion-relevant conditions. High particle and energy flux to the electrodes leads to erosion of the plasma-facing surface, especially at the location of current attachment at the nose cone. Initial PMI experiments will study the behavior of a graphite nose cone using new diagnostics currently under development. During the discharge, impurity flux measurements will be made with spectroscopy by converting line-of-sight emission intensities using the number of ionization events per photon, known as the S/XB value. An infrared imaging system will be implemented to attain surface temperature measurements and heat flux. In addition, the study will include conventional ex-situ diagnostics such as scanning electron microscopy, profilometry, and mass-loss techniques that measure net changes resolved over an experimental campaign. A redesigned nose cone will enable quick and frequent removal of a portion of material for this analysis. The implementation of these techniques is described here.
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