In-vessel design of a two-color heterodyne laser interferometer system for SPARC.

IF 1.7 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION Review of Scientific Instruments Pub Date : 2024-12-01 DOI:10.1063/5.0219343
J N Hawke, M LaCapra, J Ilagan, M Jean, S Ouellet, M Silva Sa, R Zubieta Lupo, J H Irby, K Yao, A Rosenthal, D Myers, T Wender, M Cario, D Cykman, M L Reinke
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Abstract

This article covers the in-vessel design of the SPARC interferometry diagnostic system, highlighting unique aspects of the systems design and port plug integration in preparation for "day-1" plasma operations as a critical diagnostic for density feedback control. An early decision for the diagnostic was to deploy two lasers in the infrared wavelength spectrum, allowing the system to have a higher optical throughput. The optimization of the in-vessel geometry for the diagnostic follows a similar approach, focusing on de-risking possible damage to the plasma facing optical components by moving them further from the plasma with an orientation that provides a greater possibility for protective features to be added. The inclusion of in-vessel optical assemblies requires detailed design efforts of custom all-metal parts, designed to remain functional when subjected to harsh operational conditions, in many cases for the entire SPARC lifetime. The details presented here were included in the design to ensure that the assemblies can not only withstand a major electromagnetic disruption or thermal event but also maintain good stability through normal operations. The design also addresses more nuanced effects, such as the transient heat loading of the plasma facing mirrors. Through the utilization of modeling and design tools, these effects were brought into the design and simulation workflow, further reducing uncertainty as the system moves toward system commissioning.

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SPARC双色外差激光干涉仪系统的船内设计。
本文介绍了SPARC干涉测量诊断系统的容器内设计,重点介绍了系统设计和端口插头集成的独特方面,为“第一天”等离子体操作做准备,作为密度反馈控制的关键诊断。诊断的早期决定是在红外波长光谱中部署两个激光器,使系统具有更高的光学吞吐量。用于诊断的容器内几何结构的优化采用了类似的方法,重点是通过将面向等离子体的光学元件移动到远离等离子体的位置,从而降低可能对其造成损害的风险,从而提供更大的保护功能。包括容器内光学组件需要定制全金属部件的详细设计工作,设计在恶劣的操作条件下保持功能,在许多情况下,整个SPARC使用寿命。这里介绍的细节包括在设计中,以确保组件不仅能够承受主要的电磁干扰或热事件,而且在正常运行时保持良好的稳定性。该设计还解决了更细微的影响,如等离子体面镜的瞬态热负荷。通过利用建模和设计工具,这些影响被引入到设计和仿真工作流程中,随着系统走向系统调试,进一步减少了不确定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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