研究目的
To characterize Cs oven performances for the negative ion source SPIDER using Laser Absorption Spectroscopy (LAS) diagnostic, and to study the systematic density underestimation effect caused by Cs ground state depopulation.
研究成果
The LAS diagnostic effectively characterizes Cs oven performances and corrects for ground state depopulation effects up to a laser intensity of 20 W/m2. The study provides valuable insights for managing Cs flux in the SPIDER negative ion source, though further experimentation is needed to understand the influence of hydrogen plasma on Cs oven operation and diagnostics measurements.
研究不足
The study is limited by the potential non-uniformity of Cs deposition on the Plasma Grid (PG), which could result in spatial non-uniformities of beam current and divergence. Additionally, the accuracy of LAS measurements can be affected by Cs ground state depopulation at high laser intensities.
1:Experimental Design and Method Selection:
The study employs a Laser Absorption Spectroscopy (LAS) diagnostic to measure Cs density at ground state using a tunable laser diode to scan the Cs 852 nm D2 line.
2:Sample Selection and Data Sources:
Cs ovens dedicated to SPIDER are tested in the CAesium oven Test Stand (CATS) at Consorzio RFX.
3:List of Experimental Equipment and Materials:
Includes a tunable laser diode (Sacher Lasertechnik DFB-0852-150-TO3), optical fibers, collimators, photodiode module, and a National Instruments NI PXIe-6259 module for signal digitization.
4:Experimental Procedures and Operational Workflow:
The LAS diagnostic measures the absorption spectrum of the Cs D2 line to calculate Cs density, with adjustments for laser intensity to study ground state depopulation effects.
5:Data Analysis Methods:
Cs density is calculated from the absorption spectra, with corrections applied for ground state depopulation effects.
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