研究目的
To mitigate electron cyclotron (EC) gas breakdown inside the launcher transmission line (TL) of the ITER collective Thomson scattering (CTS) diagnostic by using a longitudinally-split electrically-biased corrugated waveguide (SBWG).
研究成果
The inclusion of a longitudinally-split electrically-biased waveguide (SBWG) in the design of the ITER CTS diagnostic system effectively mitigates the risk of EC breakdown inside the in-vessel CTS launcher transmission line. The SBWG design is matured, with remote handling compatible fixtures and electrical connectors, and does not require active cooling.
研究不足
The lack of an analytical theory for predicting the thresholds of EC breakdown for the relevant electromagnetic field geometry and the lack of a suitable site to perform a physical test of the functionality of the SBWG at full scale.
1:Experimental Design and Method Selection:
The study employs a Monte Carlo electron particle-in-cell (PIC) simulation approach to model EC breakdown and its mitigation inside the ITER CTS transmission line.
2:Sample Selection and Data Sources:
The simulations are calibrated and validated against observations of SBWG functionality in tokamaks DITE and DIII-D.
3:List of Experimental Equipment and Materials:
The SBWG is constructed using ITER-grade copper chromium zirconium (CuCrZr) alloy and ITER-grade 316LN stainless steel (SS), with an intermediate ceramic layer of aluminium oxide (Al2O3).
4:3). Experimental Procedures and Operational Workflow:
4. Experimental Procedures and Operational Workflow: Simulations are run to determine whether the electron density is increasing or declining, indicating EC breakdown.
5:Data Analysis Methods:
The model is used to determine the thresholds of EC breakdown for the relevant electromagnetic field geometry.
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