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Particle model of full-size ITER-relevant negative ion source
F Taccogna1, P Minelli1, N Ippolito2
1CNR-Nanotec, Bari 70126, Italy.
This study models the ITER negative ion source, revealing significant electron current asymmetry across apertures due to magnetic fields. This asymmetry impacts ion source performance and requires further investigation for steady-state operation.
Area of Science:
- Plasma Physics
- Fusion Energy Research
Background:
- Accurate modeling of negative ion sources is crucial for fusion energy development.
- Previous models have not fully captured the complexities of full-size ITER-relevant negative ion sources.
Purpose of the Study:
- To develop and utilize a detailed 2.5D particle-in-cell Monte Carlo collision model for the ITER negative ion source.
- To investigate the impact of magnetic fields and plasma grid geometry on ion extraction.
Main Methods:
- A 2.5D particle-in-cell Monte Carlo collision model was employed.
- The model included expansion, extraction, and partial acceleration regions with fine mesh resolution.
- Magnetic filter and electron deflection fields were incorporated.
Main Results:
- A significant asymmetry in electron current was observed across the plasma grid apertures.
- This asymmetry is driven by electron Hall drift perpendicular to the filter field.
- A negative ion current density of 660 A/m² was used as a parameter for neutral conversion.
Conclusions:
- The developed model highlights critical design challenges related to plasma uniformity in negative ion sources.
- Electron Hall drift is a key factor causing inhomogeneity in extracted electron currents.
- Achieving a steady state within 15 μs was not yet realized, indicating the need for further model refinement and longer simulation times.
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