Electrostatic particle-in-cell simulation of heat flux mitigation using magnetic fields
Autor: | Ralf Schneider, Paul Matthias, D. Konigorski, Karl Felix Lüskow, Julia Duras, Gunnar Bandelow, Stefan Kemnitz, Daniel Kahnfeld |
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Rok vydání: | 2016 |
Předmět: | |
Zdroj: | Journal of Plasma Physics. 82 |
ISSN: | 1469-7807 0022-3778 |
DOI: | 10.1017/s0022377816000829 |
Popis: | The particle-in-cell (PIC) method was used to simulate heat flux mitigation experiments with partially ionised argon. The experiments demonstrate the possibility of reducing heat flux towards a target using magnetic fields. Modelling using the PIC method is able to reproduce the heat flux mitigation qualitatively. This is driven by modified electron transport. Electrons are magnetised and react directly to the external magnetic field. In addition, an increase of radial turbulent transport is also needed to explain the experimental observations in the model. Close to the target an increase of electron density is created. Due to quasi-neutrality, ions follow the electrons. Charge exchange collisions couple the dynamics of the neutrals to the ions and reduce the flow velocity of neutrals by radial momentum transport and subsequent losses. By this, the dominant heat-transport channel by neutrals gets reduced and a reduction of the heat deposition, similar to the experiment, is observed. Using the simulation a diagnostic module for optical emission is developed and its results are compared with spectroscopic measurements and photos from the experiment. The results of this study are in good agreement with the experiment. Experimental observations such as a shrank bright emission region close to the nozzle exit, an additional emission in front of the target and an overall change in colour to red are reproduced by the simulation. |
Databáze: | OpenAIRE |
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