J. Dominguez-Palacios, S. Futatani, M. Garcia-Munoz, A. Jansen van Vuuren, E. Viezzer, J. Gonzalez-Martin, M. Toscano-Jimenez, P. Oyola, Y. Todo, Y. Suzuki, L. Sanchis, J. Rueda-Rueda, J. Galdon-Quiroga, J. Hidalgo-Salaverri, H. Chen, J. F. Rivero-Rodriguez, L. Velarde, the ASDEX Upgrade Team, the EuroFUSION MST1 Team
{"title":"高能离子对托卡马克等离子体边缘局域模式的影响","authors":"J. Dominguez-Palacios, S. Futatani, M. Garcia-Munoz, A. Jansen van Vuuren, E. Viezzer, J. Gonzalez-Martin, M. Toscano-Jimenez, P. Oyola, Y. Todo, Y. Suzuki, L. Sanchis, J. Rueda-Rueda, J. Galdon-Quiroga, J. Hidalgo-Salaverri, H. Chen, J. F. Rivero-Rodriguez, L. Velarde, the ASDEX Upgrade Team, the EuroFUSION MST1 Team","doi":"10.1038/s41567-024-02715-6","DOIUrl":null,"url":null,"abstract":"The most efficient and promising operational regime for the International Thermonuclear Experimental Reactor tokamak is the high-confinement mode. In this regime, however, periodic relaxations of the plasma edge can occur. These edge-localized modes pose a threat to the integrity of the fusion device. Here we reveal the strong impact of energetic ions on the spatio-temporal structure of edge-localized modes in tokamaks using nonlinear hybrid kinetic–magnetohydrodynamic simulations. A resonant interaction between the fast ions at the plasma edge and the electromagnetic perturbations from the edge-localized mode leads to an energy and momentum exchange. Energetic ions modify, for example, the amplitude, frequency spectrum and crash timing of edge-localized modes. The simulations reproduce some observations that feature abrupt and large edge-localized mode crashes. The results indicate that, in the International Thermonuclear Experimental Reactor, a strong interaction between the fusion-born alpha particles and ions from neutral beam injection, a main heating and fast particle source, is expected with predicted edge-localized mode perturbations. This work advances the understanding of the physics underlying edge-localized mode crashes in the presence of energetic particles and highlights the importance of including energetic ion kinetic effects in the optimization of edge-localized mode control techniques and regimes that are free of such modes. Edge-localized plasma modes in a tokamak can damage its innermost wall. Simulations now show that fast ions can modify the spatio-temporal structure of these modes. These effects need to be considered in the optimization of control techniques.","PeriodicalId":19100,"journal":{"name":"Nature Physics","volume":"21 1","pages":"43-51"},"PeriodicalIF":17.6000,"publicationDate":"2025-01-06","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.nature.com/articles/s41567-024-02715-6.pdf","citationCount":"0","resultStr":"{\"title\":\"Effect of energetic ions on edge-localized modes in tokamak plasmas\",\"authors\":\"J. Dominguez-Palacios, S. Futatani, M. Garcia-Munoz, A. Jansen van Vuuren, E. Viezzer, J. Gonzalez-Martin, M. Toscano-Jimenez, P. Oyola, Y. Todo, Y. Suzuki, L. Sanchis, J. Rueda-Rueda, J. Galdon-Quiroga, J. Hidalgo-Salaverri, H. Chen, J. F. Rivero-Rodriguez, L. Velarde, the ASDEX Upgrade Team, the EuroFUSION MST1 Team\",\"doi\":\"10.1038/s41567-024-02715-6\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"The most efficient and promising operational regime for the International Thermonuclear Experimental Reactor tokamak is the high-confinement mode. In this regime, however, periodic relaxations of the plasma edge can occur. These edge-localized modes pose a threat to the integrity of the fusion device. Here we reveal the strong impact of energetic ions on the spatio-temporal structure of edge-localized modes in tokamaks using nonlinear hybrid kinetic–magnetohydrodynamic simulations. A resonant interaction between the fast ions at the plasma edge and the electromagnetic perturbations from the edge-localized mode leads to an energy and momentum exchange. Energetic ions modify, for example, the amplitude, frequency spectrum and crash timing of edge-localized modes. The simulations reproduce some observations that feature abrupt and large edge-localized mode crashes. The results indicate that, in the International Thermonuclear Experimental Reactor, a strong interaction between the fusion-born alpha particles and ions from neutral beam injection, a main heating and fast particle source, is expected with predicted edge-localized mode perturbations. This work advances the understanding of the physics underlying edge-localized mode crashes in the presence of energetic particles and highlights the importance of including energetic ion kinetic effects in the optimization of edge-localized mode control techniques and regimes that are free of such modes. Edge-localized plasma modes in a tokamak can damage its innermost wall. Simulations now show that fast ions can modify the spatio-temporal structure of these modes. 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Effect of energetic ions on edge-localized modes in tokamak plasmas
The most efficient and promising operational regime for the International Thermonuclear Experimental Reactor tokamak is the high-confinement mode. In this regime, however, periodic relaxations of the plasma edge can occur. These edge-localized modes pose a threat to the integrity of the fusion device. Here we reveal the strong impact of energetic ions on the spatio-temporal structure of edge-localized modes in tokamaks using nonlinear hybrid kinetic–magnetohydrodynamic simulations. A resonant interaction between the fast ions at the plasma edge and the electromagnetic perturbations from the edge-localized mode leads to an energy and momentum exchange. Energetic ions modify, for example, the amplitude, frequency spectrum and crash timing of edge-localized modes. The simulations reproduce some observations that feature abrupt and large edge-localized mode crashes. The results indicate that, in the International Thermonuclear Experimental Reactor, a strong interaction between the fusion-born alpha particles and ions from neutral beam injection, a main heating and fast particle source, is expected with predicted edge-localized mode perturbations. This work advances the understanding of the physics underlying edge-localized mode crashes in the presence of energetic particles and highlights the importance of including energetic ion kinetic effects in the optimization of edge-localized mode control techniques and regimes that are free of such modes. Edge-localized plasma modes in a tokamak can damage its innermost wall. Simulations now show that fast ions can modify the spatio-temporal structure of these modes. These effects need to be considered in the optimization of control techniques.
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