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Simulations tackle abrupt massive migrations of energetic beam ions in a tokamak plasma

机译:模拟解决了托卡马克等离子体中高能束离子的突然大量迁移

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摘要

In the late 1990s, fusion scientists at the Japanese tokamak JT-60U discovered abrupt large-amplitude events during beam-driven deuterium plasma experiments. A large spike in the magnetic fluctuation signal followed by a drop in the neutron emission rate indicates that energetic ions abruptly migrate out of the plasma core during an intense burst of Alfvén waves that lasts only 0.3 ms. With continued beam injection, the energetic ion population recovers until the next event occurs 40–60 ms later. Here we present results from simulations that successfully reproduce multiple migration cycles and report numerical and experimental evidence for the multi-mode nature of these intermittent phenomena. Moreover, we elucidate the role of collisional slow-down and show that the large-amplitude Alfvénic fluctuations can drive magnetic reconnection and induce macroscopic magnetic islands. In this way, our simulations allow us to gradually unravel the underlying physical processes and develop predictive capabilities.
机译:在1990年代后期,日本托卡马克JT-60U的聚变科学家在束流驱动的氘等离子体实验中发现了突然的大振幅事件。磁波动信号中的大峰值随后中子发射率的下降表明,在仅持续0.3µms的Alfvén波猛烈爆发期间,高能离子突然迁移出等离子体核。随着束流的不断注入,高能离子群将恢复,直到下一个事件在40–60µms后发生。在这里,我们介绍了成功重现多个迁移周期的模拟结果,并报告了这些间歇现象的多模性质的数值和实验证据。此外,我们阐明了碰撞减速的作用,并表明大幅度的Alfvénic涨落可以驱动磁重联并诱发宏观磁岛。通过这种方式,我们的模拟使我们能够逐步阐明潜在的物理过程并开发预测能力。

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