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Far SOL ELM ion energies in JET

机译:JET中的远SOL ELM离子能量

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There is an increasing body of evidence that the energy lost from diverted tokamak plasmas due to edge localized mode (ELM) activity may not be confined solely to deposition on divertor components. Plasma-facing surfaces in the main confinement chamber also appear to intercept significant fluxes. Whilst this is of no practical consequence for the operation of present day facilities, concerns are being raised over the possible impact on future devices, in which ELMS carrying higher energies are expected. A key parameter required in this assessment is the energy transported by ions in the ELM as it moves through the scrape-off layer (SOL). This contribution presents the first known direct experimental demonstration that ELM events can convect ions with considerable energies to regions in the far SOL. These measurements, obtained on the JET tokamak with an ion energy analyser probe, are combined with a recently developed SOL transient model to show that the ions can, indeed, reach first limiting surfaces with energies that are a considerable fraction (similar to 50%) of those found in the H-mode edge pedestal region. This experiment-theory comparison supports a picture of the ELM in which filaments of hot plasma originating in the pedestal region dissipate energy primarily through parallel losses to the divertor targets during their radial propagation across the SOL.
机译:越来越多的证据表明,由于边缘局限模(ELM)的活动而从转移的托卡马克等离子体中损失的能量可能不仅限于沉积在扩散器组件上。主密闭室中面向等离子体的表面似乎也截取了大量的通量。尽管这对于当今设施的运行没有任何实际影响,但人们对对未来设备的可能影响提出了担忧,在未来设备中,预期ELMS携带更高的能量。该评估所需的关键参数是ELM中的离子通过刮除层(SOL)时传输的能量。这一贡献提出了第一个已知的直接实验证明,即ELM事件可以将具有相当能量的对流对流到SOL中的区域。使用离子能分析仪探针在JET托卡马克上获得的这些测量结果与最近开发的SOL瞬变模型相结合,表明离子确实可以以相当大的一部分能量(接近50%)到达第一极限表面。在H模式边缘基座区域中发现的那些。该实验理论比较支持ELM的图像,其中源自基座区域的热等离子体灯丝主要在发散器目标通过SOL径向传播期间通过平行损失到发散器目标来耗散能量。

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