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Resistive wall mode physics and control challenges in JT-60SA high β_N scenarios

机译:JT-60SA高β_N场景下的电阻壁模式物理和控制挑战

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The superconducting tokamak JT-60SA is being built in Naka (Japan) under the Broader Approach Satellite Tokamak Programme jointly by Europe and Japan, and under the Japanese national programme. JT-60SA has an important supporting mission for the development of fusion energy. It will help in both the exploitation of l'IER and in the definition of an optimized DEMO design. The focus of this work is set on high beta(N) scenarios, in which kink- like instabilities (e.g. one or more resistive wall modes) are potentially unstable and possibly lead to disruptions. As a fundamental step to ensure the safe realization of high beta(N) plasmas, modeling activities are being carried out for MHD stability and control. The drift-kinetic damping model in particular will be considered in the present work, with a stability study in Scenario 5-like plasmas carried out with MARS-F/K. Resistive wall mode (RWM) stability is found with this model for low plasma rotation and precession drift resonance with thermal ions. The dependence on normalized beta and flow profile is discussed. The challenge of active control is also addressed, taking advantage of the set of RWM control coils that JT-60SA will install. A dynamic simulator, based on the CarMa code, has been developed for feedback control modeling. A demonstration of this tool is given for one of the aforementioned plasmas. Stabilization of the most unstable RWM is achieved within basic power limits. Potential applications, results and latest development of this tool are discussed.
机译:超导托卡马克JT-60SA是根据欧洲和日本共同制定的“更广泛进近卫星托卡马克”计划以及日本国家计划在日本中那建造的。 JT-60SA对发展聚变能负有重要的支持任务。这将有助于l'IER的开发和优化DEMO设计的定义。这项工作的重点放在高beta(N)场景上,在这种场景中,类似扭结的不稳定性(例如一个或多个电阻壁模式)可能不稳定,并可能导致中断。作为确保安全实现高β(N)等离子体的基本步骤,正在开展用于MHD稳定性和控制的建模活动。在当前的工作中,将特别考虑漂移动力学阻尼模型,并使用MARS-F / K在方案5样等离子体中进行稳定性研究。使用该模型可发现电阻壁模式(RWM)的稳定性,以降低等离子体旋转和热离子的进动漂移共振。讨论了对归一化β和流量分布的依赖。利用JT-60SA将要安装的RWM控制线圈,也可以解决主动控制的挑战。已经开发了基于CarMa代码的动态模拟器,用于反馈控制建模。针对上述等离子体之一对此工具进行了演示。在基本功率范围内,可以实现最不稳定的RWM的稳定。讨论了该工具的潜在应用,结果和最新开发。

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