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Integrated pedestal and core modeling of Joint European Torus (JET) triangularity scan discharges

机译:联合欧洲环面(JET)三角扫描放电的基座和岩心集成模型

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摘要

Simulations of four Joint European Torus (JET) [Rebut , Nucl. Fusion 25, 1011 (1985)] type I ELMy high confinement mode discharges in a triangularity scan are carried out using the JETTO integrated modeling code [Erba , Plasma Phys. Contolled Fusion 39, 261 (1997)] with a predictive core transport model and a pedestal model that includes the effects of edge localized modes (ELMs). The pedestal pressure gradient is limited by the magnetohydrodynamic (MHD) ballooning mode instability, which triggers ELM crashes in these simulations. The validation of the pressure gradient limit used in the simulations is confirmed by a stability analysis carried out using the HELENA and MISHKA codes [Mikhailovskii , Plasma Phys. Rep 23, 713 (1997)]. The MHD stability analysis includes infinite-n ideal ballooning, finite-n ballooning, and low-n kink/peeling modes. It is shown that higher triangularity plasmas have easier access to the second stability region, which allows the edge pressure gradients in the higher triangularity discharges to increase to higher levels. (C) 2004 American Institute of Physics.
机译:四个联合欧洲环面(JET)的模拟[Rebut,Nucl。 Fusion 25,1011(1985)] I型EL我使用JETTO集成建模代码[Erba,Plasma Phys。 Contolled Fusion 39,261(1997)],其中包含预测性核心传输模型和包括边缘局部模式(ELM)影响的基座模型。基座压力梯度受到磁流体动力学(MHD)膨胀模式的不稳定性的限制,这会在这些模拟中触发ELM崩溃。通过使用HELENA和MISHKA代码[Mikhailovskii,Plasma Phys。 Rep 23,713(1997)]。 MHD稳定性分析包括无限n个理想膨胀,有限n个膨胀和低n扭结/剥离模式。结果表明,较高三角形的等离子体更容易进入第二稳定区域,这使得较高三角形放电中的边缘压力梯度增加到较高水平。 (C)2004美国物理研究所。

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