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Setting the H-mode pedestal structure: variations of particle source location using gas puff and pellet fueling

机译:设置H型基座结构:使用吹气和药丸加注来改变粒子源位置

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Experiments in DIII-D show that a particle source location inside the top of the H-mode pedestal (pellets) maintains a higher pedestal pressure than an edge source (gas fueling) through a widening of the electron temperature pedestal with reduction of the temperature gradient. The effect of these two fueling schemes on the H-mode pedestal structure was examined in DIII-D by comparing controlled pellet-fueled and gas-fueled discharges across a fueling scan up to 40 torr Is~(-1). High resolution electron profiles reveal that gas fueling lowers the pedestal pressure as the density profile shifts radially outwards and the separatrix density increases, while pellet fueling maintains a constant pedestal pressure. The neutral source locations from pellets and gas are determined with the PELLET and UEDGE codes, respectively, and quantify the particle source localization. Pellets provide significant ionization inside the pedestal top while gas puffing localizes ionization in the scrape-off-layer and pedestal foot, broadly consistent with the density profile structure influenced by the source. ELMs are observed to increase in frequency and reduce impurity content as fueling is increased. Stability analysis with ELITE shows that both conditions are near the type-I ELM corner of the peeling-ballooning stability diagram, which is altered significantly by the introduction of pellets. Since transport mechanisms are not observed to change substantially with particle source location, wider pedestals allow the pellet-fueled discharges to retain higher pedestal temperatures at similar pedestal densities. EPED1 is tested to capture the pedestal pressure, under-predicting the height with pellets and over-predicting the height with gas by ~15%. These results have important implications for future reactors where pellet fueling will be the primary particle source due to an opaque scrape-off-layer by showing that the neutral source location plays a role in setting the structure of the H-mode pedestal.
机译:DIII-D中的实验表明,通过扩大电子温度基座并减小温度梯度,H模式基座(小丸)顶部内部的粒子源位置比边缘源(气体燃料)保持更高的基座压力。 。在DIII-D中,通过比较高达40托Is〜(-1)的加油扫描中受控的颗粒燃料和气体燃料放电,研究了这两种加油方案对H型基座结构的影响。高分辨率电子剖面图显示,随着密度剖面图径向向外移动和分离密度增加,气体燃料降低了基座压力,而粒料燃料保持了恒定的基座压力。颗粒和气体的中性源位置分别通过PELLET和UEDGE代码确定,并量化颗粒源的位置。药丸在基座顶部内部提供了显着的电离,而气体膨化使刮擦层和基座脚中的电离局部化,这与受源影响的密度分布结构大致相符。观察到ELM的频率会增加,并随着加油量的增加而减少杂质含量。用ELITE进行的稳定性分析表明,这两个条件都在剥离-气球稳定性图的I型ELM角附近,而这通过引入颗粒而显着改变。由于未观察到传输机制随颗粒源位置而发生显着变化,因此,较宽的基座可使颗粒燃料排放物在类似的基座密度下保持较高的基座温度。经测试,EPED1可以捕获基座压力,用小球预测高度,而用气体高预测高度约15%。这些结果对未来的反应堆具有重要意义,因为通过显示中性源位置在设置H型基座结构中起着作用,由于不透明的刮除层,颗粒燃料将成为主要的颗粒源。

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