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首页> 外文期刊>Nuclear fusion >Increased heat dissipation with the X-divertor geometry facilitating detachment onset at lower density in DIII-D
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Increased heat dissipation with the X-divertor geometry facilitating detachment onset at lower density in DIII-D

机译:X偏滤器的几何形状增加了散热性,有助于在DIII-D中以较低的密度开始分离

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The X-divertor geometry on DIII-D has demonstrated reduced particle and heat fluxes to the target, facilitating detachment onset at 10-20% lower upstream density and higher H-mode pedestal pressure than a standard divertor. SOLPS modeling suggests that this effect cannot be explained by an increase in total connection length alone, but rather by the addition of connection length specifically in the power-dissipating volume near the target, via poloidal flux expansion and flaring. However, poloidal flaring must work synergistically with divertor closure to most effectively reduce the detachment density threshold. The model also points to carbon radiation as the primary driver of power dissipation in divertors on the DIII-D floor, which is consistent with experimental observations. Sustainable divertor detachment at lower density has beneficial consequences for energy confinement and current drive efficiency for core operation, while simultaneously satisfying the exhaust requirements of the plasma-facing components.
机译:DIII-D上的X偏滤器几何形状已证明减少了到目标的颗粒和热通量,与标准偏滤器相比,在上游密度低10-20%且H模式基座压力较高时,促进了分离开始。 SOLPS模型表明,这种影响不能仅通过增加总连接长度来解释,而是可以通过极向通量膨胀和扩口,特别是在目标附近的耗电量中增加连接长度来解释。但是,极向扩张必须与滤清器关闭协同作用,以最有效地降低脱离密度阈值。该模型还指出,碳辐射是DIII-D底板上偏滤器功耗的主要驱动力,与实验观察结果一致。在较低密度下可持续的偏滤器分离对于核心操作的能量限制和电流驱动效率具有有益的影响,同时满足了面向等离子部件的排气要求。

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